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Canica, 2017, vol. 23, pp. 3–6.\nBailey-Serres, J. and Voesenek, L., Flooding stress: acclimations and genetic diversity, Ann. Rev. Plant Biol., 2008, vol. 59, pp. 313–339. https:\u002F\u002Fdoi.org\u002F10.1146\u002Fannurev.arplant.59.032607.092752\nBailey-Serres, J., Lee, S., and Brinton, E., Waterproofing crops: effective flooding survival strategies, Plant Physiol., 2012, vol. 160, pp. 1698–1709. https:\u002F\u002Fdoi.org\u002F10.1104\u002Fpp.112.208173\nGravatt, D.A. and Kirby, C.J., Patterns of photosynthesis and starch allocation in seedlings of four bottomland hardwood tree species subjected to flooding, Tree Physiol., 1998, vol. 18, pp. 411–417. https:\u002F\u002Fdoi.org\u002F10.1093\u002Ftreephys\u002F18.6.411\nGu, L., Grodzinski, B., Han, J., et al., Granal thylakoid structure and function: explaining an enduring mystery of higher plants, New Phytol., 2022, vol. 236, pp. 319–329. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fnph.18371\nHirabayashi, Y., Mahendran, R., Koirala, S., et al., Global flood risk under climate change, Nat. Clim. Change, 2013, vol. 3, pp. 816–821. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fnclimate1911\nHu, J., Baker, A., Bartel, B., et al., Plant peroxisomes: biogenesis and function, Plant Cell, 2012, vol. 24, no. 6, pp. 2279–2303. https:\u002F\u002Fdoi.org\u002F10.1105\u002Ftpc.112.096586\nIljinska, A.P., Species of the genus Alyssum L. (sect. Alyssum) in the flora of Ukraine, Ukr. Bot. J., 2005, vol. 62, no. 2, pp. 223–234.\nJansen, R.L.M., Santana-Molina, C., van den Noort, M., Devos, D.P., and van der Klei, I.J., Comparative genomics of peroxisome biogenesis proteins: making sense of the PEX proteins, Front. Cell Dev. Biol., 2021, vol. 9, p. 654163. https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffcell.2021.654163\nKanai, M., Higuchi, K., Hagihara, T., et al., Common reed produces starch granules at the shoot base in response to salt stress, New Phytol., 2007, vol. 176, pp. 572–580.\nKao, Y.T., Gonzalez, K.L., and Bartel, B., Peroxisome function, biogenesis, and dynamics in plants, Plant Physiol., 2018, vol. 176, pp. 162–177. https:\u002F\u002Fdoi.org\u002F10.1104\u002Fpp.17.01050\nKirchhoff, H., Chloroplast ultrastructure in plants, New Phytol., 2019, vol. 223, pp. 565–574. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fnph.15730\nKlymchuk, D.O., Brown, C.S., Chapman, D.K., Vorobyova, T.V., and Martyn, G.M., Cytochemical localization of calcium in soybean root cap cells in microgravity, Adv. Space Res., 2001, vol. 27, pp. 967–972.\nKreuzwieser, J. and Rennenberg, H., Molecular and physiological responses of trees to waterlogging stress, Plant Cell Environ., 2014, vol. 37, pp. 2245–2259. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fpce.12310\nLiu, Z., Cheng, R., Xiao, W., et al., Effect of off-season flooding on growth, photosynthesis, carbohydrate partitioning, and nutrient uptake in Distylium chinense, PLoS One, 2014, vol. 9, p. e107636. https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pone.0107636\nMerchant, A., Peuke, A.D., Keitel, C., et al., Phloem sap and leaf δ13C-carbohydrates and amino acid concentrations in Eucalyptus globulus change systematically according to flooding and water deficit treatment, J. Exp. Bot., 2010, vol. 61, pp. 1785–1793. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fjxb\u002Ferq045\nMorris, J. and Brewin, P., The impact of seasonal flooding on agriculture: the spring 2012 floods in Somerset, England, J. Flood Risk Manage., 2014, vol. 7, pp. 128–140. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fjfr3.12041\nNasrullah, A.S., Umar, M., et al., Flooding tolerance in plants: from physiological and molecular perspectives, Braz. J. Bot., 2022, vol. 45, pp. 1161–1176. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs40415-022-00841-0\nOikawa, K., Hayashi, M., Hayashi, Y., and Nishimura, M., Re-evaluation of physical interaction between plant peroxisomes and other organelles using live-cell imaging techniques, J. Integr. Plant Biol., 2019, vol. 61, pp. 836–852. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fjipb.12805\nPan, R., Jun, L., Saisai, W., and Jianping, H., Peroxisomes: versatile organelles with diverse roles in plants, New Phytol., 2020, vol. 225, pp. 1410–1427. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fnph.16134\nPatel, P., Singh, A., Tripathi, N., et al., Flooding: abiotic constraint limiting vegetable productivity, Adv. Plants Agric. Res., 2014, vol. 1, pp. 96–103. https:\u002F\u002Fdoi.org\u002F10.15406\u002Fapar.2014.01.00016\nPshybytko, E., Kruk, J., Lysenko, E., et al., Environ. Exp. Bot., 2022, vol. 206. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.envexpbot.2022.105151\nRen, B., Zhang, J., Dong, S., Liu, P., and Zhao, B., Effects of waterlogging on leaf mesophyll cell ultrastructure and photosynthetic characteristics of summer maize, PloS One, 2016, vol. 11, p. e0161424\nReumann, S. and Bartel, B., Plant peroxisomes: recent discoveries in functional complexity, organelle homeostasis, and morphological dynamics, Curr. Opin. Plant B-iol., 2016, vol. 34, pp. 17–26. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.pbi.2016.07.008\nSharma, U., Bhatt, J., Sharma, H.M., et al., Ultrastructure, adaptability, and alleviation mechanisms of photosynthetic apparatus in plants under waterlogging: A review, Photosynthetica, 2022, vol. 60, pp. 430–444. https:\u002F\u002Fdoi.org\u002F10.32615\u002Fps.2022.033\nShi, F., Pan, Z., Dai, P., et al., Effect of waterlogging stress on leaf anatomical structure and ultrastructure of Phoebe sheareri seedlings, Forests, 2023, vol. 14, no. 7, p. 1294. https:\u002F\u002Fdoi.org\u002F10.3390\u002Ff14071294\nTakahashi, S. and Badger, M.R., Photoprotection in plants: a new light on photosystem II damage, Trends Plant Sci., 2011, vol. 16, pp. 53–60. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tplants.2010.10.001\nThalmann, M. and Santelia, D., Starch as a determinant of plant fitness under abiotic stress, New Phytol., 2017, vol. 214, no. 3, pp. 943–951. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fnph.14491\nTodorova, D., Katerova, Z., Shopova, E., et al., The physiological responses of wheat and maize seedlings grown under water deficit are modulated by pre-application of auxin-type plant growth regulators, Plants, 2022, vol. 11, p. 3251. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fplants11233251\nTopa, M.A. and Cheeseman, J.M., Carbon and phosphorus partitioning in Pinus serotina seedlings growing under hypoxic and low-phosphorus conditions, Tree Physiol., 1992, vol. 10, pp. 195–207.\nUtrillas, M.J. and Alegre, L., Impact of water stress on leaf anatomy and ultrastructure in Cynodon dactylon (L.) Pers. under natural conditions, Int. J. Plant Sci., 1997, vol. 158, pp. 313–324.\nVan Wijk, K.J. and Kessler, F., Plastoglobuli: plastid microcompartments with integrated functions in metabolism, plastid developmental transitions, and environmental adaptation, Ann. Rev. Plant Biol., 2017, vol. 68, pp. 253–389.\nVu, C.V. and Yelenosky, G., Photosnythetic responses of rough lemon and sour orange to soil flooding, chilling, and short-term temperature fluctuations during growth, Environ. Exp. Bot., 1992, vol. 32, pp. 471–477. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0098-8472(92)90060-F\nWample, R.L. and Davis, R.W., Effect of flooding on starch accumulation in chloroplasts of sunflower (Helianthus annus L), Plant Physiol., 1983, vol. 73, pp. 195–198.\nYan, L., Guanghui, L., Xueming, H., and Xueni, Z., Complete chloroplast genome of a spring ephemeral plant Alyssum desertorum and its implications for the phylogenetic position of the tribe Alysseae within the Brassicaceae Nordic, J. Bot., 2017, vol. 35, pp. 644–652. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fnjb.01531\nYoshioka-Nishimura, M., Close relationships between the PSII repair cycle and thylakoid membrane dynamics, Plant Cell Physiol., 2016, vol. 57, pp. 1115–1122. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fpcp\u002Fpcw050\nZhang, R.D., Zhou, Y.F., Yue, Z.X., et al., Changes in photosynthesis, chloroplast ultrastructure, and antioxidant metabolism in leaves of sorghum under waterlogging stress, Photosynthetica, 2019, vol. 57, pp. 1076–1083.\nZhou, J., Wan, S.W., Li, G., and Qin, P., et al., Ultrastructure changes of seedlings of Kosteletzkya virginica under waterlogging conditions, Biol. Plant., 2011, vol. 55, pp. 493–498. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10535-011-0115-6",{"EN":153},"",{"EN":155},"For the first time, the effect of 5- and 10-day soil flooding on the ultrastructure of the leaf mesophyll cells of the psammophyte desert madwort (Alyssum desertorum L.) was investigated. The seeds for the experiments were collected from plants of dry sandy areas of the gully slopes of the ravine forest in the steppe zone of the Dnipropetrovsk oblast. It is shown that a characteristic feature of the leaf photosynthetic cells of this species is the presence of single and large, up to 6 pm, peroxisomes, which are in close contact with chloroplasts and mitochondria, playing a key role in photorespiration. The general organization of palisade parenchyma cells on days 5 and 10 of soil flooding is similar to that in the control. A slight decrease in the size of peroxisomes on day 5 of flooding and its increase on day 10 and more often formation of multivesicular structures (assembly of endomembranes) in the vacuole, which is considered as an autophagy enhancement of the cytoplasm under hypoxia, were noted. Differences in the ultrastructure of chloroplasts under the influence of soil flooding consisted in a significant, almost twofold increase in transient starch, the size and number of plastoglobules, especially on day 10, and swelling of granal and stroma thylakoids on day 10. Changes in the ultrastructure of desert madwort chloroplasts under the influence of soil flooding coincide with those of mesophytes studied in this respect. The obtained data on the chloroplast ultrastructure of desert madwort psammophyte prove the functioning of the photosynthetic apparatus in conditions of short-term soil flooding, which contributes to the survival of seedlings. The subsequent yellowing of leaves and death of plants indicates, as is assumed, the lack of systemic adaptation, primarily metabolic, that is, the transition to anaerobic metabolism, in this species to long-term hypoxia.",{"EN":157},"Ultrastructure of Leaf Mesophyll Cells of Alyssum desertorum L. under Soil Flooding",{"VOID":159},"10.3103\u002FS0095452724020026","PUBLICATION","VERIFIED","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.3103\u002FS0095452724020026",[165,181],{"id":166,"sortIndex":135,"researcher":20,"roles":167,"affiliations":169,"properties":178},"d8385bc3-22d3-4d6c-8dd6-97d6f6e88ac4",[168],"AUTHOR",[170],{"id":20,"sortIndex":21,"affiliation":171,"properties":20},{"id":172,"createTime":173,"updateTime":173,"relativeEntities":174,"slug":20,"properties":175,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"1e935668-666d-47b4-962e-2be1c68d7c41","2024-02-07T22:16:14.224+00:00",[],{"title":176},{"VI":177},"Kholodny Institute of Botany, National Academy of Sciences of Ukraine, Kyiv, Ukraine",{"title":179},{"VI":180},"T. 