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Annona coriacea Mart., Annona crassiflora Mart., Duguetia furfuracea (A. St.-Hil.) Saff. and Xylopia aromatica L. are common species in this region. The main goal of our study was to determine biological activities of these species. Therefore, we evaluated phytotoxic effects of ethanolic extracts of leaves and stems of these species in the laboratory. In addition, toxicity to animal targets was also evaluated. Lettuce was the less affected target species, with discreet effects over germination rate and initial root development observed using the highest concentration (0.8 mg mL−1) of extracts of A. coriacea. Notwithstanding, tomato was the most affected target species by these annonaceous extracts, with an expressive decrease in germination rate, shoot and root growth even with the lowest extract concentrations. Onion germination was affected mainly by X. aromatica and A. coriacea leaf extracts, with significant results for all concentrations. Effects on shoot and root growth were also observed for this species. In general, the strongest phytotoxic activities were detected for the extracts of A. coriacea and X. aromatica. These extracts also inhibited growth of Urochloa \n                        decumbens (Stapf) R.D. Webster. The extracts of A. coriacea were also very toxic to brine shrimp nauplii. No antibacterial or antifungal effects were detected with the extracts of these four species of Annonaceae. Among the four species, X. aromatica and A. coriacea exhibited strong biological activities and the results could be useful in agricultural fields in Brazil. These extracts were also promising for isolation and identification of commercial valuable metabolites.",{"EN":105},"Biological activities of Annonaceae species extracts from Cerrado",{"VOID":107},"[]",{"VOID":109},"Alvim MJ, Botrel MA, Verneque RS, Salvatti JA (1990) Aplicação de nitrogênio em acessos de braquiária. 1. Efeito sobre a produção de matéria seca. Pasturas Trop 12:2–6\nBatalha MA, Mantovani W (2001) Floristic composition of the cerrado in the Pé-de-Gigante Reserve (Santa Rita do Passa Quatro, Southeastern Brazil). Acta Bot Bras 15:289–304\nBatalha MA, Aragaki S, Mantovani W (1997) Florística do cerrado em Emas (Pirassununga, SP). Bol Bot Univ São Paulo 16:49–64\nChatrou LW, Pirie MD, Erkens RHJ, Couveur TLP, Neubig KM, Abbott JR, Mols JB, Maas JW, Saunders RMK, Chase MW (2012) A new subfamilial and tribal classification of the pantropical flowering plant Family Annonaceae informed by molecular phylogenetics. Bot J Linn Soc 169:5–40\nCosta MS, Pinheiro DO, Serrão JE, Pereira MJB (2012) Morphological changes in the midgut of Aedes aegypti L. (Diptera: Culicidae) larvae following exposure to na Annona coriacea (Magnoliales: Annonaceae) extract. Neotrop Entomol 41:311–314\nDaSilva DM, Batalha MA (2011) Defense syndromes against herbivory in a Cerrado plant community. Plant Ecol 212:181–193\nDayan FE, Cantrell CL, Duke SO (2009) Natural products in crop protection. Bioorgan Med Chem 17:4022–4034\nFarooq M, Jabran K, Cheema ZA, Wahid A, Siddique KHM (2011) The role of allelopathy in agricultural pest management. Pest Manag Sci 67:493–506\nFernandes CN, Souza HHF, Borges MCM, Souza CES, Huedes GMM, Figueredo FG, Tintino SR, Costa JGM, Coutinho HDM, Menezes IRA, Felipe CFB, Kerntopf MR (2014) Evaluation of the modulatory and antibacterial activity of the ethanolic extract and fractions of Duguetia furfuracea A. St.-Hil. Afr J Pharm Pharmacol 8:16–20\nFerreira AG (2004) Interferência: competição e alelopatia. In: Ferreira AG, Borghetti F (eds) Germinação: do básico ao aplicado. Artmed, Porto Alegre, pp 251–264\nFerreira AG, Aquila MEA (2000) Alelopatia: uma área emergente de ecofisiologia. Rev Bras Fisiol Veg 12:175–204\nFormagio ASN, Masetto TE, Baldivia DS, Vieira MC, Zárate NAH, Pereira SV (2010) Potencial alelopático de cinco espécies da família Annonaceae. R Bras Bioci 8:349–354\nForzza RC, Leitman PM, Costa A, Carvalho AA Jr, Peixoto AL, Walter BMT, Bicudo C, Zappi D, Costa DP, Lleras E, Martinelli G, Lima HC, Prado J, Stehmann JR, Baumgratz JFA, Pirani JR, Sylvestre LS, Maia LC, Lohmann LG, Paganucci L, Silveira M, Nadruz M, Mamede MCH, Bastos MNC, Morim MP, Barbosa MR, Menezes M, Hopkins M, Secco R, Cavalcanti T, Souza VC (2010) Catálogo de plantas e fungos do Brasil. Instituto de Pesquisas Jardim Botânico do Rio de Janeiro, Rio de Janeiro\nFreitas AF, Pereira FF, Formagio ASN, Lucchetta JT, Vieira JT, Mussury RM (2014) Effects of methabolic extracts of Annona species on the development and reproduction of Spodoptera frugiperda (J E Smith) (Lepidoptera: Noctuidae). Neotrop Entomol 43:446–452\nGniazdowska A, Bogatek R (2005) Allelopathic interactions between plants. Multi site action of allelochemicals. Acta Physiol Plant 27:395–407\nGravito G, Rincón J, Arteaga L, Hata Y, Bourdy G, Gimenez A, Pinzón R, Deharo E (2006) Antimalarial activity of some Colombial medicinal plants. J Ethnopharmacol 107:460–462\nHancock CR, Barlow HWB, Lacey HJ (1964) The east malling coleoptile straight growth test method. J Exp Bot 15:166–176\nHaridasan M (2001) Nutrient cycling as a function of landscape and biotic characteristics in the cerrado of central Brazil. In: McClain ME, Victoria RL, Richey JE (eds) Biogeochemistry of the Amazon basin and its role in a changing world. Oxford University Press, New York\nImatomi M, Novaes P, Matos A, Gualtieri SCJ, Molinillo JMG, Lacret R, Varela RM, Macias FA (2013) Phytotoxic effect of bioactive compounds isolated from Myrcia tomentosa (Myrtaceae) leaves. Biochem Syst Ecol 46:29–35\nInoue MH, Santana DC, Pereira MJB, Possamai ACS, Azevedo VH (2009) Aqueous extracts of Xylopia aromatica and Annona crassiflora on marandu grass (Brachiaria brizantha) and soybean. Sci Agrar 10:245–250\nLorenzi H (2000) Plantas daninhas do Brasil. Instituto Plantarum, Nova Odessa\nMacías F, Castellano D, Molinillo JMG (2000) Search for a standard phytotoxic bioassay for allelochemicals. Selection of standard target species. J Agric Food Chem 48:2512–2521\nMacías FA, Molinillo JMG, Varela RM, Galindo JCG (2007) Allelopathy—a natural alternative for weed control. Pest Manag Sci 63:327–348\nMacías FA, Oliveiros-Bastidos A, Marin D, Carrera C, Chinchilla N, Molinillo JMG (2008) Plant biocommunicators: their phytotoxicity, degradation studies and potential use as herbicide models. Phytochem Rev 7:179–194\nMacías FA, Lacret R, Varela RM, Nogueiras C, Molinillo JMG (2010) Isolation and phytotoxicity of terpenes from Tectona grandis. J Chem Ecol 36:396–404\nMantovani W, Martins FR (1993) Florística do cerrado na reserva biológica de Moji Guaçu, SP. Acta Bot Bras 7:33–60\nMoreira A (2000) Effects of fire protection on savanna structure in Central Brazil. J Biogeogr 27:1021–1029\nNitsch JP, Nitsch C (1956) Studies on the growth of coleoptile and first internode sections. A new sensitive, straight-growth test for auxins. Plant Physiol 31:94–111\nNovaes P, Varela RM, Molinillo JMG, Macias FA (2013a) Phytochemistry of Cerrado (Brazilian savanna) plants. Phytochem Rev 12:839–855\nNovaes P, Imatomi M, Varela RM, Molinillo JMG, Lacret R, Gualtieri