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Blume; citation_publisher=Springer-Verlag\ncitation_journal_title=Eleusine indica, Plant Cell; citation_title=β-Tubulins Missense Mutations Correlate with Antimicrotubule Drug Resistance; citation_author=E. Yamamoto, L. Zeng, W.V. Biard; citation_volume=10; citation_publication_date=1998; citation_pages=297-308; citation_id=CR7\ncitation_journal_title=J. Heredity; citation_title=Genetic Basis of Dinitroaniline Herbicide Resistance in a Highly-Resistant Biotype of Goosegrass (Eleusine Indica); citation_author=L. Zeng, W.V. Baird; citation_volume=88; citation_publication_date=1997; citation_pages=427-432; citation_id=CR8\ncitation_journal_title=Am. J. Bot.; citation_title=Inheritance of Resistance To Antimicrotubule Dinitroaniline Herbicides An “Intermediate” Resistant Biotype of Eleusine indica (Poaceae); citation_author=L. Zeng, W.V. Baird; citation_volume=86; citation_publication_date=1999; citation_pages=940-947; citation_doi=10.2307\u002F2656610; citation_id=CR9\ncitation_journal_title=Plant Physiol.; citation_title=Molecular Bases for Sensitivity to Tubulin-Binding Herbicides in Green Foxtail; citation_author=C. Delye, Y. Menchari, S. Michel, H. Darmency; citation_volume=136; citation_publication_date=2004; citation_pages=3920-3932; citation_doi=10.1104\u002Fpp.103.037432; citation_id=CR10\ncitation_journal_title=Plant Cell; citation_title=Missense Mutations at Lysine 350 in β-Tubulin Confer Altered Sensitivity to Microtubule Inhibitors in Chlamydomonas; citation_author=V.D. Lee, B. Huang; citation_volume=2; citation_publication_date=1990; citation_pages=1051-1057; citation_doi=10.1105\u002Ftpc.2.11.1051; citation_id=CR11\ncitation_journal_title=Int. Turfgrass Soc. Res. J.; citation_title=Biology and Molecular Analysis of Dinitroaniline-Resistant Poa annua, L.; citation_author=D.B. Lowe, G.A. Swire-Clark, L.B. McCarty, T. Whitewell, W.V. Baird; citation_volume=9; citation_publication_date=2001; citation_pages=1019-1025; citation_id=CR12\ncitation_journal_title=Cell Biol. Int.; citation_title=Plant Mutants and Somatic Hybrids with Resistance to Trifluralin; citation_author=A.I. Yemets, N.M. Strashnyuk, Ya.B. Blume; citation_volume=21; citation_issue=12; citation_publication_date=1997; citation_pages=912-914; citation_id=CR13\ncitation_journal_title=Theor. Appl. Genet.; citation_title=Alteration of β-Tubulin in Nicotiana plumbaginifolia Confers Resistance to Amiprophosmethyl; citation_author=Ya.B. Blume, N.M. Strashnyuk, A.P. Smertenko, V.G. Solodushko, V.A. Sidorov, Yu.Yu. Gleba; citation_volume=97; citation_publication_date=1998; citation_pages=464-472; citation_doi=10.1007\u002Fs001220050918; citation_id=CR14\ncitation_journal_title=Fiziol. Rast.; citation_title=Relationship between the Sensitivity of Eleusine indica to Trifluralin and Amiprophosmethyl and Characteristics of Interaction of These Compounds with Tubulin; citation_author=A.Yu. Nyporko, A.I. Yemets, L.A. Klimkina, Ya.B. Blume; citation_volume=49; citation_publication_date=2002; citation_pages=459-466; citation_id=CR15\ncitation_journal_title=Cell Biol. Int.; citation_title=Structural Modeling of the Interaction of Plant β-Tubulin with Dinitroaniline and Phosphoroamidate Herbicides; citation_author=Ya.B. Blume, A.Yu. Nyporko, A.I. Yemets, W.V. Baird; citation_volume=27; citation_publication_date=2003; citation_pages=171-174; citation_doi=10.1016\u002FS1065-6995(02)00298-6; citation_id=CR16\ncitation_title=Current Protocols in Molecular Biology; citation_publication_date=1991; citation_id=CR17; citation_author=F. Ausubel; citation_author=R. Brent; citation_author=R. Kingston; citation_author=D. Moore; citation_author=J. Seidman; citation_author=J. Smith; citation_author=K. Struhl; citation_publisher=Wiley\ncitation_title=Molecular Cloning: A Laboratory Manual; citation_publication_date=1982; citation_id=CR18; citation_author=T. Maniatis; citation_author=E.F. Fritch; citation_author=J. Sambrook; citation_publisher=Cold Spring Harbor Lab. Press\ncitation_journal_title=Plant. Mol. Biol.; citation_title=Molecular Characterization of Four β-Tubulin Genes from Dinitroaniline Susceptible and Resistant Biotypes of Eleusine indica\n                           ; citation_author=E. Yamamoto, W.V. Baird; citation_volume=39; citation_publication_date=1999; citation_pages=45-61; citation_doi=10.1023\u002FA:1006108412801; citation_id=CR19\ncitation_journal_title=J. Mol. Biol.; citation_title=Studies on Transformation of Escherichia coli with Plasmids; citation_author=D. Hanahan; citation_volume=166; citation_publication_date=1983; citation_pages=557-580; citation_doi=10.1016\u002FS0022-2836(83)80284-8; citation_id=CR20\ncitation_journal_title=Nucleic Acids Res.; citation_title=The SWISS-PROT Protein Sequence Data Bank and Its Supplement TrEMBL in 2000; citation_author=A. Bairoch, R. Apweiler; citation_volume=28; citation_publication_date=2000; citation_pages=45-48; citation_doi=10.1093\u002Fnar\u002F28.1.45; citation_id=CR21\ncitation_journal_title=Nucleic Acids Res.; citation_title=The ClustalX Windows Interface: Flexible Strategies for Multiple Sequence Alignment Aided by Quality Analysis Tools; citation_author=J.D. Thompson, T.J. Gibson, F. Plewniak; citation_volume=24; citation_publication_date=1997; citation_pages=4876-4882; citation_doi=10.1093\u002Fnar\u002F25.24.4876; citation_id=CR22\ncitation_journal_title=Biopolim. Kletka; citation_title=Comparative Analysis of Secondary Structure of Tubulins and FtsZ Proteins; citation_author=A.Yu. Nyporko, Ya.B. Blume; citation_volume=17; citation_publication_date=2001; citation_pages=61-69; citation_id=CR23\nNyporko, A.Yu. and Blume, Ya.B., Simulation and Analysis of the Spatial Structure of β-Tubulin of Higher Plants, Dop. NAN Ukrainy, 2002, no. 1, pp. 141–145.\ncitation_journal_title=Immunol. News; citation_title=Molecular Modelling of Proteins; citation_author=N. Guex, M.C. Peitsch; citation_volume=6; citation_publication_date=1999; citation_pages=132-134; citation_id=CR25\ncitation_journal_title=Electrophoresis; citation_title=SWISS-MODEL and the Swiss-PdbViewer: An Environment for Comparative Protein Modeling; citation_author=N. Guex, M.C. Peitsch; citation_volume=18; citation_publication_date=1997; citation_pages=2714-2723; citation_doi=10.1002\u002Felps.1150181505; citation_id=CR26\ncitation_journal_title=J. Mol. Model.; citation_title=GROMACS 3.0: A Package for Molecular Simulation and Trajectory Analysis; citation_author=E. Lindahl, B. Hess, D. Spoel; citation_volume=7; citation_publication_date=2001; citation_pages=306-317; citation_id=CR27\ncitation_journal_title=Cell Biol. Int.; citation_title=In Situ Hybridization of Beta-Tubulin Probes to Higher Plant Chromosomes; citation_author=L.V. Malysheva, Ya.B. Blume, Yu.Yu. Gleba, A. Mouras; citation_volume=21; citation_publication_date=1997; citation_pages=912-914; citation_id=CR28\ncitation_journal_title=Weed Res.; citation_title=Molecular Characterization of the Tubulin-Related Gene Families in Herbicide-Resistant and -Susceptible Goosegrass (Eleusine indica); citation_author=K.S. Mysore, W.V. Baird; citation_volume=43; citation_publication_date=1995; citation_pages=28-33; citation_id=CR29\ncitation_journal_title=Physiol. Plant.; citation_title=Distinct Tubulin Genes Are Differentially Expressed during Barley Grain Development; citation_author=V. Radchuk, N. Sreenivasulu, Ya. Blume, W. Weschke; citation_volume=131; citation_publication_date=2007; citation_pages=571-580; citation_doi=10.1111\u002Fj.1399-3054.2007.00976.x; citation_id=CR30\ncitation_journal_title=Plant Cell; citation_title=The Small Genome of Arabidopsis Contains at Least Nine Expressed β-Tubulin Genes; citation_author=D.P. Snustad, N.A. Haas, S.D. Kopczak, C.D. Silflow; citation_volume=4; citation_publication_date=1992; citation_pages=549-556; citation_doi=10.1105\u002Ftpc.4.5.549; citation_id=CR31\ncitation_title=Spatial Distribution of Tubulin Mutations Conferring Resistance to Antimicrotubular Compounds; citation_inbook_title=The Plant Cytoskeleton: Key Tool for Agro-Biotechnology; citation_publication_date=2008; citation_pages=397-417; citation_id=CR32; citation_author=A.Yu. Nyporko; citation_author=Ya.B. Blume; citation_publisher=Springer-Verlag\ncitation_journal_title=Trends Plant Sci.; citation_title=Dinitroaniline Herbicide Resistance and the Microtubule Cytoskeleton; citation_author=R.G. Anthony, P.J. Hussey; citation_volume=4; citation_publication_date=1999; citation_pages=112-116; citation_doi=10.1016\u002FS1360-1385(99)01378-3; citation_id=CR33\ncitation_journal_title=Plant Physiol.; citation_title=A Dinitroaniline-Resistant Mutant of Eleusine indica Exhibits Cross-Resistance and Supersensitivity to Antimicrotubule Herbicides and Drugs; citation_author=K.C. Vaughn, M.D. Marks, D.P. Weeks; citation_volume=83; citation_publication_date=1987; citation_pages=956-964; citation_doi=10.1104\u002Fpp.83.4.956; citation_id=CR34\ncitation_journal_title=Tsitol. Genet.; citation_title=Structural-Biological Characteristic of Tubulin Interaction with Dinitroanilines; citation_author=A.Yu. Nyporko, A.I. Yemets, V.N. Britsun, M.O. Lozinskii, Ya.B. Blume; citation_volume=43; citation_issue=4; citation_publication_date=2009; citation_pages=56-70; citation_id=CR35",{"EN":236},"The identification of the location of a point mutation on β-tubulin molecules of amiprophosmethyland trifluralin-resistant Nicotiana plumbaginifolia lines are described in this work. It was shown that in the first case, this mutation is related with the substitution of serine residue for proline in position 248; in the second case, with the substitution of phenylalanine for serine in position 317 of the β-tubulin’s amino acid sequence. Three-dimensional models of the β-tubulin molecule from Chlamydomonas with the well-known location of mutations determining dinitroaniline- and phosphorothioamides resistance (the substitution of lysine residue for methionine in position 350), and β-tubulin from Nicotiana plumbagnifolia have been reconstructed. On the basis of the analysis of the interaction site for dinitroanilines and phosphorothioamides located on the Chlamydomonas β-tubulin’s molecule it was concluded that the revealed mutations on Nicotiana plumbaginifolia β-tubulin are affected by the residues of the amino acids, participating in the formation of this site.",{"EN":238},"Molecular and structural-biological analysis of Nicotiana plumbaginifolia mutants for identification of the site on their β-tubulins of interaction with dinitroanilines and