SCJ, Macias FA (2013b) Allelopathic potential of extracts from Rapanea umbellata. Chem Biodivers 10:1539–1548\nOmena MC, Navarro DMAF, Paula JE, Luna JS, Lima MRF, Sant’Ana AEG (2007) Larvicidal activities against Aedes aegypti of some Brazilian medicinal plants. Bioresour Technol 13:2549–2556\nOsorio E, Arango GJ, Jimenez N, Alzate F, Ruiz G, Gutiérrez D, Paco MA, Giménez A, Robledo S (2007) Antiprotozoal and cytotoxic activities in vitro of Colombian Annonaceae. J Ethnopharmacol 111:630–635\nPimenta LPS, Pinto GB, Takahashi JA, Silva LGF, Boaventura MAD (2003) Biologiocal screening of Annonaceous Brazilian medicinal plants using Artemia salina (Brine shrimp Test). Phytomedicine 10:209–212\nResende GC, Alvarenga ES, Galindo JCG, Macias FA (2012) Synthesis and phytotoxicity of 4.5 functionalized tetrahydrofuran-2-ones. J Braz Chem Soc 23:2266–2270\nRial C, Novaes P, Varela RM, Molinillo JMG, Macías FA (2014) Phytotoxicity of Cardoon (Cynara cardunculus) allelochemicals on standard target species and weeds. J Agric Food Chem 62:6699–6706\nRodrigues AMS, Paula JED, Degallier N, Molez JF, Espindola LS (2006) Larvicidal activity of some cerrado plant extracts against Aedes aegypti. J Am Mosq Contr 22:314–317\nSantos AF, Sant’Ana AEG (2001) Molluscidal properties of some species of Annona. Phytomedicine 8:115–120\nSingh A, Singh D, Singh NB (2009) Allelochemical stress produced by aqueous leachate of Nicotiana plumbaginifolia Viv. Plant Growth Regul 58:163–171\nSolis PN, Wright CW, Anderson MM, Gupta MP, Phillipson JD (1993) A microwell cytotoxicity assay using Artemia salina (brine shrimp). Planta Med 59:250–252\nSouza LS, Velini ED, Maiomoni-Rodella RCS (2003) Efeito alelopático de plantas daninhas e concentrações de capim-braquiária (Brachiaria decumbens) no desenvolvimento inicial de eucalipto (Eucalyptus grandis). Planta Daninha 21:343–354\nSouza Filho AP, Rodrigues LR, Rodrigues TJD (1996) Efeitos de extratos aquosos de assa-peixe sobre a germinação de três espécies de braquiária. Planta Daninha 14:93–101\nTempone AG, Barborema SET, Andrade HF, Gualda NCA, Yogi A, Carvalho S, Bachiega D, Bonotto SV, Ficher DCH (2005) Antiprotozoal activity of Brazilian plant extracts from isoquiline alkaloid-producing families. Phytomedicine 12:382–390\nZar JH (2010) Biostatistical analysis. 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P (1961) Palynological investigations of Cucurbitaceae. 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Polibotánica 16:29–48",{},{"id":20,"text":414,"url":20,"identifiers":415},"Gomes-Klein VL, Lima LFP, Gomes-Costa GA, Medeiros ES (2015) Cucurbitaceae In Lista de Espécies da Flora do Brasil. Jardim Botânico do Rio de Janeiro. http:\u002F\u002Ffloradobrasil.jbrj.gov.br\u002Fjabot\u002Ffloradobrasil\u002FFB17036. Acess in: 10 out 2016",{},{"id":20,"text":417,"url":20,"identifiers":418},"Jeffrey C (1962) Notes on Cucurbitaceae, including a proposed new classification of the Family. Kew Bull 15:337–371",{"doi":419},"10.2307\u002F4115586",{"id":20,"text":421,"url":20,"identifiers":422},"Jeffrey C (1964) A note on pollen morphology in Cucurbitaceae. Kew Bull 17:473–477",{"doi":423},"10.2307\u002F4113823",{"id":20,"text":425,"url":20,"identifiers":426},"Kouonon LC et al (2009) Reproductive biology of the andromonoecious Cucumis melo subsp. agrestis (Cucurbitaceae). Ann Bot 104:1129–1139",{"doi":427},"10.1093\u002Faob\u002Fmcp196",{"id":20,"text":429,"url":20,"identifiers":430},"Lima FP, Miotto STS (2011) Pollen morphology of Cyclanthera and Sicyos species(Cucurbitaceae, Sicyoeae). Darwiniana 49(1):7–15",{},{"id":20,"text":432,"url":20,"identifiers":433},"Lima LFP, Evaldt ACP, Bauermann SG, Miotto STS (2010) Pollen morphology of Brazilian Fevillea (Cucurbitaceae). Grana 49(4):263–268",{"doi":434},"10.1080\u002F00173134.2010.522252",{"id":20,"text":436,"url":20,"identifiers":437},"Lira R, Alvarado JL, Ayala-Neto ML (1998) Pollen morphology in Sicydium (Cucurbitaceae-Zanonioideae). Grana 37:215–221",{"doi":438},"10.1080\u002F00173139809362669",{"id":20,"text":440,"url":20,"identifiers":441},"Marticorena C (1963) Material para uma monografia de la morfologia del polen de Cucurbitaceae. Grana Palynologica 4:78–91",{"doi":442},"10.1080\u002F00173136309437861",{"id":20,"text":444,"url":20,"identifiers":445},"Melhem TS (1966) Pollen grains of the “Cerrado”. XII. Cucurbitaceae, Menispermaceae and Moraceae. Anais da Academia Brasileira de Ciências 38:196–203",{},{"id":20,"text":447,"url":20,"identifiers":448},"Peckolt G (1941) As Cucurbitáceas (Abóboras) Medicinais Brasileiras. Revista da Flora Medicinal 8(11):393–421",{},{"id":20,"text":450,"url":20,"identifiers":451},"Pereira BS, Nunes-Pinheiro DCS, Vasconcelos AKP, Pinheiro ADN, Rodrigues PA (2010) Atividade hepatoprotetora dos extratos etanólico e hexânico das folhas de Momordica charantia L. Revista Brasileira de Plantas Medicinais, Botucatu 12(3):311–316",{"doi":452},"10.1590\u002FS1516-05722010000300008",{"id":20,"text":454,"url":20,"identifiers":455},"Perveen A, Qaiser M (2008) Pollen flora of Pakistan -LVI Cucurbitaceae. Pakistan J Bot 40:9–16",{},{"id":20,"text":457,"url":20,"identifiers":458},"Pruesapan K, Van Der Ham R (2005) Pollen morphology of Thrichosanthes (Cucurbitaceae). Grana 44(2):75–90",{"doi":459},"10.1080\u002F00173130510010512",{"id":20,"text":461,"url":20,"identifiers":462},"Punt W, Blackmore S, Nilsson S, Le Thomas A (2007) Glossary of pollen and spore terminology. Rev Paleobotany Palynol 143:1–81",{"doi":463},"10.1016\u002Fj.revpalbo.2006.06.008",{"id":20,"text":465,"url":20,"identifiers":466},"Raynal A, Raynal J (1971) Une techinique de préparation des graines de pollen fragiles. Adansonia 11(1):77–79",{},{"id":20,"text":468,"url":20,"identifiers":469},"Resende MLF, Guimarães LL (2007) Inventários da biodiversidade do bioma Cerrado: biogeografia de plantas. IBGE, Rio de Janeiro",{},{"id":20,"text":471,"url":20,"identifiers":472},"Roubik DW, Moreno JEP (1991) Pollen and spores of Barro Colorado Island. 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Current Microscopy Contributions to Advances in Science and Technology. 2. Badajoz. pp. 982–987",{},{"id":504,"createTime":505,"updateTime":506,"relativeEntities":507,"slug":508,"properties":509,"entityType":112,"verifyStatus":113,"verifyTime":520,"verifyNote":115,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":521,"fullTextUrl":20,"authors":522,"publicationType":160,"publisherRelationship":594,"citationCount":21,"citationInfo":641,"publishDate":643,"publishYear":377,"citationAnalyzeStatus":19,"lastCitationAnalyze":644,"indexDatabases":645,"openAccess":20,"references":20,"isForceReanalyzing":214},"381c195e-67f9-4c1f-80c1-27db2fb598c7","2024-01-10T03:24:52.096+00:00","2026-07-22T16:31:29.176+00:00",[],"Understanding-molecular-relationships-in-Campomanesia-Ruiz-Pav-Myrtaceae-emphasizing-the-C-xanthocarpa-complex-based-on-multiple-accessions",{"abstract":510,"title":512,"gsPaper":514,"references":516,"doi":518},{"EN":511},"Campomanesia comprises approximately 45 species, and 18 of them are organized into three informal morphological complexes. Among these, the “C. xanthocarpa complex” includes nine accepted species displaying delimitation problems, especially in C. adamantium (Cambess.) O.Berg, C. eugenioides (Cambes.) D.Legrand ex Landrum and C. xanthocarpa (Mart.) O.Berg. As there are no phylogenies available for the genus, we seek to understand whether the morphological similarities observed between the cited taxa may be congruent with molecular data. Thus, we generated sequences of the internal transcribed spacer of the ribosomal nuclear DNA (ITS) from 32 samples of Campomanesia and nine belonging to other genera of neotropical Myrtaceae. Phylogenetic analyses using Maximum Parsimony and Bayesian Inference produced similar topologies, which indicate that the “C. xanthocarpa complex” is not monophyletic. Otherwise, the taxa previously assigned to this complex correspond to two distinct lineages highly supported, here designated as the “C. xanthocarpa Group” and “C. eugenioides Group.” The use of multiple accessions of these species also provided taxonomic insights for the recognition of C. littoralis D.Legand and C. repanda O.Berg, as well as the separation of C. rhombea from C. xanthocarpa.",{"EN":513},"Understanding molecular relationships in Campomanesia Ruiz & Pav. (Myrtaceae): emphasizing the C. xanthocarpa complex based on multiple accessions",{"VOID":515},"[\"13475568499685126806\"]",{"VOID":517},"Alfaro M, Zoller S, Lutzoni F (2003) Bayes or Bootstrap? A simulation study comparing the performance of Bayesian Markov chain Monte Carlo sampling and bootstrapping in assessing phylogenetic confidence. Mol Biol Evol 20:255–266\nAlvarez A, Wendel JF (2003) Ribosomal ITS sequences and plant phylogenetic inference. 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Academic Press, New York, pp 315–322",{"VOID":519},"10.1007\u002Fs40415-021-00769-x","2024-05-12T18:39:53.701+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs40415-021-00769-x",[523,538,553,568,581],{"id":524,"sortIndex":21,"researcher":20,"roles":525,"affiliations":526,"properties":535,"displayName":537,"givenName":20,"familyName":20},"fe896fff-6a9f-41cc-afb2-e1b1141b123a",[121],[527],{"id":528,"sortIndex":21,"affiliation":529,"properties":20},"ac59f7b2-0dc5-4d80-8dfb-9e75d5ea4e86",{"id":528,"createTime":20,"updateTime":20,"relativeEntities":530,"slug":20,"properties":531,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":534,"statistic":20},[],{"title":532},{"VI":533},"Departamento de Biologia, Universidade Federal de Sergipe – UFS, Cidade Universitária Prof. José Aloísio de Campos, São Cristóvão, Brazil",[],{"title":536},{"VI":537},"Marla Ibrahim Uehbe de 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joazeiro Mart. is a shrubby tree found in the Brazilian Northeast, with wide distribution in the Caatinga biome, popularly known as juazeiro. Due to its high content of saponins, the species is of great interest for medicine and cosmetics. The objective of this study was to investigate saponin content in young specimens collected in different cultivation periods and to correlate with the data found for an adult specimen of Z. joazeiro to obtain an alternative source of raw material for the pharmaceutical and cosmetics industries, and help while preserve the species. The analytical method for quantification of the saponins was validated using UV–Vis spectrophotometry techniques in accordance with the parameters recommended by Brazilian legislation. The results confirmed the sensitivity and robustness of the proposed method for quantification of saponin in hydroalcoholic extracts. The data revealed that the saponin content in young specimens increases over time, and the content at eighteen months of cultivation was 42% higher than that of the adult specimen. The young specimens (as standardized) represent an excellent alternative for obtaining saponins.",{"EN":656},"Ziziphus joazeiro Mart.: UV–Vis quantification of saponin content in early growth stages with adult specimen correlation",{"VOID":658},"[\"15931343259279781715\"]",{"VOID":660},"Andrade et al (2019) Control of bacterial and fungal biofilms by natural products of Ziziphus joazeiro Mart. (Rhamnaceae). Comp Immunol, Microbiol Infect Dis 65:226–233. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cimid.2019.06.006\nAraújo CSF, Sousa AN (2011) Estudo do processo de desertificação na Caatinga: uma proposta de educação ambiental. Cienc Educ 17:975–986. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS1516-73132011000400013\nBrasil –Agência Nacional de Vigilância Sanitária (2014) Instrução Normativa IN nº 4, de 18 de junho de 2014b. Diário Oficial da União, Brasília.\nBrasil–Agência Nacional de Vigilância Sanitária (2017) Resolução RDC N° 166, de 24 de julho de 2017. 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Rev Verde Agroecol Desenvolv Sustent 11:177–181. https:\u002F\u002Fdoi.org\u002F10.18378\u002Frvads.v11i5.4743\nSilva LF, Jordan-Sinisterra M, Lanças FM (2018) Métodos analíticos para determinação de isoflavonas em matrizes complexas. Sci Chromatogr 10:219–228. https:\u002F\u002Fdoi.org\u002F10.5935\u002Fsc.2019.001\nSoares LCT, Santos-Neto AJ (2012) Protetores de analitos e efeito da matriz em CG. Sci Chromatogr 4:139–152. https:\u002F\u002Fdoi.org\u002F10.4322\u002Fsc.2012.011\nSouza BI, Artigas RC, Lima VER (2015) Caatinga e Desertificação. Mercator 14:131–150. https:\u002F\u002Fdoi.org\u002F10.4215\u002FRM2015.1401.0009\nStricker N, Lanza G (2014) The Concept of robustness in production systems and its correlation to disturbances. Procedia CIRP 19:87–92. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.procir.2014.04.078\nSuresh R et al (2021) Evaluation of improved and current vanillin based colorimetric quantification of methods of triterpenoids. J Stud Res. https:\u002F\u002Fdoi.org\u002F10.47611\u002Fjsrhs.v10i2.1442\nVasconselhos EAF, Barbosa RM, Medeiros MGF, Moura TFAL (2005) Influência do processo extrativo, solvente e tamanho da partícula do material vegetal no teor de sólidos totais da solução extrativa da Schinus terebinthifolius Raddi. Rev Fitos 1:74–79\nVigo CLS, Narita E, Marques LC (2004) Influências da variação sazonal e tipos de secagem nas características da droga vegetal—raízes de Pfaffia glomerata (Spreng.) Pederson (Amaranthaceae). Rev Bras Farmacogn 14:137–144. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS0102-695X2004000200007\nZannou O, Pashazadeh H, Ibrahim AS, Koca I, Galanakis CM (2022) Green and highly extraction of phenolic compounds and antioxidant capacity from kinkeliba (Combretum micranthum G Don) by natural deep eutectic solvents (NADESs) using maceration, ultrasound-assisted extraction and homogenate-assisted extraction. Arab J Chem 15:103752. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.arabjc.2022.103752",{"VOID":662},"10.1007\u002Fs40415-022-00847-8","2024-05-28T18:32:40.582+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs40415-022-00847-8",[666,681,696],{"id":667,"sortIndex":21,"researcher":20,"roles":668,"affiliations":669,"properties":678,"displayName":680,"givenName":20,"familyName":20},"47f7d764-e7ef-4c38-9107-e0d1c0299a5c",[121],[670],{"id":671,"sortIndex":21,"affiliation":672,"properties":20},"1c023266-85e4-4d85-b9b2-1d7d6bce28af",{"id":671,"createTime":20,"updateTime":20,"relativeEntities":673,"slug":20,"properties":674,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":677,"statistic":20},[],{"title":675},{"VI":676},"Programa de Pós- Graduação em Produtos Naturais e Sintéticos Bioativos, Departamento de Ciências Farmacêuticas, Centro de Ciências da Saúde, Instituto de Pesquisa Em Fármacos e Medicamentos. Universidade Federal da Paraíba, Cidade Universitária s\u002Fn – Campus I., João Pessoa, Brazil",[],{"title":679},{"VI":680},"Geovana Quixabeira Leite",{"id":682,"sortIndex":85,"researcher":20,"roles":683,"affiliations":684,"properties":693,"displayName":695,"givenName":20,"familyName":20},"1dde31dc-28fc-4d5b-955e-0806cfcb6e91",[121],[685],{"id":686,"sortIndex":21,"affiliation":687,"properties":20},"79980887-21e6-4dd4-9e98-04d8204637be",{"id":686,"createTime":20,"updateTime":20,"relativeEntities":688,"slug":20,"properties":689,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":692,"statistic":20},[],{"title":690},{"VI":691},"Departamento de Ciências Farmacêuticas, Centro de Ciências da Saúde, Instituto de Pesquisa em Fármacos e Medicamentos, Universidade Federal da Paraíba, Cidade Universitária s\u002Fn – Campus I., João Pessoa, Brazil",[],{"title":694},{"VI":695},"Fabricio Havy Dantas de Andrade",{"id":697,"sortIndex":87,"researcher":20,"roles":698,"affiliations":699,"properties":706,"displayName":708,"givenName":20,"familyName":20},"13953163-0c36-48ca-b7b1-e5951a208aca",[121],[700],{"id":686,"sortIndex":21,"affiliation":701,"properties":20},{"id":686,"createTime":20,"updateTime":20,"relativeEntities":702,"slug":20,"properties":703,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":705,"statistic":20},[],{"title":704},{"VI":691},[],{"title":707,"gsAuthor":709},{"VI":708},"Rui Oliveira Macedo",{"VOID":710},"[\"_4oWQhUAAAAJ\"]",{"url":664,"publisher":712,"properties":754},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":713,"slug":10,"properties":714,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":718,"manageAffiliations":723,"indexDatabases":734,"url":80,"thumbnailPath":20,"statistic":749,"gsStatistic":20,"type":90,"analyzePriority":20},[],{"issn":715,"title":716,"eissn":717},{"VOID":13},{"EN":15},{"VOID":17},[719],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":720,"label":721,"description":722,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[724,729],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":725,"slug":20,"properties":726,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":728,"statistic":20},[],{"title":727},{"EN":35},[37],{"id":39,"createTime":20,"updateTime":20,"relativeEntities":730,"slug":20,"properties":731,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":733,"statistic":20},[],{"title":732},{"EN":43},[],[735,742],{"id":47,"indexDatabase":736,"url":60,"indexYears":20,"academicFieldIds":741,"indexDatabaseRanking":20},{"id":49,"createTime":20,"updateTime":20,"relativeEntities":737,"label":738,"description":739,"key":56,"publicationTags":740,"standard":20},[],{"EN":52,"VI":52},{"EN":54,"VI":55},[58,59],[62],{"id":64,"indexDatabase":743,"url":75,"indexYears":76,"academicFieldIds":748,"indexDatabaseRanking":79},{"id":66,"createTime":20,"updateTime":20,"relativeEntities":744,"label":745,"description":746,"key":72,"publicationTags":747,"standard":20},[],{"EN":69,"VI":69},{"EN":69,"VI":71},[74],[78],{"impactFactor":21,"impactFactorByYear":750,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":83,"totalPublicationByYear":751,"totalCitation":21,"totalCitationByYear":752,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":753,"hindexLast5Year":21,"hindex":21},{},{"2013":85,"2015":86,"2016":87,"2020":86,"2021":85},{},{},{"pages":755,"volume":757},{"VOID":756},"1199-1207",{"VOID":758},"45",{"total":21,"publishYear":760,"statisticByYear":761},2022,{},"2022-11-11",[79,58],{"id":765,"createTime":766,"updateTime":767,"relativeEntities":768,"slug":769,"properties":770,"entityType":112,"verifyStatus":113,"verifyTime":781,"verifyNote":115,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":782,"fullTextUrl":20,"authors":783,"publicationType":160,"publisherRelationship":833,"citationCount":21,"citationInfo":881,"publishDate":884,"publishYear":882,"citationAnalyzeStatus":19,"lastCitationAnalyze":885,"indexDatabases":886,"openAccess":20,"references":20,"isForceReanalyzing":214},"2334adee-2b48-4a9b-80f4-01eaeef4a125","2023-12-05T10:24:46.526+00:00","2026-07-16T13:56:34.408+00:00",[],"Lichen-fungi-in-the-Atlantic-rain-forest-of-Northeast-Brazil-the-relationship-of-species-richness-with-habitat-diversity-and-conservation-status",{"abstract":771,"title":773,"gsPaper":775,"references":777,"doi":779},{"EN":772},"Although lichens develop their highest biomass in cool-temperate climates, lichen fungi may form highly diverse assemblages in tropical lowland rain forests. The reasons for such high species richness are not well known. The present study tested the hypothesis that lichen diversity in the northern Atlantic rain forest mainly depends on habitat diversity and conservation status of forest fragments. To this end, the known lichen biota of 23 forest remnants in the region was analyzed. We identified 784 species, with 11 taxa newly reported from Brazil and 44 from Bahia. The vast majority (711) are principally corticolous, while 53 are saxicolous and 20 terricolous. The most frequent species in terms of site occurrence were found at 13 sites, whereas over half of the taxa (462) were only found at a single site. This coincides with an overall low average sampling score, with only six sites being moderately well to well sampled. The number of species per site varied between 5 and 371. Multiple linear regression of species richness with the parameters, site extension, habitat diversity, sampling effort, conservation status, and elevation, was strong and highly significant, with site extension, habitat diversity, and sampling effort being the best predictors for species richness. Site ordination based on species composition suggested a correlation with conservation status and species richness, as well as site extension and habitat diversity. There was no overall correlation between species composition and geographical location of sites along a north–south gradient, but an underlying pattern was detected, suggesting some species turnover along a macroecological gradient. A predictive model using a combined score from the five parameters resulted in a strong and highly significant linear correlation with observed species richness. Using a quantitative, site-based method, we predicted a minimum of 44 and a maximum of 583 species per studied site and we estimated the overall richness for the northern Atlantic rain forest to be 1017 species. Traditional estimators (Chao 1, Chao 2, Jackknife 1, Jackknife 2, Bootstrap) resulted in predicted values ranging between 971 and 1527 species overall. The results of the study are relevant for conservation priorities, as they show that well-conserved areas with a higher habitat diversity (e.g., including transitional forest types and open areas) are an important component preserving the original diversity of the Atlantic Rain Forest, accounting for a large part of the extant biodiversity of this biome.",{"EN":774},"Lichen fungi in the Atlantic rain forest of Northeast Brazil: the relationship of species richness with habitat diversity and conservation status",{"VOID":776},"[\"4403959316775017390\"]",{"VOID":778},"Ahti T (2000) Cladoniaceae. 