phosphorothioamides",{"VOID":240},"10.3103\u002FS0095452709050107","2025-01-21T23:59:28.611+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.3103\u002FS0095452709050107","https:\u002F\u002Flink.springer.com\u002Fcontent\u002Fpdf\u002F10.3103\u002FS0095452709050107.pdf",[245,262,277,290,302],{"id":246,"sortIndex":247,"researcher":20,"roles":248,"affiliations":249,"properties":259},"d8bb4f4b-86b7-4848-9ee3-1e87e568555d",3,[168],[250],{"id":20,"sortIndex":21,"affiliation":251,"properties":20},{"id":252,"createTime":253,"updateTime":253,"relativeEntities":254,"slug":255,"properties":256,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"191015c3-3d3a-446e-bd80-ef6759a9b6af","2024-04-20T06:34:56.894+00:00",[],"Clemson-University-Clemson-USA",{"title":257},{"EN":258},"Clemson University, Clemson, USA",{"title":260},{"VI":261},"Swire-Clark, G. A.",{"id":263,"sortIndex":74,"researcher":20,"roles":264,"affiliations":265,"properties":274},"e76c3fbb-7767-4c32-843f-2074ec6ae29a",[168],[266],{"id":20,"sortIndex":21,"affiliation":267,"properties":20},{"id":268,"createTime":269,"updateTime":269,"relativeEntities":270,"slug":20,"properties":271,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"0eb46c50-3796-443c-8b12-153123ea7455","2023-12-26T08:06:58.589+00:00",[],{"title":272},{"VI":273},"Institute of Food Biotechnology and Genomics, National Academy of Sciences of Ukraine, Kiev, Ukraine",{"title":275},{"VI":276},"Nyporko, A. Yu.",{"id":278,"sortIndex":279,"researcher":20,"roles":280,"affiliations":281,"properties":287},"4061178e-1ead-4f33-9ff7-ac8926dc4da5",4,[168],[282],{"id":20,"sortIndex":21,"affiliation":283,"properties":20},{"id":268,"createTime":269,"updateTime":269,"relativeEntities":284,"slug":20,"properties":285,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":286},{"VI":273},{"title":288},{"VI":289},"Blume, Ya. B.",{"id":291,"sortIndex":135,"researcher":20,"roles":292,"affiliations":293,"properties":299},"1daa5257-022b-4a28-8df8-96a28f91db73",[168],[294],{"id":20,"sortIndex":21,"affiliation":295,"properties":20},{"id":252,"createTime":253,"updateTime":253,"relativeEntities":296,"slug":255,"properties":297,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":298},{"EN":258},{"title":300},{"VI":301},"Baird, W. V.",{"id":303,"sortIndex":21,"researcher":20,"roles":304,"affiliations":305,"properties":311},"30db5ed8-2bf5-42a3-9236-b3e94b24121a",[168],[306],{"id":20,"sortIndex":21,"affiliation":307,"properties":20},{"id":268,"createTime":269,"updateTime":269,"relativeEntities":308,"slug":20,"properties":309,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":310},{"VI":273},{"title":312},{"VI":313},"Yemets, A. I.",{"url":242,"publisher":315,"properties":343},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":316,"slug":10,"properties":317,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":321,"manageAffiliations":322,"indexDatabases":323,"url":130,"thumbnailPath":20,"statistic":338,"gsStatistic":20,"type":138,"analyzePriority":20},[],{"issn":318,"eissn":319,"title":320},{"VOID":13},{"VOID":15},{"EN":17},[],[],[324,331],{"id":112,"indexDatabase":325,"url":127,"indexYears":20,"academicFieldIds":330,"indexDatabaseRanking":20},{"id":114,"createTime":115,"updateTime":116,"relativeEntities":326,"label":327,"description":328,"key":123,"publicationTags":329,"standard":20},[],{"EN":119,"VI":119},{"VI":121,"EN":122},[125,126],[129],{"id":89,"indexDatabase":332,"url":102,"indexYears":103,"academicFieldIds":337,"indexDatabaseRanking":110},{"id":91,"createTime":92,"updateTime":93,"relativeEntities":333,"label":334,"description":335,"key":99,"publicationTags":336,"standard":20},[],{"EN":96,"VI":96},{"EN":96,"VI":98},[101],[105,106,107,108,109],{"impactFactor":21,"impactFactorByYear":339,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":133,"totalPublicationByYear":340,"totalCitation":21,"totalCitationByYear":341,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":342,"hindexLast5Year":21,"hindex":21},{},{"2007":135,"2008":135,"2009":135,"2011":135,"2012":135,"2016":135,"2017":135,"2019":74,"2021":74},{},{},{"volume":344,"pages":346,"issue":348},{"VOID":345},"43",{"VOID":347},"352-359",{"VOID":349},"5","2009-10-01",2009,{"id":353,"createTime":354,"updateTime":355,"relativeEntities":356,"slug":357,"properties":358,"entityType":160,"verifyStatus":161,"verifyTime":367,"verifyNote":162,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":368,"fullTextUrl":20,"authors":369,"publicationType":193,"publisherRelationship":453,"citationCount":487,"citationInfo":488,"publishDate":491,"publishYear":489,"citationAnalyzeStatus":492,"lastCitationAnalyze":493,"indexDatabases":20,"openAccess":20,"references":494,"isForceReanalyzing":225},"a2abdfc0-4d4c-49d6-8051-ab837ea0a8e8","2024-02-09T10:52:21.263+00:00","2026-06-17T23:59:16.520+00:00",[],"Involvement-of-Jasmonate-Signaling-Components-in-Salt-Stress-Induced-Stomatal-Closure-in-Arabidopsis-thaliana",{"abstract":359,"title":361,"doi":363,"gsPaper":365},{"EN":360},"To clarify a possible role of jasmonate signaling in regulation of the state of stomata under salt stress, the effect of the treatment of Arabidopsis thaliana L. plant leaves (wild type and mutants deficient in jasmonate signaling) with sodium chloride (50–200 mM) and\u002For methyl jasmonate (200 μM) was studied. A 2–3-h effect of NaCl induced stomatal closure in wild-type plants (Col-0). The most noticeable effect was observed under the influence of 100 mM sodium chloride. At the same time, NaCl treatment of the leaves of the jin1 mutant, deficient by the gene encoding the JIN1\u002FMYC2 transcription factor, had hardly any effect on the state of the stomata. Only a slight decrease in stomatal aperture occurred under the influence of salt in the plants of the coi1 genotype (mutants by the gene encoding the COI1 protein, which is involved in the removal of jasmonate signaling transcriptional factors’ repressors). A 3-h treatment of leaves with 200 μM methyl jasmonate caused a noticeable stomatal closure in wild-type plants but not in jin1 and coi1 mutants. With the combined effect of methyl jasmonate and salt on the leaves of Arabidopsis of three genotypes, a trend towards additional decrease in the stomatal aperture was manifested only in wild-type plants. A conclusion was drawn on the role of jasmonate and its signal transduction system in the regulation of stomatal movements under salt stress.",{"EN":362},"Involvement of Jasmonate Signaling Components in Salt Stress-Induced Stomatal Closure in Arabidopsis thaliana",{"VOID":364},"10.3103\u002FS009545272004012X",{"VOID":366},"[\"4213265059061119004\"]","2024-05-01T06:24:41.805+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.3103\u002FS009545272004012X",[370,385,404,416,430],{"id":371,"sortIndex":247,"researcher":20,"roles":372,"affiliations":373,"properties":382},"1c92170d-e8e1-4b1c-8459-c7da912643c9",[168],[374],{"id":20,"sortIndex":21,"affiliation":375,"properties":20},{"id":376,"createTime":377,"updateTime":377,"relativeEntities":378,"slug":20,"properties":379,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"bfa8bf92-2e25-42d0-9fef-3e4951023e1e","2023-12-29T22:33:15.558+00:00",[],{"title":380},{"VI":381},"Institute of Cell Biology and Genetic Engineering, National Academy of Sciences of Ukraine, Kyiv, Ukraine",{"title":383},{"VI":384},"A. I. Dyachenko",{"id":386,"sortIndex":21,"researcher":20,"roles":387,"affiliations":388,"properties":399},"d6ef86bb-5911-43d8-ba81-c9ef09b59d93",[168],[389],{"id":20,"sortIndex":21,"affiliation":390,"properties":20},{"id":391,"createTime":392,"updateTime":393,"relativeEntities":394,"slug":395,"properties":396,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"0a8b1a61-b5ac-4f15-b10b-974af6989d4f","2024-02-16T01:43:25.680+00:00","2025-06-11T23:26:56.687+00:00",[],"Dokuchaev-Kharkiv-National-Agrarian-University-Kharkiv-Ukraine",{"title":397},{"VI":398},"Dokuchaev Kharkiv National Agrarian University, Kharkiv, Ukraine",{"title":400,"gsAuthor":402},{"VI":401},"T. O. Yastreb",{"VOID":403},"[\"5vAkSewAAAAJ\"]",{"id":405,"sortIndex":279,"researcher":20,"roles":406,"affiliations":407,"properties":413},"122ca417-c6af-4714-92fa-39f655c793aa",[168],[408],{"id":20,"sortIndex":21,"affiliation":409,"properties":20},{"id":376,"createTime":377,"updateTime":377,"relativeEntities":410,"slug":20,"properties":411,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":412},{"VI":381},{"title":414},{"VI":415},"A. P. Dmitriev",{"id":417,"sortIndex":74,"researcher":20,"roles":418,"affiliations":419,"properties":425},"10f835aa-ac5d-430f-9cb6-2f73e0a37248",[168],[420],{"id":20,"sortIndex":21,"affiliation":421,"properties":20},{"id":391,"createTime":392,"updateTime":393,"relativeEntities":422,"slug":395,"properties":423,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":424},{"VI":398},{"title":426,"gsAuthor":428},{"VI":427},"M. A. 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Genet., 2012, vol. 46, no. 5, pp. 302–318.https:\u002F\u002Fdoi.org\u002F10.3103\u002FS0095452712050040","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.3103\u002FS0095452712050040",{"doi":508},"10.3103\u002FS0095452712050040",{"id":20,"text":510,"url":511,"identifiers":512},"Munns, R., Comparative physiology of salt and water stress, Plant Cell Environ., 2002, vol. 25, pp. 239–250.https:\u002F\u002Fdoi.org\u002F10.1046\u002Fj.0016-8025.2001.00808.x","https:\u002F\u002Fdoi.org\u002F10.1046\u002Fj.0016-8025.2001.00808.x",{"mag":513,"openalex":514,"pm":515,"doi":516},"2105874120","W2105874120","11841667","10.1046\u002Fj.0016-8025.2001.00808.x",{"id":20,"text":518,"url":20,"identifiers":519},"Veselov, D.S., Markova, I.V., and Kudoyarova, G.R., A response of plants to salinization and formation of salt tolerance, Usp. Sovrem. Biol., 2007, vol. 127, no. 5, pp. 482–493.",{},{"id":20,"text":521,"url":522,"identifiers":523},"Roelfsema, M.R.G. and Hedrich, R., In the light of stomatal opening: new insights into “The Watergate,” New Phytol., 2005, vol. 167, no. 3, pp. 665–691.https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1469-8137.2005.01460.x","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1469-8137.2005.01460.x",{"mag":524,"openalex":525,"pm":526,"doi":527},"2102603339","W2102603339","16101906","10.1111\u002Fj.1469-8137.2005.01460.x",{"id":20,"text":529,"url":530,"identifiers":531},"Very, A.A., Robinson, M.F., Michael, F., Mansfield, T.A., and Sanders, D., Guard cell cation channels are involved in Na+-induced stomatal closure in a halophyte, Plant J., 1998, vol. 14, no. 5, pp. 509–521.https:\u002F\u002Fdoi.org\u002F10.1046\u002Fj.1365-313X.1998.00147.x","https:\u002F\u002Fdoi.org\u002F10.1046\u002Fj.1365-313x.1998.00147.x",{"mag":532,"openalex":533,"doi":534},"2101740888","W2101740888","10.1046\u002Fj.1365-313x.1998.00147.x",{"id":536,"text":537,"url":538,"identifiers":539},"4c68646b-0035-4279-8000-0006b275d4fa","Ren, A.X. and Wang, Y.M., Effects of salt stress on stomatal differentiation and movements of amaranth (Amaranthus tricolor L.) leaves, Acta Horticul. Sin., 2010, vol. 37, no. 3, pp. 479–484.","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":540},"10.1007\u002Fs10440-022-00541-7",{"id":20,"text":542,"url":543,"identifiers":544},"Ma, Y., Zhang, We, Niu, J., Ren, Yu, and Zhang, F., Hydrogen sulfide may function downstream of hydrogen peroxide in salt stress-induced