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MjM Software, Gleneden Beach\nMcCune B, Mefford MJ (1999) PC-ORD multivariate analysis of ecological data, version 4.0. MjM Software, Gleneden Beach\nMenezes AA, Xavier-Leite AB, Otsuka AY, Jesus LS, Cáceres MES (2011) New records of crustose and microfoliose corticicolous lichens in Caatinga vegetation of the semi-arid region in Alagoas. Acta Bot Bras 25:885–889\nMetzger JP (2009) Conservation issues in the Brazilian Atlantic forest. Biol Cons 142:1138–1140\nMetzger JP, Martensen AC, Dixo M, Bernacci LC, Ribeiro MC, Teixeira AMG, Pardini R (2009) Time-lag in biological responses to landscape changes in a highly dynamic Atlantic forest region. Biol Conserv 142:1166–1177\nMittermeier RA, Gil PR, Hoffmann M, Pilgrim J, Brooks T, Mittermeier CG, Lamoreux J, Da Fonseca GAB (2004) Hotspots revisited. CEMEX, Mexico City\nMonge-Nájera J, González MI, Rossi MR, Méndez-Estrada VH (2002) Twenty years of lichen cover change in a tropical habitat (Costa Rica) and its relation with air pollution. Rev Biol Trop 50:309–319\nNash TH III (ed) (2008a) Lichen biology, 2nd edn. Cambridge University Press, Cambridge\nNash TH III (2008b) Nutrients, elemental accumulation, and mineral cycling. In: Nash TH III (ed) Lichen biology, 2nd edn. Cambridge University Press, Cambridge, pp 234–251\nNash TH III (2008c) Lichen sensitivity to air pollution. In: Nash TH III (ed) Lichen biology, 2nd edn. Cambridge University Press, Cambridge, pp 299–314\nNash TH III (2008d) Nitrogen, its metabolism and potential contribution to ecosystems. In: Nash TH III (ed) Lichen biology. Cambridge University Press, Cambridge, pp 216–233\nOliveira AA, Mori SA (1999) A central Amazonian terra firme forest. I. High tree species richness on poor soils. Biodiv Conserv 8:1219–1244\nPurvis W (2000) Lichens. Natural history museum. London and Smithsonian Institution, Washington DC\nPütz S, Groeneveld J, Alves LF, Metzger JP, Huth A (2011) Fragmentation drives tropical forest fragments to early successional states: a modelling study for Brazilian Atlantic forests. Ecol Mod 222:1986–1997\nRadies D, Coxson D, Johnson C, Konwicki K (2009) Predicting canopy macrolichen diversity and abundance within old-growth inland temperate rainforests. Forest Ecol Manag 259:86–97\nRibeiro MC, Metzger JP, Martensen AC, Ponzoni FJ, Hirota MM (2009) The Brazilian Atlantic Forest: how much is left, and how is the remaining forest distributed? Implications for conservation. Biol Cons 142:1141–1153\nRivas Plata E, Lücking R (2013) High diversity of Graphidaceae (lichenized Ascomycota: Ostropales) in Amazonian Perú. Fung Div 58:13–32\nRivas Plata E, Lücking R, Lumbsch HT (2008) When family matters: an analysis of Thelotremataceae (Lichenized Ascomycota: Ostropales) as bioindicators of ecological continuity in tropical forests. Biodiv Conserv 17:1319–1351\nSaatchi S, Agosti D, Alger K, Delabie J, Musinsky J (2001) Examining fragmentation and loss of primary forest in the southern Bahian Atlantic forest of Brazil with radar imagery. Conserv Biol 15:867–875\nSeaward MRD (2008) Environmental role of lichens. In: Nash TH III (ed) Lichen biology, 2nd edn. Cambridge University Press, Cambridge, pp 274–298\nSipman HJM, Aptroot A (2001) Where are the missing lichens? Mycol Res 105:1433–1439\nSipman HJM, Harris RC (1989) Lichens. In: Lieth H, Werger MJA (eds) Tropical rain forest ecosystems. Elsevier Science Publishers B.V, Amsterdam, pp 303–309\nStaiger B (2002) Die Flechtenfamilie Graphidaceae. Studien in Richtung einer natürlicheren Gliederung. Bibl Lichenol 85:1–526\nTabarelli M, Pinto LP, Silva JMC, Hirota M, Bedê L (2005) Challenges and opportunities for biodiversity conservation in the Brazilian Atlantic forest. Conserv Biol 19:695–700\nTabarelli M, Aguiar AV, Ribeiro MC, Metzger JP, Peres CA (2010) Prospects for biodiversity conservation in the Atlantic forest: lessons from aging human-modified landscapes. Biol Conserv 143:2328–2340\nThomas WW, Britton EG (2008) The Atlantic Coastal Forest of Northeastern Brazil. The New York Botanical Garden Press, Bronx\nThomas WW, Carvalho AMV (1997) Atlantic moist forest of Southern Bahia, south-eastern Brazil. In: Davis SD, Heywood VH, Herrera-MacBryde O, Villa-Lobos J, Hamilton AC (eds) Centers of plant diversity: a guide and strategy for their conservation, The Americas. WWF and IUCN, London, pp 364–368\nVainio EA (1890) Étude sur la classification et la morphologie des lichens du Brésil, I. Acta Soc Fauna Fl Fenn 7:1–247\nValencia R, Balslev H, Paz y Mino G (1994) High tree alpha-diversity in Amazonian Ecuador. Biodiv Conserv 3:21–28\nWhittaker RH (1960) Vegetation of the Siskiyou Mountains, Oregon and California. Ecol Monogr 30:279–338\nXavier-Leite AB, Menezes AA, Aptroot A, Cáceres MES (2014) Coenogonium chloroticum (Ascomycota: Coenogoniaceae), a new corticolous lichen species from Mata do Pau-Ferro, in Paraíba, NE Brazil. 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micropropagation comprises biotechnological tools used for the conservation and mass propagation of orchid species. However, there are few reports of its use for orchids of the subtribe Pleurothallidinae. The present study evaluated the effects of 6-benzylaminopurine (BAP) on shoots formation and development of Dryadella zebrina (Porsch) Luer. For this, seeds were in vitro germinated, and the plantlets were submitted to different concentrations of BAP (0, 3, 6, 9, 12, and 15 µM). The plantlets derived from the treatments 0, 6, and 15 µM of BAP were collected after 60 days in culture and subjected to light microscopy analysis. Our results indicated that BAP increased the formation of the new shoots of D. zebrina, especially in treatment with 6 µM, and its use is indicated for the in vitro multiplication phase. The anatomical analyses of the roots showed a deleterious effect of 15 µM BAP on the meristematic region, with the presence of more vacuolated cells in this zone. Our results represent the first successful report of in vitro propagation for the genus Dryadella and may serve as a basis for further studies of in vitro propagation of phylogenetically related species.",{"EN":897},"The cytokinin 6-Benzylaminopurine improves the formation and development of Dryadella zebrina (Orchidaceae) in vitro shoots",{"VOID":899},"[\"12393873557770500923\"]",{"VOID":901},"Adhikari H, Pant B (2019) Effect of 6-benzylaminopurine and-naphthalene acetic acid hormonal supplements on the in vitro seed germination and seedling development of orchid Otochilus albus Lindl. Afr J Biotechnol 18:472–477\nAmoo SO, Aremu AO, Moyo M, Szüčová L, Doležal K, Van Staden J (2014) Physiological effects of a novel aromatic cytokinin analogue in micropropagated Aloe arborescens and Harpagophytum procumbens. Plant Cell Tiss Org Cult 116:17–26\nArditti J, Ghani AKA (2000) Numerical and physical properties of orchid seeds and their biological implications. New Phytol 145:367–421\nAremu AO, Plačková L, Pěnčík A, Novák O, Doležal K, Van Staden J (2016) Auxin-cytokinin interaction and variations in their metabolic products in the regulation of organogenesis in two Eucomis species. New Biotechnol 33:883–890\nBarbero APP, Barros FD, Silva EAD, Suzuki RM (2011) Influence of water stress on seed germination and early development in three species of Pleurothallidinae (Orchidaceae). Braz J Bot 34:593–601\nBhattacharyya P, Kumaria S, Tandon P (2016) High frequency regeneration protocol for Dendrobium nobile: a model tissue culture approach for propagation of medicinally important orchid species. S Afr J Bot 104:232–243\nCassells AC, Curry RF (2001) Oxidative stress and physiological, epigenetic and genetic variability in plant tissue culture: implications for micropropagators and genetic engineers. Plant Cell Tiss Org Cult 64:145–157\nCastillo-Pérez LJ, Maldonado-Miranda JJ, Alonso-Castro AJ, Carranza-Álvarez C (2020) Effect of 6-benzylaminopurine and potassium nitrate on the in vitro micropropagation of Laelia anceps subsp. anceps (Orchidaceae). Biotecnia 22:32–38\nDressler RL (2005) How many orchid species? Selbyana 26:155–158\nHossain MM, Sharma M, Pathak P (2009) Cost effective protocol for in vitro mass propagation of Cymbidium aloifolium (L.) Sw.–a medicinally important orchid. Eng Life Sc 9:444–453\nImig DC, Junior JAJ, Mauad RSA, Amano E, Smidt EC (2020) Vegetative anatomy and its systematic significance in the Dryadella Luer (Orchidaceae: Pleurothallidinae). Feddes Repert 131:175–187\nJordan AM, Calvo MC, Segura J (1998) Micropropagation of adult Lavandula dentata plants. J Hortic Sci Biotechnol 73:93–96\nKarremans AP, Davin N (2017) Genera Pleurothallidinarum: The Era of Carlyle Luer. Lankesteriana 17:1–8\nKoene FM, Amano E, Smidt EC, Ribas LLF (2020) Asymbiotic germination and morphological studies of seeds of Atlantic Rainforest micro-orchids (Pleurothallidinae). PLoS ONE 15:e0243297\nLi YY, Chan C, Stahl C, Yeung EC (2018) Recent advances in orchid seed germination and micropropagation. In: Lee YI, Yeung ET (eds) Orchid propagation: from laboratories to greenhouses—methods and protocols: Springer Protocols Handbooks. Humana Press, New York, pp 497–520\nLi SM, Zheng HX, Zhang XS, Sui N (2020) Cytokinins as central regulators during plant growth and stress response. Plant Cell Rep 40:271–282\nLloyd G, Mccown B (1980) Commercially feasible micropropagation of mountain laurel, Kalmia latifolia, by use of shoot tip culture. Comb Proc Internat Plant Propag Soc 30:421–426\nLo S, Nalawade SM, Kuo C, Chen C, Tsay H (2004) Asymbiotic germination of imature seeds, plantlet development and ex vitro establishment of plants of Dendrobium tosaense Makino – A medicinally important orchid. In Vitro Cell Dev Biol Plant 40:528–535\nLuer CA (1999) lcones Pleurothallidinarum XVIII. Systematics of Pleurothallis Subgen. Pleurothallis Sect. Pleurothallis Subsect. Antenniferae, Subsect. Longiracemosae, Subsect. Macrophyllae-Racemosae, Subsect. Perplexae, Subgen. Pseudostelis, Subgen. Acuminatia. Mongr. Syst. Bot. Missouri Bot. Gard. 76\nLuer CA (2006) Icones Pleurothallidinarum VIII. Reconsideration of Masdevallia, and the systematic of Specklinia and vegetatively similar genera (Orchidaceae). Monogr Syst Bot 105:1–300\nMartins JPR, Santos ER, Rodrigues LCA, Gontijo ABPL, Falqueto AR (2018) Effects of 6-benzylaminopurine on photosystem II functionality and leaf anatomy of in vitro cultivated Aechmea blanchetiana. Biol Plant 62:793–800\nMiyoshi K, Mii M (1995) Phytohormone pré- treatment for the enhancement of seed germination and protocorm formation by the terrestrial orchid, Calanthe discolor (Orchidaceae), in asymbiotic culture. Sci Horticult 63:263–267\nMotyka V, Faiss M, Strand M, Kamínek M, Schmulling T (1996) Changes in cytokinin content and cytokinin oxidase activity in response to derepression of ipt gene transcription in transgenic tobacco calli and plants. Plant Physiol 112:1035–1043\nNayak NR, Chand PK, Rath SP, Patnaik SN (1998) Influence of some plant growth regulators on the growth and organogenesis of Cymbidium aloifolium (L.) Sw. seed-derived rhizomes in vitro. In Vitro Cell Dev Bio Plant 34:185\nO’Brien TP, Feder N, McCully ME (1964) Polychromatic staining of plant cell walls by toluidine blue O. Protoplasma 59:368–373\nPornpienpakdee P, Singhasurasak R, Chaiyasap P, Pichyangkura R, Bunjongrat R, Chadchawan S, Limpanavech P, Murashige T, Skoog F (2011) Improving the micropropagation efficiency of hybrid Dendrobium orchids with chitosan. A revised medium for rapid growth and bioassay with tobacco tissue culture. Sci Horticult 124:490–499\nPridgeon AM (1982) Diagnostic anatomical characters in the Pleurothallidinae (Orchidaceae). Am J Bot 69:921–938\nRibeiro OPJ, Paula-Souza J, Silva JC (2020) Morphoanatomy of vegetative organs of two species of Cattleya (Orchidaceae) Native to Brazil. Rodriguesia 71:e01672017\nRibeiro VC, Leitão CAE (2020) Utilisation of toluidine blue O pH 4.0 and histochemical inferences in plant sections obtained by free-hand. Protoplasma 257:993–1008\nRodrigues LA, Paiva Neto VBD, Boaretto AG, Oliveira JFD, Torrezan MDA, Lima SFD, Otoni WC (2015) In vitro propagation of Cyrtopodium saintlegerianum Rchb. f. (Orchidaceae), a native orchid of the Brazilian savannah. Crop Breed App Biotechnol 15:10–17\nSoares JDR, Pasqual M, Rodrigues FA, Araújo AG (2010) Etiolation and artificial light in native and hybrid orchids under in vitro cultivation. Cienc Rural 40:1941–1947\nStewart SL, Kane ME (2006) Asymbiotic seed germination and in vitro seedling development of Habenaria macroceratitis (Orchidaceae) a rare Florida terrestrial orchid. Plant Cell Tiss Organ Cult 86:147–158\nSu YH, Liu YB, Zhang XS (2011) Auxin–cytokinin interaction regulates meristem development. Mol Plant 4:616–625\nSwarts ND, Dixon KW (2009) Terrestrial orchid conservation in the age of extinction. Ann Bot 104:543–556\nYam TW, Arditti J (2009) History of orchid propagation: a mirror of the history of biotechnology. 