stomatal closure in Vicia faba, Funct. Plant Biol., 2018, vol. 46, no. 2, pp. 136–145. https:\u002F\u002Fdoi.org\u002F10.1071\u002FFP18096","https:\u002F\u002Fdoi.org\u002F10.1071\u002Ffp18096",{"openalex":545,"pm":546,"doi":547},"W4247277169","32172755","10.1071\u002Ffp18096",{"id":20,"text":549,"url":550,"identifiers":551},"Neill, S.J. and Burnett, E.C., Regulation of gene expression during water deficit stress, Plant Growth Regul., 1999, vol. 29, pp. 23–33. doi org\u002Fhttps:\u002F\u002Fdoi.org\u002F10.1023\u002FA:1006251631570","https:\u002F\u002Fdoi.org\u002F10.1023\u002FA:1006251631570",{"doi":552},"10.1023\u002FA:1006251631570",{"id":20,"text":554,"url":555,"identifiers":556},"Suhita, D., Raghavendra, A.S., Kwak, J.M., and Vavasseur, A., Cytoplasmic alkalization precedes reactive oxygen species production during methyl jasmonate- and abscisic acid-induced stomatal closure, Plant Physiol., 2004, vol. 134, no. 4, pp. 1536–1545. https:\u002F\u002Fdoi.org\u002F10.1104\u002Fpp.103.032250","https:\u002F\u002Fdoi.org\u002F10.1104\u002Fpp.103.032250",{"mag":557,"pmc":558,"openalex":559,"pm":560,"doi":561},"2153314569","419829","W2153314569","15064385","10.1104\u002Fpp.103.032250",{"id":20,"text":563,"url":564,"identifiers":565},"Liu, J., Hou, Z.H., Liu, G.H., Hou, L.X., and Liu, X., Hydrogen sulfide may function downstream of nitric oxide in ethylene-induced stomatal closure in Vicia faba L., J. Integr. Agricult., 2012, vol. 11, pp. 1644–1653.https:\u002F\u002Fdoi.org\u002F10.1016\u002FS2095-3119(12)60167-1","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs2095-3119(12)60167-1",{"mag":566,"openalex":567,"doi":568},"2006210435","W2006210435","10.1016\u002Fs2095-3119(12)60167-1",{"id":20,"text":570,"url":571,"identifiers":572},"Miura, K., Okamoto, H., Okuma, E., Shiba, H., Ka-mada, H., Hasegawa, P.M., and Murata, Y., SIZ1 deficiency causes reduced stomatal aperture and enhanced drought tolerance via controlling salicylic acid-induced accumulation of reactive oxygen species in Arabidopsis,Plant J., 2013, vol. 73, no. 1, pp. 91–104. https:\u002F\u002Fdoi.org\u002F10.1111\u002Ftpj.12014","http:\u002F\u002Fdx.doi.org\u002F10.1111\u002Ftpj.12014",{"doi":573},"10.1111\u002Ftpj.12014",{"id":20,"text":575,"url":576,"identifiers":577},"Melotto, M., Underwood, W., and He, S.Y., Role of stomata in plant innate immunity and foliar bacterial diseases, Annu. Rev. Phytopathol., 2008, vol. 46, pp. 101–122. https:\u002F\u002Fdoi.org\u002F10.1146\u002Fannurev.phyto.121107.104959","https:\u002F\u002Fdoi.org\u002F10.1146\u002Fannurev.phyto.121107.104959",{"mag":578,"pmc":579,"openalex":580,"pm":581,"doi":582},"2135557599","2613263","W2135557599","18422426","10.1146\u002Fannurev.phyto.121107.104959",{"id":20,"text":584,"url":585,"identifiers":586},"Montillet, J.L., Leonhardt, N., Mondy, S., Tranchi-mand, S., Rumeau, D., Boudsocq, M., Garcia, A.V., Douki, T., Bigear, J., Lauriere, C., Chevalier, A., Castresana, C., and Hirt, H., An abscisic acid-independent oxylipin pathway controls stomatal closure and immune defense in Arabidopsis,PLoS Biol., 2013, vol. 11, no. 3. e1 001 513. https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pbio.1001513","https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pbio.1001513",{"mag":587,"pmc":588,"openalex":589,"pm":590,"doi":591},"2071001383","3602010","W2071001383","23526882","10.1371\u002Fjournal.pbio.1001513",{"id":20,"text":593,"url":594,"identifiers":595},"Savchenko, T., Kolla, V.A., Wang, C.Q., Nasafi, Z., Hicks, D.R., Phadungchob, B., Chehab, W.E., Brandizzi, F., Froehlich, J., and Dehesh, K., Functional convergence of oxylipin and abscisic acid pathways controls stomatal closure in response to drought, Plant Physiol., 2014, vol. 164, no. 3, pp. 1151–1160. https:\u002F\u002Fdoi.org\u002F10.1104\u002Fpp.113.234310","https:\u002F\u002Fdoi.org\u002F10.1104\u002Fpp.113.234310",{"mag":596,"pmc":597,"openalex":598,"pm":599,"doi":600},"2115816514","3938610","W2115816514","24429214","10.1104\u002Fpp.113.234310",{"id":20,"text":602,"url":603,"identifiers":604},"Gimenez-Ibanez, S., Boter, M., Ortigosa, A., García-Casado, G., Chini, A., Lewsey, M.G., Ecker, J.R., Ntoukakis, V., and Solano, R., JAZ2 controls stomata dynamics during bacterial invasion, New Phytol., 2017, vol. 213, no. 3, pp. 1378–1392. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fnph.14354","http:\u002F\u002Fdx.doi.org\u002F10.1111\u002Fnph.14354",{"doi":605},"10.1111\u002Fnph.14354",{"id":20,"text":607,"url":608,"identifiers":609},"Pedranzani, H., Racagni, G., Alemano, S., Miersch, O., Ramirez, I., Pena-Cortes, H., Taleisnik, E., Machado-Domenech, E., and Abdala, G., Salt tolerant tomato plants show increased levels of jasmonic acid, Plant Growth Regul., 2003, vol. 41, no. 2, pp. 149–158.https:\u002F\u002Fdoi.org\u002F10.1023\u002FA:1027311319940","https:\u002F\u002Fdoi.org\u002F10.1023\u002FA:1027311319940",{"doi":610},"10.1023\u002FA:1027311319940",{"id":20,"text":612,"url":613,"identifiers":614},"Dong H., Zhen Z., Peng J., Chang L., Gong Q., and Wang N.N., Loss of ACS7 confers abiotic stress tolerance by modulating ABA sensitivity and accumulation in Arabidopsis, J. Exp. Bot., 2011, vol. 62, no. 14, pp. 4875–4887. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fjxb\u002Ferr143","https:\u002F\u002Fdoi.org\u002F10.1093\u002Fjxb\u002Ferr143",{"mag":615,"pmc":616,"openalex":617,"pm":618,"doi":619},"2163322816","3193000","W2163322816","21765163","10.1093\u002Fjxb\u002Ferr143",{"id":621,"text":622,"url":623,"identifiers":624},"f6caff53-758e-4384-832e-f58087c32e72","Ramegowda, V., Senthil-Kumar, M., Udayakumar, M., and Mysore, K.S., A high-throughput virus-induced gene silencing protocol identifies genes involved in multi-stress tolerance, BMC Plant Biol., 2013, vol. 13, p. 193. https:\u002F\u002Fdoi.org\u002F10.1186\u002F1471-2229-13-193","https:\u002F\u002Fbmcplantbiol.biomedcentral.com\u002Farticles\u002F10.1186\u002F1471-2229-13-193",{"doi":625},"10.1186\u002F1471-2229-13-193",{"id":627,"text":628,"url":629,"identifiers":630},"f77fa009-e33b-4f33-b193-91240230b19c","Yastreb, T.O., Kolupaev, Yu.E., Lugovaya, A.A., and Dmitriev, A.P., Content of osmolytes and flavonoids under salt stress in Arabidopsis thaliana plants defective in jasmonate signaling, Appl. Biochem. Microbiol., 2016, vol. 52, no. 2, pp. 210–215.https:\u002F\u002Fdoi.org\u002F10.1134\u002FS0003683816020186","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS0003683816020186",{"doi":631},"10.1134\u002FS0003683816020186",{"id":20,"text":633,"url":634,"identifiers":635},"Yastreb, T.O., Kolupaev, Yu.E., Shvidenko, N.V., and Dmitriev, A.P., Action of methyl jasmonate and salt stress on antioxidant system of Arabidopsis plants defective in jasmonate signaling genes, Ukr. Biochem. J., 2018, vol. 90, no. 5, pp. 50–59.https:\u002F\u002Fdoi.org\u002F10.15407\u002Fubj90.05.050","http:\u002F\u002Fdx.doi.org\u002F10.15407\u002Fubj90.05.050",{"doi":636},"10.15407\u002Fubj90.05.050",{"id":20,"text":638,"url":639,"identifiers":640},"Lorenzo, O., Chico, J.M., Sanchez-Serrano, J.J., and Solano, R., JASMONATE-INSENSITIVE1 encodes a MYC transcription factor essential to discriminate between different jasmonate-regulated defense responses in Arabidopsis,Plant Cell, 2004, vol. 16, no. 7, pp. 1938–1950. https:\u002F\u002Fdoi.org\u002F10.1105\u002Ftpc.022319","https:\u002F\u002Fdoi.org\u002F10.1105\u002Ftpc.022319",{"mag":641,"pmc":642,"openalex":643,"pm":644,"doi":645},"2114425137","514172","W2114425137","15208388","10.1105\u002Ftpc.022319",{"id":20,"text":647,"url":648,"identifiers":649},"Anderson, J.P., Badruzsaufari, E., Schenk, P.M., Manners, J.M., Desmond, O.J., Ehlert, C., Maclean, D.J., Ebert, P.R., and Kazan K., Antagonistic inter-action between abscisic acid and jasmonate-ethylene signaling pathways modulates defense gene expression and disease resistance in Arabidopsis,Plant Cell, 2004, vol. 16, no. 12, pp. 3460–3479. https:\u002F\u002Fdoi.org\u002F10.1105\u002Ftpc.104.025833","http:\u002F\u002Fdx.doi.org\u002F10.1105\u002Ftpc.104.025833",{"doi":650},"10.1105\u002Ftpc.104.025833",{"id":20,"text":652,"url":653,"identifiers":654},"Honda, K., Yamada, N., Yoshida, R., Ihara, H., Sawa, T., Akaike, T., and Iwai, S., 8-Mercapto-cyclic GMP mediates hydrogen sulfide-induced stomatal closure in Arabidopsis,Plant Cell Physiol., 2015, vol. 56, no. 8, pp. 1481–1489. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fpcp\u002Fpcv069","https:\u002F\u002Fdoi.org\u002F10.1093\u002Fpcp\u002Fpcv069",{"mag":655,"openalex":656,"pm":657,"doi":658},"2344653451","W2344653451","25975264","10.1093\u002Fpcp\u002Fpcv069",{"id":20,"text":660,"url":20,"identifiers":661},"Iakovenko, O.M., Kretynin, S.V., Kabachevskaya, E.M., Lyakhnovich, G.V., Volotovski, D.I., and Kravets, V.S., Role of phospholipase C in ABA regulation of stomata function, Ukr. Bot. J., 2008, vol. 65, no. 4, pp. 605–613.",{},{"id":663,"text":664,"url":665,"identifiers":666},"57342d65-381f-4333-8daf-84345c9c39d3","Yastreb, O.I., Kolupaev, Yu.A., Kokorev, A.I., Horielova, A.I., and Dmitriev, A.P., Methyl jasmonate and nitric oxide in regulation of the stomatal apparatus of Arabidopsis thaliana,Cytol. Genet., 2018, vol. 52, no. 6, pp. 400–405. https:\u002F\u002Fdoi.org\u002F10.3103\u002FS0095452718060129","http:\u002F\u002Flink.springer.com\u002F10.3103\u002FS0095452718060129",{"doi":667},"10.3103\u002FS0095452718060129",{"id":669,"text":670,"url":671,"identifiers":672},"6f7a5410-2da7-4a39-bc77-35b445fae871","Yastreb, T.O., Kolupaev, Yu.E., Lugovaya, A.A., and Dmitriev, A.P., Formation of adaptive reactions in Arabidopsis thaliana wild-type and mutant jin1 plants under action of abscisic acid and salt stress, Cytol. Genet., 2017, vol. 51, no. 5, pp. 325–330. https:\u002F\u002Fdoi.org\u002F10.3103\u002FS0095452717050115","http:\u002F\u002Flink.springer.com\u002F10.3103\u002FS0095452717050115",{"doi":673},"10.3103\u002Fs0095452717050115",{"id":675,"text":676,"url":677,"identifiers":678},"215423ad-ab33-41db-864d-c5aa6d447370","Ton, J., Flors, V., and Mauch-Mani, B., The multifaceted role of ABA in disease resistance, Trends Plant Sci., 2009, vol. 14, no. 6, pp. 310–317.https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tplants.2009.03.006","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1360138509001198",{"doi":679},"10.1016\u002Fj.tplants.2009.03.006",{"id":681,"text":682,"url":683,"identifiers":684},"1a673b2c-d7e3-4d7d-8870-14d56fce39f9","de Ollas, C. and Dodd I.C., Physiological impacts of ABA–JA interactions under water-limitation, Plant Mol. Biol., 2016, vol. 91, pp. 641–650. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11103-016-0503-6","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11103-016-0503-6",{"doi":685},"10.1007\u002Fs11103-016-0503-6",{"id":20,"text":687,"url":688,"identifiers":689},"Ismail, A., Riemann, M., and Nick, P., The jasmonate pathway mediates salt tolerance in grapevines, J. Exp. Bot., 2012, vol. 63, no. 5, pp. 2127–2139. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fjxb\u002Ferr426","https:\u002F\u002Fdoi.org\u002F10.1093\u002Fjxb\u002Ferr426",{"mag":690,"pmc":691,"openalex":692,"pm":693,"doi":694},"2151582734","3295401","W2151582734","22223808","10.1093\u002Fjxb\u002Ferr426",{"id":20,"text":696,"url":697,"identifiers":698},"Dombrecht, B., Xue, G.P., Sprague, S.J., Kirkegaard, J.A., Ross, J.J., Reid, J.B., Fitt, G.P., Sewelam, N., Schenk, P.M., Manners, J.M., and Kazan, K., MYC2 differentially modulates diverse jasmonate-dependent functions in Arabidopsis, Plant Cell, 2007, vol. 19, no. 7, pp. 2225–2245.https:\u002F\u002Fdoi.org\u002F10.1105\u002Ftpc.106.048017","https:\u002F\u002Fdoi.org\u002F10.1105\u002Ftpc.106.048017",{"mag":699,"pmc":700,"openalex":701,"pm":702,"doi":703},"2061205797","1955694","W2061205797","17616737","10.1105\u002Ftpc.106.048017",{"id":20,"text":705,"url":706,"identifiers":707},"Kazan, K., Diverse roles of jasmonates and ethylene in abiotic stress tolerance, Trends Plant Sci., 2015, vol. 20, no. 4, pp. 219–229. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tplants.2015.02.001","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tplants.2015.02.001",{"mag":708,"openalex":709,"pm":710,"doi":711},"2075496725","W2075496725","25731753","10.1016\u002Fj.tplants.2015.02.001",{"id":713,"createTime":714,"updateTime":714,"relativeEntities":715,"slug":20,"properties":716,"entityType":160,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":725,"fullTextUrl":20,"authors":726,"publicationType":193,"publisherRelationship":806,"citationCount":20,"citationInfo":20,"publishDate":840,"publishYear":841,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":225},"672d9ae7-3269-43ca-bbd8-c3c7be2ed7b3","2023-12-21T23:58:56.453+00:00",[],{"references":717,"abstract":719,"title":721,"doi":723},{"VOID":718},"Shafirkin, A.V. and Gorlov, V.G., Model Description of the Kinetics of the Effective Body Lesion in Prolonged and Chronic Radiation Exposures, Radiobiologiya, 1978, vol. 18, no. 2, pp. 253–258.\nKravets, A.P., Gatilova, G.D., and Grodzinskii, D.M., The Dynamics of Cytogenetic Anomalies Output in Seedling Merysteme at the Chronic Irradiation of Seeds, Radiats. Biol. Radioekol., 2008, vol. 48, no. 3, pp. 208–219.\nVasin, A.L. and Shafirkin, A.V., The Quantitative Criteria of the Transition from Norm to Pathology at Chronic Exposure of Physical Factors, Radiats. Biol. Radioekol., 2006, vol. 46, no. 4, pp. 498–507.\nTishchenko, E.N. and Dubrovnaya, O.V., Epigeneticheskaya regulyatsiya. Metilirovanie DNK genov i transgenov rastenii (Epigenetic Regulation. Methylation of DNA of Plant Genes and Transgenes), Kiev: Logos, 2004.\nPogribny, I., Koturbash, I., Tryndyak, V., Hudson, D., Stevenson, S.M.L., Sedelnikova, O., Bonner, W., and Kovalchuk, O., Fractionated Low-Dose Radiation Exposure Leads to Accumulation of DNA Damage and Profound Alterations in DNA and Histone Methylation in the Murine Thymus, Mol. Cancer Res., 2005, vol. 3, pp. 553–561.\nBernal, A., Dolinoy, D.C., Huang, D., and Jirtle, R.L., Low Dose Radiation Alters the Fetal Epigenome (http:\u002F\u002Fwww.orau.gov\u002Flowdose2009\u002Fabstracts\u002FJirtle_Randay.pdf).\nKim, S.Y., Yun, H.J., Kwon, Y.Y., Kim, E.J., and Kang, C.M., Possible Biomarkers for Low Dose Radiation Exposure and\u002For for Old Exposure (http:\u002F\u002Fwww.dartmouth.edu\u002F~eprctr\u002Fbiodose2008\u002Fpdf\u002FB10.pdf).\nDyachenko, O.V., Zakharchenko, N.S., Shevchuk, T.V., Bohnert, H.J., Cushman, J.C., and Buryanov, Ya.I., Effect of Hypermethylation of CCWGG Sequences in DNA, Biochemistry, 2006, vol. 71, no. 4, pp. 461–465.\nKovalchuk, O., Burke, P., Arkhipov, A., Kuchma, N., James, S.J., Kovalchuk, I., and Pogribny, I., Genome Hypermethylation in Pinus sylvestris of Chernobyl—A Mechanism for Radiation Adaptation?, Mutat. Res., 2003, vol. 529, nos. 1\u002F2, pp. 13–20.\nVagin, V.V., Sigova, A., Li, Ch., Herve, Seitz H., Gvozdev, V., and Zamore, P.D., A Distinct Small RNA Pathway Silences Selfish Genetic Elements in the Germline, Science, 2006, no. 5785, pp. 320–324.\nAravin, A.A., Sachidanandam, R., Girard, A., Fejes-Toth, K., and Hannon, G.J., Developmentally Regulated piRNA Clusters Implicate MILI in Transposon Control, Science, 2007, vol. 316, pp. 744–747.\nBrooks, A.L., Biomarkers of Exposure, Sensitivity and Disease, Int. J. Radiat. Biol., 1999, vol. 75, no. 12, pp. 1481–1503.",{"EN":720},"Alterations of DNA methylation patterns of two wheat sorts Al’batros odesskii and Donetskaya-48 whose seeds were irradiated with a low dose rate (3 × 10−7 Gy\u002Fs) for 4 months have been studied. Six restriction endonucleases were used in the experiments. Primary distinction in DNA methylation patterns of the studied sorts has been demonstrated. Chronic irradiation resulted in an increase of the methylation level on the recognion site for GluI and Sou3AI and in a decrease of this index in recognion sites for endonucleases GlaI and HpaII. The alterations of the methylation level in recognition sites for restrictases MboI and MspI were not found. The considerable increase of chromosome aberration level at the same dose of chronic irradiation has been shown. The role of DNA methylation pattern changes in development of irradiation damage and organism protective reactions is discussed.",{"EN":722},"Wheat plant DNA methylation pattern changes at chronic seed γ irradiation",{"VOID":724},"10.3103\u002FS0095452710050038","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.3103\u002FS0095452710050038",[727,742,754,769,781,793],{"id":728,"sortIndex":74,"researcher":20,"roles":729,"affiliations":730,"properties":739},"dd9bfc3f-f983-4253-9014-f60e59398219",[168],[731],{"id":20,"sortIndex":21,"affiliation":732,"properties":20},{"id":733,"createTime":734,"updateTime":734,"relativeEntities":735,"slug":20,"properties":736,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"e3ba791b-32e8-45df-9bb8-ff672fce0e3f","2023-12-06T12:20:25.870+00:00",[],{"title":737},{"VI":738},"University of South Carolina, Columbia, (USA)",{"title":740},{"VI":741},"A. V. Litvinchuk",{"id":743,"sortIndex":135,"researcher":20,"roles":744,"affiliations":745,"properties":751},"8a0aa450-f1e5-4801-b9ab-73467691b7f1",[168],[746],{"id":20,"sortIndex":21,"affiliation":747,"properties":20},{"id":733,"createTime":734,"updateTime":734,"relativeEntities":748,"slug":20,"properties":749,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":750},{"VI":738},{"title":752},{"VI":753},"T. A. Mousseau",{"id":755,"sortIndex":21,"researcher":20,"roles":756,"affiliations":757,"properties":766},"53b7ef39-7f9b-4235-ad32-66f78ce6ce9a",[168],[758],{"id":20,"sortIndex":21,"affiliation":759,"properties":20},{"id":760,"createTime":761,"updateTime":761,"relativeEntities":762,"slug":20,"properties":763,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"f33041ab-5721-4ea7-822c-136b8c96d74a","2023-12-11T14:05:22.653+00:00",[],{"title":764},{"VI":765},"Institute of Cell Biology and Gene Engineering, Ukrainian National Academy of Sciences, Kiev, Ukraine",{"title":767},{"VI":768},"A. P. Kravets",{"id":770,"sortIndex":247,"researcher":20,"roles":771,"affiliations":772,"properties":778},"06ba2d70-9cdc-457a-946f-b8eb5f062f46",[168],[773],{"id":20,"sortIndex":21,"affiliation":774,"properties":20},{"id":733,"createTime":734,"updateTime":734,"relativeEntities":775,"slug":20,"properties":776,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":777},{"VI":738},{"title":779},{"VI":780},"Sh. Ostermiller",{"id":782,"sortIndex":279,"researcher":20,"roles":783,"affiliations":784,"properties":790},"68a6c13c-0de2-4cdf-a88c-8147e62af80c",[168],[785],{"id":20,"sortIndex":21,"affiliation":786,"properties":20},{"id":760,"createTime":761,"updateTime":761,"relativeEntities":787,"slug":20,"properties":788,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":789},{"VI":765},{"title":791},{"VI":792},"G. S. Vengzhen",{"id":794,"sortIndex":795,"researcher":20,"roles":796,"affiliations":797,"properties":803},"a8a5eefa-d3a7-4038-8229-0c8d3f0b2dc5",5,[168],[798],{"id":20,"sortIndex":21,"affiliation":799,"properties":20},{"id":760,"createTime":761,"updateTime":761,"relativeEntities":800,"slug":20,"properties":801,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":802},{"VI":765},{"title":804},{"VI":805},"D. M. Grodzinskiy",{"url":725,"publisher":807,"properties":835},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":808,"slug":10,"properties":809,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":813,"manageAffiliations":814,"indexDatabases":815,"url":130,"thumbnailPath":20,"statistic":830,"gsStatistic":20,"type":138,"analyzePriority":20},[],{"issn":810,"eissn":811,"title":812},{"VOID":13},{"VOID":15},{"EN":17},[],[],[816,823],{"id":112,"indexDatabase":817,"url":127,"indexYears":20,"academicFieldIds":822,"indexDatabaseRanking":20},{"id":114,"createTime":115,"updateTime":116,"relativeEntities":818,"label":819,"description":820,"key":123,"publicationTags":821,"standard":20},[],{"EN":119,"VI":119},{"VI":121,"EN":122},[125,126],[129],{"id":89,"indexDatabase":824,"url":102,"indexYears":103,"academicFieldIds":829,"indexDatabaseRanking":110},{"id":91,"createTime":92,"updateTime":93,"relativeEntities":825,"label":826,"description":827,"key":99,"publicationTags":828,"standard":20},[],{"EN":96,"VI":96},{"EN":96,"VI":98},[101],[105,106,107,108,109],{"impactFactor":21,"impactFactorByYear":831,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":133,"totalPublicationByYear":832,"totalCitation":21,"totalCitationByYear":833,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":834,"hindexLast5Year":21,"hindex":21},{},{"2007":135,"2008":135,"2009":135,"2011":135,"2012":135,"2016":135,"2017":135,"2019":74,"2021":74},{},{},{"volume":836,"pages":838},{"VOID":837},"44",{"VOID":839},"276-279","2010-10-13",2010,{"id":843,"createTime":844,"updateTime":845,"relativeEntities":846,"slug":847,"properties":848,"entityType":160,"verifyStatus":161,"verifyTime":845,"verifyNote":162,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":857,"fullTextUrl":20,"authors":858,"publicationType":193,"publisherRelationship":910,"citationCount":20,"citationInfo":20,"publishDate":944,"publishYear":945,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":225},"b799af5b-482e-4966-9b70-e586a7004a4a","2023-12-13T07:17:19.085+00:00","2025-01-14T23:57:36.786+00:00",[],"TLR4-896A-G-gene-polymorphism-rather-than-the-TLR4-1196C-T-and-TLR2-2258G-A-gene-polymorphisms-determines-the-severe-and-aggravated-course-of-atopic-dermatitis-in-children",{"references":849,"abstract":851,"title":853,"doi":855},{"VOID":850},"Kusunoki, T., Morimoto, T., Nishikomori, R., et al., Changing prevalence and severity of childhood allergic diseases in Kyoto, Japan, from 1996 to 2006, Allerg. Int., 2009, vol. 58, no. 4, pp. 543–548.\nAsher, M.I., Montefort, S., Bjorksten, B., et al., Worldwide time trends in the prevalence of symptoms of asthma, allergic rhinoconjunctivitis, and eczema in childhood: ISAAC phases one and three repeat multi-country cross-sectional surveys, Lancet, 2006, vol. 368, pp. 733–743.\nShamssain, M., Trends in the prevalence and severity of asthma, rhinitis and atopic eczema in 6- to 7- and 13- to 14-yr-old children from the north-east of England, Pediatr. Allergy Immunol., 2007, vol. 18, no. 2, pp. 149–153.