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University of Santa Catarina, Curitibanos, Brazil",[],{},{"title":983},{"VI":984},"Miguel Pedro Guerra",{"id":986,"sortIndex":987,"researcher":20,"roles":988,"affiliations":989,"properties":996,"displayName":998,"givenName":20,"familyName":20},"d9f9f915-c68d-4221-9bcb-16a0554b9c69",5,[121],[990],{"id":912,"sortIndex":21,"affiliation":991,"properties":20},{"id":912,"createTime":20,"updateTime":20,"relativeEntities":992,"slug":20,"properties":993,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":995,"statistic":20},[],{"title":994},{"VI":917},[],{"title":997},{"VI":998},"Hugo Pacheco de Freitas Fraga",{"url":905,"publisher":1000,"properties":1042},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1001,"slug":10,"properties":1002,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1006,"manageAffiliations":1011,"indexDatabases":1022,"url":80,"thumbnailPath":20,"statistic":1037,"gsStatistic":20,"type":90,"analyzePriority":20},[],{"issn":1003,"title":1004,"eissn":1005},{"VOID":13},{"EN":15},{"VOID":17},[1007],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":1008,"label":1009,"description":1010,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[1012,1017],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":1013,"slug":20,"properties":1014,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1016,"statistic":20},[],{"title":1015},{"EN":35},[37],{"id":39,"createTime":20,"updateTime":20,"relativeEntities":1018,"slug":20,"properties":1019,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1021,"statistic":20},[],{"title":1020},{"EN":43},[],[1023,1030],{"id":47,"indexDatabase":1024,"url":60,"indexYears":20,"academicFieldIds":1029,"indexDatabaseRanking":20},{"id":49,"createTime":20,"updateTime":20,"relativeEntities":1025,"label":1026,"description":1027,"key":56,"publicationTags":1028,"standard":20},[],{"EN":52,"VI":52},{"EN":54,"VI":55},[58,59],[62],{"id":64,"indexDatabase":1031,"url":75,"indexYears":76,"academicFieldIds":1036,"indexDatabaseRanking":79},{"id":66,"createTime":20,"updateTime":20,"relativeEntities":1032,"label":1033,"description":1034,"key":72,"publicationTags":1035,"standard":20},[],{"EN":69,"VI":69},{"EN":69,"VI":71},[74],[78],{"impactFactor":21,"impactFactorByYear":1038,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":83,"totalPublicationByYear":1039,"totalCitation":21,"totalCitationByYear":1040,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":1041,"hindexLast5Year":21,"hindex":21},{},{"2013":85,"2015":86,"2016":87,"2020":86,"2021":85},{},{},{"pages":1043,"volume":1045},{"VOID":1044},"811-819",{"VOID":375},"2021-09-21","2026-07-15T19:06:14.606+00:00",[79,58],{"id":1050,"createTime":1051,"updateTime":1052,"relativeEntities":1053,"slug":1054,"properties":1055,"entityType":112,"verifyStatus":113,"verifyTime":1065,"verifyNote":115,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1066,"fullTextUrl":20,"authors":1067,"publicationType":160,"publisherRelationship":1133,"citationCount":20,"citationInfo":20,"publishDate":1181,"publishYear":1182,"citationAnalyzeStatus":211,"lastCitationAnalyze":1183,"indexDatabases":1184,"openAccess":20,"references":20,"isForceReanalyzing":214},"ed51af03-12a8-4e4c-8137-2e65817b0634","2023-12-13T02:15:05.801+00:00","2026-07-08T04:56:37.733+00:00",[],"AteqTERT-expression-and-specific-tissue-activity-in-a-2-year-old-complete-plant-in-Agave-tequilana-in-field-conditions",{"abstract":1056,"title":1058,"gsPaper":1060,"references":1061,"doi":1063},{"EN":1057},"Telomerase is a specialized enzyme that attributes to maintaining and lengthening of telomeric length as its primary function. This ribonucleoprotein complex requires two minimum subunits for its in vivo function: the TERT amino acid subunit and TER its ribonucleic subunit. Crystallographic studies have shown that stable interaction between subunits and their domains is essential during the active phase. Plants and humans have shown to be tissue specific and dependent on cell proliferation. In Arabidopsis thaliana (L.) Heynh, the expression of AtTERT was determined to be necessary for activity. The objective of this work is to perform the in silico characterization of TERT in Agave tequilana F.A.C. Weber and evaluate the expression of TERT and the specific tissue activity in 2-year-old plants. To this end, we use the transcriptome library of A. tequilana (Ávila de Dios unpublished data) in TPM and qTRAP. We observe in this work that the consensus sequence shows all the specific domains of the TERT subunit. Additionally, we carried out the in silico prediction of the structural model of AteqTERT. The model presents the characteristic TERT ring of the crystallized models in active state of telomerase, biological annotations were observed, such as heavy metals Mg2+, NUC and CH1, and finally we note that, there is no correlation between TERT expression in TPM and telomerase activity in 2-year meristematic tissue.",{"EN":1059},"AteqTERT expression and specific tissue activity in a 2-year-old complete plant in Agave tequilana in field conditions",{"VOID":107},{"VOID":1062},"Beilstein MA, Brinegar AE, Shippen DE (2012) Evolution of the Arabidopsis telomerase RNA. Front Genet 3:1–8. https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffgene.2012.00188\nBlackburn EH, Collins K (2011) Telomerase: an RNP enzyme synthesizes DNA. 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Genes Dev 17:2747–2752. https:\u002F\u002Fdoi.org\u002F10.1101\u002Fgad.1140303\nChung H, Hishinuma R, Ando S, Sakai S (2005) A possible mRNA splicing mechanism for regulation of telomerase activity in rice (Oryza sativa L.). J Plant Biol 48:209–219. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF03030410\nCollins K (2006) The biogenesis and regulation of telomerase holoenzymes. Nat Rev Mol Cell Biol 7:484–494. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fnrm1961\nCollins K (2008) Physiological assembly and activity of human telomerase complexes. Mech Ageing Dev 129:91–98. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.mad.2007.10.008\nDe Dios EA, Vargas ADG, Santos MLD, Simpson J (2015) New insights into plant glycoside hydrolase family 32 in Agave species. 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Biochemistry 75:1563–1583. https:\u002F\u002Fdoi.org\u002F10.1134\u002Fs0006297910130055",{"VOID":1064},"10.1007\u002Fs40415-020-00642-3","2024-06-24T12:55:18.952+00:00","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs40415-020-00642-3",[1068,1092,1107,1120],{"id":1069,"sortIndex":21,"researcher":20,"roles":1070,"affiliations":1071,"properties":1089,"displayName":1091,"givenName":20,"familyName":20},"efd765d8-a7c1-47c8-b3a1-4989ca207c32",[121],[1072,1080],{"id":1073,"sortIndex":21,"affiliation":1074,"properties":20},"f06ff616-e758-4098-ba17-dc3469afa7ab",{"id":1073,"createTime":20,"updateTime":20,"relativeEntities":1075,"slug":20,"properties":1076,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1079,"statistic":20},[],{"title":1077},{"VI":1078},"Unidad de Bioquímica y Biología Molecular de Plantas, Centro de Investigación Científica de Yucatán, A.C., Mérida, Mexico",[],{"id":1081,"sortIndex":85,"affiliation":1082,"properties":1088},"88a99bb3-3250-434f-b3ff-d10903715bdf",{"id":1081,"createTime":20,"updateTime":20,"relativeEntities":1083,"slug":20,"properties":1084,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1087,"statistic":20},[],{"title":1085},{"VI":1086},"Unidad de Biotecnología, Centro de Investigación Científica de Yucatán, A. C., Mérida, Mexico",[],{},{"title":1090},{"VI":1091},"Z. De la Torre Espinosa",{"id":1093,"sortIndex":85,"researcher":20,"roles":1094,"affiliations":1095,"properties":1104,"displayName":1106,"givenName":20,"familyName":20},"73a3a804-aa0e-448f-8a49-0433d1774b05",[121],[1096],{"id":1097,"sortIndex":21,"affiliation":1098,"properties":20},"db81f30c-d83a-4730-ad37-ea8f954f0fc4",{"id":1097,"createTime":20,"updateTime":20,"relativeEntities":1099,"slug":20,"properties":1100,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1103,"statistic":20},[],{"title":1101},{"VI":1102},"Unidad de Ingeniería Genética, Centro de Investigación