\nKuhnyar, A., Egyud, K., Szabo, I., et al., Prevalence of atopic dermatitis among children under 19 in an east-Hungarian agricultural county, Clin. Dev. Immunol., 2006, vol. 13, nos. 2\u002F4, pp. 395–399.\nRevyakina, V.A. and Filatova, T.A., From atopic dermatitis to asthma in children, Lech. Vrach, 2006, no. 1, pp. 16–20.\nZaitseva, O.V., Acute respiratory infections in allergic patients, Lech. Vrach, 2006, no. 9, pp. 92–94.\nSimbirtsev, A.S., Toll proteins: specific receptors of nonspecific immunity, Immunologiya, 2005, no. 6, pp. 368–377.\nKryuchko, T.O., Kaidashev, I.P., Vovk, Yu.O., et al., Genetic polymorphism of Toll-Like receptor 4 in children with atopic bronchial asthma, Klin. Immunol. Allergol. Infektol., 2011, no. 5, pp. 52–54.\nTal, G., Mandelberg, A., Dalal, I., et al., Association between common Toll-like receptor 4 mutations and severe respiratory syncytial virus disease, J. Infect. Dis., 2004, vol. 189, no. 1, pp. 2057–2063.\nIzmailova, O.V., Shlikova, O.A., Bobrova, N.O., et al., The role of Toll-like receptor 4 polymorphism Asp299Gly in the development of bacterial sexually transmitted infections, Probl. Ekol. Med., 2009, vol. 13, no. 5\u002F6, pp. 3–6.\nOstrovs’ka, L.I., Petrushanko, T.O., and Kaidashev, I.P., Toll-like receptor 4 gene polymorphism Asp299Gly in the development of gingivitis in pregnant women, Ukr. Stomat. Al’manakh, 2009, no. 6, pp. 17–19.\nGankovskaya, O.A., Bakhareva, I.V., Gankovskaya, L.V., et al., The study of expression of TLR9, NF-κB, and TNFα genes in cells lining the cervix in pregnant women with herpes virus infection, Zh. Mikrobiol., 2009, no. 2, pp. 61–64.\nPapadopoulos, A.I., Ferwerda, B., Antoniadou, A., et al., Association of Toll-like receptor 4 Asp299Gly and Thr399Ile polymorphisms with increased infection risk in patients with advanced HIV-1 infection, Clin. Infect. Dis., 2010, vol. 51, no. 2, pp. 242–247.\nSul’skaya, Yu.V., Genetic polymorphism of the Toll-like receptor type 4 in patients with diabetes mellitus type 2, Tavr. Med.-Biol. Vestn., 2009, vol. 12, no. 3 (47), pp. 72–74.\nBeloglazova, K.V., Shlykova, O.A., Izmailova, O.V., and Kaidashev, I.P., Toll-like receptor 4 polymorphism Asp299Gly in patients with rheumatoid arthritis, Probl. Ekol. Med., 2009, vol. 13, nos. 5\u002F6, pp. 15–17.\nBondarenko, V.M. and Likhoded, V.G., Microbial factor and Toll-like receptors in the pathogenesis of atherosclerosis, Zh. Mikrobiol., 2009, no. 6, pp. 107–112.\nPabst, S., Baumgarten, G., Stremmel, A., et al., Toll-like receptor (TLR) 4 polymorphisms are associated with a chronic course of sarcoidosis, Clin. Exp. Immunol., 2006, vol. 143, no. 3, pp. 420–426.\nAhmad-Nejad, P., Mrabet-Dahbi, S., Breuer, K., et al., The Toll-like receptor 2 R753Q polymorphism defines a subgroup of patients with atopic dermatitis having severe phenotype, J. Allergy Clin. Immunol., 2004, vol. 113, no. 3, pp. 565–567.\nNiebuhr, M., Langnickel, J., Draing, C., et al., Dysregulation of Toll-like receptor-2 (TLR-2)-induced effects in monocytes from patients with atopic dermatitis: impact of the TLR-2 r753q polymorphism, Allergy, 2008, vol. 63, no. 6, pp. 728–734.\nNovak, N., Yu, C.-F., Bussmann, C., et al., Putative association of a TLR9 promoter polymorphism with atopic eczema, Allergy, 2007, vol. 62, no. 7, pp. 766–772.\nWeidinger, S., Novak, N., Klopp, N., et al., Lack of association between Toll-like receptor 2 and Toll-like receptor 4 polymorphisms and atopic eczema, J. Allergy Clin. Immunol., 2006, vol. 118, no. 1, pp. 277–279.\nHoffjan, S., Stemmler, S., Parwez, Q., et al., Evaluation of the Toll-like receptor 6 Ser249Pro polymorphism in patients with asthma, atopic dermatitis and chronic obstructive pulmonary disease, BMC Med. Genet., 2005, vol. 6, p. 34.\nProtocol for diagnosis and treatment of children with atypic dermatitis, Ukrainian Public Health Ministry order no. 767 issued 27.12.2005, annex 5.\nKubanova, A.A., Dermatovenerologiya: Klin. rekomendatsii (Dermatovenereology: Clinical Recommendations), Moscow: GEOTAR-Media, 2006.\nErshova, I.B., Vysotskii, A.A., Tkachenko, V.I., et al., Often ill children: the possibilities of complex rehabilitation, Dit. Likar, 2009, no. 1, pp. 58–62.\nIzmailova, O.V., Shlykova, O.A., Bobrova, N.O., and Kaidashev, I.P., Relationship between the tlr2 and tlr4 gene polymorphisms with a predisposition to certain urogenital infections, Cytol. Genet., 2011, vol. 45, no. 4, pp. 29–35.\nNisheva, E.S., Avvakumova, A.V., Kaplin, N.N., et al., Defects in innate immune defense mechanisms against infections in children with atopic dermatitis, in IV Rossiiskii forum “Zdorov’e detei: profilaktika sotsial’noznachimykh zabolevanii (IV Russian Forum Children’s Health: Prevention of Socially Significant Diseases), St. Petersburg, 2010, vol. 1, no. 1, p. 133.\nTitova, N.D., The role of innate immune system in the occurrence of allergic diseases, Immunopatol. Allergol. Infektol., 2009, no. 3, pp. 32–39.\nTolstopyatova, M.A., Buslaeva, G.A., and Kozlov, I.G., The role of innate immune receptors in the development of infectious diseases in newborn infants, Pediatriya, 2009, vol. 87, no. 1, pp. 115–120.\nBalabolkin, I.I. and Bulgakova, V.A., Associated manifestations of respiratory and skin allergies in children, Med. Sovet., 2008, no. 5\u002F6, pp. 28–37.\nModrzynski, M. and Zawisza, E., An analysis of the incidence of adenoid hypertrophy in allergic children, Int. J. Pediatr. Otorhinolaryngol., 2007, vol. 71, no. 5, pp. 713–719.\nKrugovskaya, N.L., Allergic Adenoids in Children, Extended Abstract of Cand. Sci. (Med.) Dissertation, Moscow, 2009.",{"EN":852},"The frequencies of the TLR2 gene 2258G\u002FA and the TLR4 gene 1196C\u002FT and 896A\u002FG polymorphisms in children with atopic dermatitis (AD) were studied against controls. It was established after analyzing the distribution of the TLR2 and TLR4 genotypes and alleles that the TLR4 gene’s mutant 896G allele is reliably more frequently detected in children with AD who are susceptible to acute respiratory viral infections (9.3%), compared to the control group (χ2 = 4.33; p = 0.038). An analysis of the clinical manifestations of the disease and their associations has shown a higher frequency of its mild course (p = 0.0001) in children with AD who have normal body resistance and of a moderately severe course (p = 0.0033), as well as of concomitant allergic rhinitis (AR) and\u002For bronchial asthma (BA) (p = 0.0355) and concomitant AR (p = 0.0673), in AD patients with higher susceptibility to acute respiratory viral infections. A severe course of the disease (p = 0.0485), associated with adenoid vegetation in combination with AR and\u002For BA (p = n0.0248) and concomitant adenoid vegetation in combination with AR (p = 0.0053), was more frequent in AD patients with the TLR4 gene’s mutant 896G allele, compared to patients with a “wild”-type allele.",{"EN":854},"TLR4 896A\u002FG gene polymorphism, rather than the TLR4 1196C\u002FT and TLR2 2258G\u002FA gene polymorphisms, determines the severe and aggravated course of atopic dermatitis in children",{"VOID":856},"10.3103\u002FS0095452713030067","http:\u002F\u002Flink.springer.com\u002F10.3103\u002FS0095452713030067",[859,874,886,898],{"id":860,"sortIndex":74,"researcher":20,"roles":861,"affiliations":862,"properties":871},"e8ed7e35-0a14-4b48-b9f1-f11a4f31a5d7",[168],[863],{"id":20,"sortIndex":21,"affiliation":864,"properties":20},{"id":865,"createTime":866,"updateTime":866,"relativeEntities":867,"slug":20,"properties":868,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"cfa6fa7c-d955-47f3-9620-787af45cfcac","2023-12-13T07:17:29.902+00:00",[],{"title":869},{"VI":870},"Research Institute of Genetics and Immunological Grounds of Pathology and Pharmacogenetics, Ukrainian Medical Stomatological Academy, Poltava, Ukraine",{"title":872},{"VI":873},"O. A. Shlykova",{"id":875,"sortIndex":21,"researcher":20,"roles":876,"affiliations":877,"properties":883},"ce3ca869-fd72-45e1-a61d-2d29c12dbd2c",[168],[878],{"id":20,"sortIndex":21,"affiliation":879,"properties":20},{"id":865,"createTime":866,"updateTime":866,"relativeEntities":880,"slug":20,"properties":881,"entityType":73,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":882},{"VI":870},{"title":884},{"VI":885},"L. Yu. 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Int., 2008, vol. 34, no. 6, pp. 880–897.\nKovalchuk, I., Abramov, V., Pogribny, I., and Kovalchuk, O., Molecular aspects of plant adaptation to life in the Chernobyl zone, Plant Physiol., 2004, vol. 135, pp. 357–363.\nMøller, A.P. and Mousseau, T.A., Biological consequences of Chernobyl: 20 years on, Trends Ecol. Evol., 2006, vol. 21, pp. 200–207.\nMøller, A.P. and Mousseaue, T.A., Species richness and abundance of forest birds in relation to radiation at Chernobyl, Biol. Lett., 2007, vol. 3, pp. 483–486.\nMøller, A.P. and Mousseaue, T.A., Reduced abundance of insects and spiders linked to radiation at Chernobyl 20 years after the accident, Biol. Lett., 2009, vol. 5, pp. 356–359.\nMøller, A.P. and Mousseaue, T.A., Efficiency of bioindicators for low-level radiation under field conditions, Ecol. Indicators, 2011, vol. 11, pp. 424–430.\nMøller, A.P., Nishiumic, I., Suzukid, H., Uedab, K., and Mousseaue, T.A., Differences in effects of radiation on abundance of animals in Fukushima and Chernobyl, Ecol. Indicators, 2013, vol. 24, pp. 75–81.\nMousseaue, T.A. and Møller, A.P., Genetic and ecological studies of animals in Chernobyl and Fukushima, J. Heredity, 2014, vol. 105, no. 5, pp. 704–709.\nYablokov, A.V., Nesterenko, V.B., and Nesterenko, A.V., Chernobyl: Consequences of the Catastrophe for People and the Environment, New York: Acad. Sci., 2009.\nDrozd, V.M., Lushchyk, M.L., Danilova, L.I., Okulevich, N.M., Shimanskaya, I.G., Mitiukova, T.A., Shiglik, N., and Branovan, I., Experience of thyroid gland status screening in post Chernobyl period, Cytol. Genet., 2016, vol. 50, no. 6, pp. 8–14.\nTronko, N.D. and Pushkarev, V.M., 30 years of the Chernobyl accident. molecular genetic mechanisms of carcinogenesis of thyroid gland, Cytol. Genet., 2016, vol. 50, no. 6, pp. 15–22.\nDrozd, V.M., Branovan, I., Shiglik, N., Lushchyk, M.L., Platonova, T.Y., Pashkevich, V.I., Kudelsky, A.V., Shimanskaya, I., Danilova, L.I., Biko, J., and Reiners, C., Influence of nitrate in drinking water on the prevalence of thyroid cancer and other diseases (literature review and experience in post-Chernobyl period in Belarus), Cytol. Genet., 2016, vol. 50, no. 6, pp. 23–28.\nBranovan, I., Fridman, M., Lushchyk, M., Drozd, V., Krasko, O., Nedzvedz, O., Shiglik, N., and Danilova, L., Morphological evaluation of the effectiveness of bipolar radiofrequency ablation for thyroid nodules, Cytol. Genet., 2016, vol. 50, no. 6, pp. 29–33.\nBoubriak, I., Akimkina, T., Polischuk, V., Dmitriev, A., McCready, S., and Grodzinsky, D., Long term effects of Chernobyl contamination on DNA repair function and plant resistance to different biotic and abiotic stress factors, Cytol. Genet, 2016, vol. 50, no. 6, pp. 34–59.\nDanchenko, M.M., Klubicov, E., Krivohizha, I.V., Berezhna, V.V., Sakada, V.I., Hajduch, I., and Rashydov, N.M., Modern methods of investigation of the effect of chronic low-dose radiation on plants in the conditions of the Chernobyl alienation zone on the basis of the systematic biology, Cytol. Genet, 2016, vol. 50, no. 6, pp. 60–79.\nKozubov, G.M. and Taskaev, A.I., The features of morphogenesis and growth processes of conifers in the Chernobyl nuclear accident zone, Radiat. Biol. Radioecol., 2007, vol. 47, pp. 204–223 (in Russian).\nWatanabe, Y., Ichikawa, K., Kubota, M., Hoshino, J., Kubota, Y., Maruyama, K., Fuma, S., Kawaguchi, I., Yoschenko, V.I., and Yoshida, S., Morphological defects in native Japanese fir trees around the Fukushima Daiichi nuclear power plant, Sci. Rep., 2015, vol. 5, p. 13232. doi 10.1038\u002Fsrep13232.\nSorochinsky, B.V., Molecular-biological nature of morphological abnormalities induced by chronic irradiation in coniferous plants from the Chernobyl exclusion zone: emphasis on a possible role of the cytoskeleton, Cytol. Genet., 2003, vol. 37, pp. 49–55.\nYemets, A.I., Blume, R.Ya., and Sorochinsky, B.V., Adaptation of the gymnosperms to the conditions of irradiation in Chernobyl zone: from morphological abnormalities to the molecular genetic consequences, Cytol. Genet., 2016, vol. 50, no. 6, pp. 415–419.\nKashparov, V., Levchuk, S., Khomutynyn, Iu., Morozova, V., and Zhurba, M., Chernobyl: 30 Years of Radioactive Contamination Legacy. Ukr. Inst. Agricult. Radiol. of Natl Univ. Life and Environm. 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Urol., 1999, vol. 162, pp. 1096–1100.\nGatti, R., Ferretti, S., Bucci, G., Simonazzi, M., Cortellini, P., and Orlandini, G., Histological Adaptation of Orthotopic Ileal Neobladder Mucosa: 4-Year Follow-Up of 30 Patients, Eur. Urol., 1999, vol. 36, no. 6, pp. 588–594.\nParenti, A., Aragona, F., Bortuzzo, G., De Caro, R., and Pagano, F., Abnormal Patterns of Mucin Secretion in Ileal Neobladder Mucosa: Evidence of Preneoplastic Lesion?, Eur. Urol., 1999, vol. 35, no. 2, pp. 98–101.\nDi Tonno, F., Cassaro, M., Bertoldin, R., Vianello, F., Di Pietro, R., Lavetti, D., and Rugge, M., Colonic Metaplasia in the Long-Term Follow-Up of the Ileal Neobladder, Eur. Urol., 2001, vol. 39, no. 2, pp. 15–18.\nStakhovskii, E.A., et al., UA Inventor’s Certificate No. 24870, Byull., 1998, No. 6 (2), p. 3.1.36.\nAvtandilov, G.G., Osnovy patologoanatomicheskoi praktiki: Rukovodstvo (Basics of Pathoanatomical Practice: Guidelines) 3rd ed. (extended), Moscow: Ros. Med. Akad. Poslediplom. Obraz., 2007.\nHayat, M.A., Handbook of Immunohistochemistry an in situ Hybridization of Human Carcinomas. Molecular Genetics, Gastrointestinal Carcinoma, and Ovarian Carcinoma, Elsevier: Acad. Press, 2006, vol. 4.\nQtang Liu, Ming Teh, Kosei Ito, Nilesh Shah, Yoshiaki Ito, and Khay Guan Yeoh, CDX2 Expression Is Progressively Decreased in Human Gastric Intestinal Metaplasia, Dysplasia and Cancer, Modern Pathol., 2007, vol. 20, pp. 1286–1297.\nDarienko, R.O., Clinical and Morphological Adaptation of an Artificial Bladder, Cand. Sci. (Med.) Dissertation, St. Petersburg, 2008.\nDeev, R.V., Akhmedov, T.A., and Komyakov, B.K., Cell Renewal in the Intestinal Epithelium during Reactive Changes in the Mucous Membrane, Klet. Transplantol. Tkan. 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Rev., 2008, vol. 7, pp. 553–577.\nScheludko, Y.V., Recent Advances in Plant Biotechnology and Genetic Engineering for Production of Secondary Metabolites, Cytol. Genet., 2010, no. 1, pp. 65–75.\nGoltsov, A.A., Kovalchuk, A.A., Abramov, B.Ph., and Milaschenko, H.Z., Rapeseed, Moscow: Kolos, 1983.\nVekhov, B.N., Gubanov, I.A., and Lebedeva, G.Ph., The Cultivated Plants of USSR, Moscow: Mysl’, 1978.\nScarth, R. and Tang, J., Modification of Brassica Oil Using Conventional and Transgenic Approaches, Crop Sci., 2006, vol. 46, pp. 1225–1236.\nMurphy, D.J., Molecular Breeding Strategies for the Modification of Lipid Composition, In Vitro Cell Dev. Biol. Plant, 2006, vol. 42, pp. 89–99.\nSakhno, L.O., Variability in the Fatty Acid Composition of Rapeseed Oil: Classical Breeding and Biotechnology, Cytol. Genet., 2010, vol. 44, no. 6, pp. 389–397.\nSenior, I.J. and Dale, P.J., Herbicide-Tolerant Crops in Agriculture: Oilseed Rape As a Case Study, Plant Breed., 2002, vol. 121, pp. 97–107.\nStewart, C.N., Jr., Adang, M.J., All, J.A., Raymer, P.L., Ramachandra, S., and Parrott, W.A., Insect Control and Dosage Effects in Transgenic Rapeseed Containing a Synthetic Bacillus thuringiensis cryIAC Gene, Plant Physiol., 1996, vol. 112, pp. 115–120.\nMelander, M., Ahman, I., Kamnert, I., and Strömdahl A.-Ch., Pea Lectin Expressed Transgenically in Oilseed Rape Reduces Growth Rate of Pollen Beetle Larvae, Transgenic Res., 2003, vol. 12, pp. 555–567.\nOrison, R., Grezesbesse, B., Schneider, M., Lucante, N., Olsen, L., Leguay, J.J., and Toppan, A., Field Tolerance to Fungal Pathogens of Brassica napus Constitutively Expressing a Chimeric Chitinase Gene, Nature Biotech., 1996, vol. 14, pp. 643–646.\nTruksa, M., Vrinten, P., and Qiu, X., Metabolic Engineering of Plants for Polyunsaturated Fatty Acid Production, Mol. Breed., 2009, vol. 23, no. 1, pp. 1–11.\nHusken, A., Baumert, A., Miskowski, C., Becker, H.C., Dieter, S., and Möller, C., Resveratrol Glucoside (Piceid) Synthesis in Seeds of Transgenic Oilseed Rape (Brassica napus L.), Theor. Appl. Genet., 2005, vol. 111, pp. 1553–1562.\nLiu, J.-W., DeMichele, S., Bergana, M., et al., Characterization of Oil Exhibiting High Γ-Linolenic Acid from a Genetically Transformed Canola Strain, J. Amer. Oil. Chem. Soc., 2001, vol. 78, no. 5, pp. 489–493.\nSakhno, L.O., Gocheva, E.A., Komarnitskii, I.K., and Kuchuk, N.V., Stable Expression of the Promotorless Bar Gene in Transformed Rapeseed Plants, Cytol. Genet., 2008, vol. 42, no. 1, pp. 16–22.\nSambrook, J., Fritsch, E.F., and Maniatis, T., Molecular Cloning: A Laboratory Nanual, 2nd ed., New York: Cold Spring Harbor Laboratory Press, 1989.\nGerasymenko, I.M., Lypova, N.M., Sakhno, L.A., Shcherbak, N.L., Sindarovska, Y.R., Bannikova, M.A., Sheludko, Y.V., and Kuchuk, N.V., Obtaining and Analysis of Tobacco, Lettuce and Rape Plants Transformed with Human Interferon α2b Gene, in Factors of Experimental Evolution of Organisms, Kunakh, V.A., Ed., Kiev: Logos, 2009, vol. 7, pp. 274–279.\nGerasymenko, I.M., Sakhno, L.O., Mazur, M.G., and Sheludko, Y.V., Multiplex PCR Assay for Detection of Human Interferon α2b Gene in Transgenic Plants, Cytol. Genet., 2012, vol. 46, no. 4, pp. 3–8.\nBradford, M.M., A Rapid and Sensitive Method for the Quantitation of Microgram Quantities of Protein Utilizing the Principle of Protein-Dye Binding, Anal. Biochem., 1976, vol. 72, no. 2, pp. 248–254.\nRubinstein, S., Familletti, Ph., and Petska, S., Convenient Assay for Interferons, J. Virol., 1981, vol. 37, no. 5, pp. 755–758.\nSemenov, V.L. and Yarosh, A.M., A Method for Determination of Antioxidation Activity of the Biological Material, Ukr. Biochem. J., 1985, vol. 57, no. 3, pp. 50–52.\nBeyer, W.F. and Fridovich, I., Assaying for Superoxide Dismutase Activity Some Large Consequences of Minor Changes in Conditions, Anal. Biochem., 1987, vol. 161, no. 2, pp. 559–566.\nMurashige, T. and Skoog, F., A Revised Medium for Rapid Growth and Bioassays with Tobacco Tissue Cultures, Physiol. Plant., 1962, vol. 15, pp. 473–497.\nMaksimov, I.V. and Cherepanova, E.A., Pro-\u002FAntioxidant System and Resistance of Plants to Pathogens, Usp. Sovr. Biol. 2006, vol. 126, no. 3, pp. 250–261.\nKim, Y.-H., Lim, S., and Yang, K.-S., Expression of Arabidopsis NDPK2 Increases Antioxidant Enzyme Activities and Enhances Tolerance to Multiple Environmental Stresses in Transgenic Sweet Potato Plants, Mol. Breed, 2009, vol. 24, pp. 233–244.\nYang, L., Tang, R., and Zhu, J., Enhancement of Stress Tolerance in Transgenic Tobacco Plants Constitutively Expressing AtIpk2b, an Inositol Polyphosphate 6-\u002F3-Kinase from Arabidopsis thaliana, Plant. Mol. Biol., 2008, vol. 66, pp. 329–343.\nChen, I.-C., Chang, H.-C., Yang, H.-W., and Chen, G.-L., Evaluation of Total Antioxidant Activity of Several Popular Vegetables and Chinese Herbs: A Fast Approach with ABTS\u002FH2O2\u002FHRP System in Microplates, J. Foog Grug. Anal., 2004, vol. 12, no. 1, pp. 29–33.\nGusta, L.V., Benning, N.T., Wu, G., Luo, X., Liu, X., Gusta, M.L., and McHughen A., Superoxide Dismutase: An All-Purpose Gene for Agri-Biotechnology, Mol. Breed., 2009, vol. 24, pp. 103–115.",{"EN":1179},"Spring rapeseed transgenic lines expressing human interferon alpha 2b were created by using Agrobacterium-mediated transformation of aseptic plant leaf explants. The maximum antiviral activity of the leaf extracts reached 4500 IU\u002Fg fresh weight. It was determined that the antioxidant activity and the activity of an enzyme of plant antioxidant system—superoxide dismutase (SOD)—in the leaf tissues of transgenic plants increased compared to controls. There were no correlations between the interferon and antioxidant activities, as well as between SOD and interferon activities. Using the obtained transgenic rapeseed plants with high interferon and antioxidant activities as a feed additive for animals might have preventive effect on their body, increasing resistance to infections of various origins.",{"EN":1181},"Creation of transgenic Brassica napus L. 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Int., 2003, vol. 27, pp. 219–221.",{"doi":1423},"10.1016\u002FS1065-6995(02)00315-3",{"id":20,"text":1425,"url":20,"identifiers":1426},"Ivanov, V.B., Proliferatsiya kletok v rasteniyakh (Proliferation of Cells in Plants), Moscow: VINITI, 1987, vol. 5 (Itogi Nauki i Tekh., Ser.: Tsitologiya, vol. 5).",{},{"id":20,"text":1428,"url":20,"identifiers":1429},"Baluška, F., Kubica, S., and Hauskrecht, M., Postmitotic Isodiametric Cell Growth in the Maize Root Apex, Planta, 1990, vol. 181, pp. 269–274.",{"doi":1430},"10.1007\u002FBF00195876",{"id":20,"text":1432,"url":20,"identifiers":1433},"Ishikawa, H. and Evans, M.L., The Role of the Distal Elongation Zone in the Response of Maize Roots to Auxin and Gravity, Plant Physiol., 1993, vol. 102, pp. 1203–1210.",{"doi":1434},"10.1104\u002Fpp.102.4.1203",{"id":20,"text":1436,"url":20,"identifiers":1437},"Fasano, J.M., Swanson, S.J., Blancaflor, E.B., Dowd, P.E., Kao, T.H., and Gilroy, S., Changes in Root Cap pH are Required for the Gravity Response of the Arabidopsis Root, Plant Cell., 2001, vol. 13, pp. 907–921.",{"doi":1438},"10.1105\u002Ftpc.13.4.907",{"id":20,"text":1440,"url":20,"identifiers":1441},"Danilova, M.F., Strukturnye osnovy pogloshcheniya veshchestv kornem (Structural Foundations of Absorption of Matter by the Root), Leningrad, Nauka, 1974, p. 207.",{},{"id":20,"text":1443,"url":20,"identifiers":1444},"Moore, R., Fondren, W.M., McClelen, C.E., and Wang, C.L., Influence of Microgravity on Cellular Differentiation in Root Caps of Zea mays, Amer. J. Bot., 1987, vol. 74, pp. 1006–1062.",{"doi":1445},"10.2307\u002F2443940",{"id":20,"text":1447,"url":20,"identifiers":1448},"Moore, R., McClelen, C.E., Fondren, W.M., and Wang, C.L., Influence of Microgravity on Root-cap Regeneration and the Structure of Columella Cells in Zea mays, Amer. J. Bot., 1987, vol. 74, pp. 218–223.",{"doi":1449},"10.2307\u002F2444023",{"id":20,"text":1451,"url":20,"identifiers":1452},"Sharp., R.E., Silk, W.K., and Hsiao, T.C., Growth of the Maize Primary Root at Low Water Potentials. I. Spatial Distribution of Expansive Growth, Plant Physiol., 1988, vol. 87, pp. 50–57.",{"doi":1453},"10.1104\u002Fpp.87.1.50",{"id":20,"text":1455,"url":20,"identifiers":1456},"Baluška, F., Volkmann, D., and Barlow, P., Specialized Zones of Development in Roots: View from the Cellular Level, Plant Physiol., 1996, vol. 112, pp. 3–4.",{"doi":1457},"10.1104\u002Fpp.112.1.3",{"id":20,"text":1459,"url":20,"identifiers":1460},"Böjrkman, T. and Cleland, R.E., The Role of Extracellular Free Calcium Gradients in Gravitropic Signaling in Maize Roots, Planta, 1991, vol. 185, pp. 379–384.",{},{"id":20,"text":1462,"url":20,"identifiers":1463},"Lee, J.S., Mulkey, T.J., and Evans, M.L., Gravity-induced Polar Transport of Calcium Across Root Tips of Maize, Plant Physiol., 1983, vol. 73, pp. 874–876.",{"doi":1464},"10.1104\u002Fpp.73.4.874",{"id":20,"text":1466,"url":20,"identifiers":1467},"Khavkin, E.Ye., Formirovanie metabolicheskikh sistem v rastushchikh kletkakh rasteniy (Development of Metabolic 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L.A., Borodai, N.V., and Chekhun, V.F., The present and the prospects for creating nanosystems of directed drug delivery to tumor cells, Onkologiya, 2009, vol. 11, no. 3, pp. 166–173.",{},{"id":20,"text":1603,"url":20,"identifiers":1604},"Posvalyuk, N.E. and Savin, S.Z., Prospects for using nanogold in oncology and neurology, Mezhd. 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Radiol., 2012, vol. 85, p. 101–113.",{"doi":1616},"10.1259\u002Fbjr\u002F59448833",{"id":20,"text":1618,"url":20,"identifiers":1619},"Chekhun, V.F., Nanotechnologies in oncology: from theory to molecular imaging and targeted therapy, Onkologiya, 2008, vol. 10, no. 4, pp. 414–419.",{},{"id":20,"text":1621,"url":20,"identifiers":1622},"Kang, S.J., Lee, Y.J., and Kim, B.M., Cytotoxicity and genotoxicity of titanium dioxide nanoparticles in UVA-irradiation normal peripheral blood lymphocytes, Drug Chem. Toxicol., 2011, vol. 34, no. 3, pp. 277–284.",{"doi":1623},"10.3109\u002F01480545.2010.546800",{"id":20,"text":1625,"url":20,"identifiers":1626},"Asharani, P.V., Grace Low Kah Mun, and Manoor, P., Cytotoxicity and genotoxicity of silver nanoparticles in human cells, Am. Chem. Soc., 2009, vol. 3, no. 2, pp. 279–290.",{},{"id":20,"text":1628,"url":20,"identifiers":1629},"Wang, Z.Y., Song, J., and Zhang, D.S., Nanosized As2O3\u002FFe2O3 complex combined with magnetic fluid hyperthermia selectively target liver cancer cell, World J. Gastroenterol., 2009, vol. 15, no. 24, pp. 2995–3002.",{"doi":1630},"10.3748\u002Fwjg.15.2995",{"id":20,"text":1632,"url":20,"identifiers":1633},"Wang, S., Lu, W., Tovmachenko, O., et al., Challenge in understanding size and shape dependent toxicity of gold nanomaterials in human skin keratinocytes, Chem. Phys. Lett., 2008, vol. 463, pp. 145–149.",{"doi":1634},"10.1016\u002Fj.cplett.2008.08.039",{"id":20,"text":1636,"url":20,"identifiers":1637},"Mukhejee, P., Bhattacharya, R., Wang, P., et al., Antiangiogenic properties of gold nanoparticles, Clin. Cancer Res., 2005, vol. 11, no. 9, pp. 3530–3534.",{"doi":1638},"10.1158\u002F1078-0432.CCR-04-2482",{"id":20,"text":1640,"url":20,"identifiers":1641},"Hayashi, M., Sofuni, T., and Ishidate, M., An application of acridine orange fluorescent staining to the micronucleus test, Mutat. Res., 1983, vol. 120, no. 4, pp. 241–247.",{"doi":1642},"10.1016\u002F0165-7992(83)90096-9",{"id":20,"text":1644,"url":20,"identifiers":1645},"Dias, V.M., Oliveria, R.M., and Machado-Santelli, G.M., Using fluorescence for improvement of the quantitative analysis of micronucleus in cell culture, Mutat. Res., 2005, vol. 565, pp. 173–179.",{"doi":1646},"10.1016\u002Fj.mrgentox.2004.10.003",{"id":20,"text":1648,"url":20,"identifiers":1649},"Smiley, S.T., Reers, M., and Mottola-Hartshorn, C., Intracellular heterogeneity in mitochondrial membrane potentials revealed by a J-aggregate-forming lipophilic cation JC-1, Proc. Natl. Acad. Sci. U.S.A., 1991, vol. 88, pp. 3671–3675.",{"doi":1650},"10.1073\u002Fpnas.88.9.3671",{"id":20,"text":1652,"url":20,"identifiers":1653},"Salvioli, S., Ardizzoni, A., and Franceschi, C., JC-1, but not DiOC6(3) or rhodamine 123, is a reliable fluorescent probe to assess changes in intact cells: implications for studies on mitochondrial functionality during apoptosis, FEBS Lett., 1997, vol. 411, pp. 77–82.",{"doi":1654},"10.1016\u002FS0014-5793(97)00669-8",{"id":20,"text":1656,"url":20,"identifiers":1657},"Legrand, O., Perrot, J.-Y., and Simonin, G., JC-1: a very sensitive fluorescent probe to test Pgp activity in adult acute myeloid leukemia, Blood, 2001, vol. 97, no. 2, pp. 502–508.",{"doi":1658},"10.1182\u002Fblood.V97.2.502",{"id":20,"text":1660,"url":20,"identifiers":1661},"Firsova, S.S., Bucharskaya, A.B., Maslyakova, G.N., et al., Changes in morphological indices of bone marrow and peripheral blood under long-term exposure of gold nanoparticles, Izv. Saratov. Univ., Ser. Fiz., 2011, vol. 11, no. 2, pp. 54–57.",{},{"id":20,"text":1663,"url":20,"identifiers":1664},"Dzhumagazieva, D.S., Maslyakova, G.N., Bucharskaya, A.B., et al., Study of the mutagenic action of gold nanoparticles in the micronucleus test, Byull. Eksp. Biol. Med., 2011, no. 6, pp. 677–680.",{},{"id":20,"text":1666,"url":20,"identifiers":1667},"Zhang, X.D., Wu, Y.-Y., Wu, D., et al., Toxicologic effect of gold nanoparticles in vitro by different administration routes, Int. J. Nanomed., 2010, vol. 5, pp. 771–773.",{"doi":1668},"10.2147\u002FIJN.S8428",{"id":20,"text":1670,"url":20,"identifiers":1671},"Vujacic, A., Vodnik, V., Joksic, G., et al., Particle size and concentration depend cytotoxicity of citrate capped gold nanoparticles, Digest. J. Nanomater. Biostruct., 2011, vol. 6, no. 3, pp. 1367–1376.",{},{"id":20,"text":1673,"url":20,"identifiers":1674},"Cho, W.S., Cho, M., Jeong, J., et al., Acute toxicity and pharmacokinetics of 13 nm-sized PEG-coated gold nanoparticles, Toxicol. Appl. Pharmacol., 2009, vol. 236, no. 1, pp. 16–24.",{"doi":1675},"10.1016\u002Fj.taap.2008.12.023",{"id":20,"text":1677,"url":20,"identifiers":1678},"Chen, Y.S., Hung, Y.C., Liau, I., and Huang, G.S., Assessment of the in vivo toxicity of gold nanoparticles, Nanoscale Res. Lett., 2009, vol. 4, no. 3, pp. 858–864.",{"doi":1679},"10.1007\u002Fs11671-009-9334-6",{"id":20,"text":1681,"url":20,"identifiers":1682},"Lasagna-Reeves, C., Gonzales-Romero, D., Barria, M.A., et al., Bioaccumulation and toxicity of gold nanoparticles after repeated administration on mice, Biochem. Biophys. Res. Commun., 2010, vol. 393, no. 4, pp. 649–655.",{"doi":1683},"10.1016\u002Fj.bbrc.2010.02.046",{"id":20,"text":1685,"url":20,"identifiers":1686},"Zhang, X.D., Wu, D., Shen, X., et al., Size-dependent in vivo toxicity of PEG-coated gold nanoparticles, J. Nanomedicine, 2011, vol. 6, pp. 2071–2081.",{"doi":1687},"10.2147\u002FIJN.S21657",{"id":20,"text":1689,"url":20,"identifiers":1690},"Dibkova, S.M., Roman’ko, M., Gruzina, T.G., et al., Determination of DNA damage with metal nanoparticles promising for biotechnology, Biotekhnologiya, 2009, vol. 2, no. 3, pp. 80–85.",{},{"id":20,"text":1692,"url":20,"identifiers":1693},"Bychkovskii, P.M., Kladiev, A.A., Shchegolev, S.Yu., et al., Colloidal gold particles as a tool for prospidin delivery, Ross. Bioterapevt. Zh., 2010, vol. 9, no. 3, p. 3.",{},{"id":20,"text":1695,"url":20,"identifiers":1696},"Reznichenko, L.S., Shpil’va, S.I., Gruzina, T.I., et al., Contact interaction of gold nanoparticles with tumor cells: the effect of size and concentration, Dop. Nats. Akad. Navuk Ukraini, 2010, no. 2, pp. 170–174.",{},{"id":20,"text":1698,"url":20,"identifiers":1699},"Rout, M.P. and Aitchion, J.D., The nuclear pore complex as a transport machine, J. Biol. Chem., 2001, vol. 276, no. 20, pp. 16593–16596.",{"doi":1700},"10.1074\u002Fjbc.R100015200",{"id":20,"text":1702,"url":20,"identifiers":1703},"Sharma, V., Anderson, D., and Dhowan, A., Zinc oxide nanoparticles induce oxidative DNA damage and ROS-triggered mitochondria mediated apoptosis in human liver cells (HepG2), Apoptosis, 2012, vol. 17, no. 8, pp. 852–870.",{"doi":1704},"10.1007\u002Fs10495-012-0705-6",{"id":20,"text":1706,"url":20,"identifiers":1707},"Mohd, I.K., Akbar, M.B., Govil, P.A., et al., Induction of ROS, mitochondrial damage and autophagy in lung epithelial cancer cells by iron oxide nanoparticles, Biomaterials, 2012, vol. 33, pp. 1477–1488.",{"doi":1708},"10.1016\u002Fj.biomaterials.2011.10.080",{"id":20,"text":1710,"url":20,"identifiers":1711},"Schaeublin, N.M., Braydich-Stolle, L.K., Schrand, A.M., et al., Surface charge of gold nanoparticles mediates mechanism of toxicity, Nanoscale, 2011, vol. 3, pp. 410–420.",{"doi":1712},"10.1039\u002Fc0nr00478b",{"id":20,"text":1714,"url":20,"identifiers":1715},"Donaldson, K., Poland, C.A., and Schins, P.F., Possible genotoxic mechanisms of nanoparticles: criteria for improved test strategies, Nanotoxicology, 2010, vol. 4, no. 4, pp. 414–420.",{"doi":1716},"10.3109\u002F17435390.2010.482751",{"id":20,"text":1718,"url":20,"identifiers":1719},"Averchenko, E.A., Kavok, N.S., Stepanenko, A.M., et al., Assessment of mitochondrial potential of isolated hepatocytes with oxidative status change, Biofiz. Visn., 2009, no. 22, pp. 49–56.",{},{"id":20,"text":1721,"url":20,"identifiers":1722},"Singh, H., Jenkins, G.J.S., Asadi, R., and Doak, S.H., Potential toxicity of superparamagnetic iron oxide nanoparticles (SPION), Nano Rev., 2010, vol. 1, p. 1.",{"doi":1723},"10.3402\u002Fnano.v1i0.5358",{"id":20,"text":1725,"url":20,"identifiers":1726},"Altman, S.A., Zastawny, T.H., Randers-Eichhorn, L., et al., Formation of DNA-protein cross-links in cultured mammalian cells upon treatment with iron ions, Free Radical Biol. Med., 1995, vol. 19, no. 6, pp. 897–902.",{"doi":1727},"10.1016\u002F0891-5849(95)00095-F",{"id":20,"text":1729,"url":20,"identifiers":1730},"Ferrari, M., Cancer nanotechnology: opportunities and challenges, Nat. Rev. Cancer, 2005, vol. 5, no. 3, pp. 161–171.",{"doi":1731},"10.1038\u002Fnrc1566",{"id":20,"text":1733,"url":20,"identifiers":1734},"Tyokuini, S., Oxidative stress and cancer: the role of redox regulation, Biotherapy, 1998, vol. 11, pp. 2–3.",{},{"id":20,"text":1736,"url":20,"identifiers":1737},"Pan, Yu., Leifert, A., Ruau, D., et al., Gold nanoparticles of diameter 1.4 nm trigger necrosis by oxidative stress and mitochondrial damage, Small, 2009, vol. 5, no. 18, pp. 2067–2076.",{"doi":1738},"10.1002\u002Fsmll.200900466",{"id":20,"text":1740,"url":20,"identifiers":1741},"Schaeublin, N.M., Braydich-Stolle, L.K., Schrand, A.M., et al., Surface charge of gold nanoparticles mediates mechanism of toxicity, Nanoscale, 2011, vol. 3, no. 2, pp. 410–420.",{"doi":1712}]