y Estudios Avanzados del Instituto Politécnico Nacional, Irapuato, Mexico",[],{"title":1105},{"VI":1106},"Emmanuel Ávila De 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species of non-cultivated passion fruit plant have important contributions to genetic improvement. However, there are few studies concerning about embryogenic and organogenic calli mainly related with structural alterations during their development. The objective of this work was to characterize, structurally the callogenesis on leaf explants of Passiflora gibertii N. E. Brown. The cotyledons were inoculated in MS culture medium, containing half salt concentration, supplemented with sucrose (3 %), and picloram+kinetin for the calli formation. Different calli colors were obtained and used for structural analyses. The calli colors were translucent, white, dark-yellow, white-brown, light-yellow, and white-yellow. After 30 days of cultivation, the calli were fixed in Karnovsky and prepared for the visualization under the scanning and transmission electron microscope and optic microscope. Translucent and light-yellow calli did not present morphogenic characteristics. The cells had different shapes forming non-organized cellular system and the absence or reduced starch content. On the other hand, white and dark-yellow calli manifested embryogenic characteristics such as small isodiametric cells, an organized cellular, dense cytoplasm rich in mitochondria and endoplasmic reticulum, small vacuole and significant starch contend. The culture medium supplemented with 4.14 μM of picloram +0.46 μM of kinetin is the most suitable to induce embryogenic cells.",{"EN":1195},"Morphogenetic potential of native passion fruit (Passiflora gibertii N. E. Brown.) calli",{"VOID":107},{"VOID":1198},"Cangahuala-Inocente GC, Steiner N, Santos M, Guerra MP (2004) Morphological analysis and histochemistry of Feijoa sellowiana somatic embryogenesis. Protoplasma 224:3340\nCanhoto JM, Mesquita JF, Cruz GS (1996) Ultrastructural changes in cotyledons of pineapple guava (Myrtaceae) during somatic embryogenesis. Ann Bot 78:513–521\nCarvalho DC, Siva ALL, Tanno GT, Purcino M, Bias LA (2011) Organogênese a partir de segmentos foliares e internodais de videira cv. Merlot. Ciênc Agrotec 35:108–114\nChen AH, Yang JL, Niu YD, Yang CP, Liu GF, Yu CY, Li CH (2010) High-frequency somatic embryogenesis from germinated zygotic embryos of Schisandra chinensis and evaluation of the effects of medium strength, sucrose, GA3, and BA on somatic embryo development. Plant Cell Tiss Org Cult 102:357–364\nCunha MAP, Barbosa LV, Junqueira NTV (2002) Espécies de maracujazeiro. In: Lima AA (ed) Maracujá produção: aspectos técnicos. Embrapa Informação Tecnológica, Brasília, p 104\nFehér A (2005) Why somatic plant cells start to form embryos? In: Mujib A, Samaj J (eds) Somatic embryogenesis., pp 85–101\nFehér A, Pasternak T, Dudits D (2003) Transition of somatic plant cells to an embryogenic state. Plant Cell Tiss Organ Cult 74:201–228\nFernando JA (1999) Estudos anatômicos da embriogênese somática in vitro em soja (Glycine max (L.) Merrill). Dissertação de Mestrado. Piracicaba USP\u002FESALQ, p 60\nFernando JA, Melo M, Soares MKM, Appezzato-da-Glória B (2001) Anatomy of somatic embryogenesis in Carica papaya L. Braz Arch Biol Technol 44:247–255\nFernando SC, Verdeil JL, Hocher V, Weerakoon LK, Hirimburegama K (2003) Histological analysis of plant regeneration from plumule explants of Cocos nucifera. Plant Cell Tiss Org Cult 72:281–284\nFigueiredo SFL, Simões C, Albarello N, Viana VRC (2000) Rollinia mucosa cell suspension cultures: establishment and growth conditions. Plant Cell Tiss Org Cult 63:85–92\nFilonova Lh, Bozhkov Pv, Brukhin Vb, Daniel G, Zhivotovsky B, Von Arnold S (2000) Two waves of programmed cell death occur during formation and development of somatic embryos in the gymnosperm, Norway spruce. J Cell Sci 113:4399–4411\nFischer IH (2003) Seleção de plantas resistentes e de fungicidas para o controle da “morte prematura” do maracujazeiro, causada por Nectria haematococca e Phytophthora parasitica. Dissertação de Mestrado. Piracicaba USP\u002FESALQ, p 48\nGeorge EF (1993) Plant propagation by tissue culture—the technology. Exegetics, Edington\nMeletti LMM, Bruckner CH (2001) Melhoramento genético. In: Bruckner CH, Picanço MC (eds) Maracujá: tecnologia de produção, pós-colheita, agroindústria, mercado., pp 345–385\nMikuła A, Tykarska T, Kuras M, Rybczyński JJ (2005) Somatic embryogenesis of Gentiana cruciata (L.): histological and ultrastructural changes in seedling hypocotyl explant. In Vitro Cell Dev Biol 41:686–694\nMonteiro ACBA, Higashi EN, Gonçalves AN, Rodriguez APM (2000) A novel approach for the definition of the inorganic medium component for micropropagation of yellow passion fruit (Passiflora edulis Sims. f. flavicarpa Deg.). In Vitro Cell Dev Biol 36:527–531\nMoura Barros L (1999) Embriogênese somática. Biotec Ciênc e Desenvol 2:36–43\nMoura EF, Ventrella MC, Motoike SY (2010) Anatomy, histochemistry and ultrastructure of seed and somatic embryo of Acrocomia aculeata (Arecaceae). Sci Agric 67:399–407\nMurashige T, Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol Plant 15:473–497\nNogueira RC, Paiva R, Porto JMP, Nicioli PM, Stein VC, Deuner S, Alves E (2007) Análise ultra-estrutural de calos embriogênicos de murici-pequeno (Byrsonima intermedia A. Juss.). Rev Bras de Bioci 5:48–50\nOliveira Ribeiro L, Paiva LV, Pádua, Santos BR, Alves E, Stein VC (2012) Morphological and ultrastructural analysis of various types of banana callus, cv. Prata anã. Acta Sci, Agron 3:423–429\nPalmer CD, Keller WA (2011) Somatic embryogenesis in Crambe abyssinica Hochst. ex R. E. Fries using seedling explants. Plant Cell Tiss Org Cult 104:10–91\nPihakashi-Maunsbach K, Nygaard KB, Jensen KH, Rasmussen (1993) O Cellular changes in early development of regenerating thin cell layer-explants of rapeseed analysed by light and electron microscopy. Physiol Plant 87:167–176\nPortillo L, Olmedilla A, Santacruz-Ruvalcaba F (2012) Cellular and molecular changes associated with somatic embryogenesis induction in Agave tequilana. Protoplasma 4:1101–1107\nPrakash MG, Gurumurthi K (2010) Effects of type of explant and age, plant growth regulators and medium strength on somatic embryogenesis and plant regeneration in Eucalyptus camaldulensis. Plant Cell Tiss Org Cult 100:2–13\nRocha DI, Vieira LM, Tanaka FAO, da Silva LC, Otoini WC (2012) Somatic embryogenesis of a wild passion fruit species Passiflora cincinnata Masters: histocytological and histochemical evidences. Protoplasma 249:747–758\nRoncatto G, Oliveira JC, Ruggiero C, Filho GCN, Centurion MAPC, Ferreira FR (2004) Comportamento de maracujazeiros (Passiflora spp.) quanto à morte prematura. Rev Bras Frutic 26:552–554\nRosal LF (2004) Germinação, indução de calos, micropropagação e anatomia foliar da candeia (Eremanthus erythropappus (DC.) Mac Leish). Dissertação de Mestrado. Lavras. UFLA\nRowley CR, Moran DT (1975) A simple procedure for mounting wring wrinkle—free sections on formvar—coated slot grids. Ultramicrotomy 1:151–155\nSané D, Aberlenc-Bertossi F, Gassama-Dia YK, Sagna M, Trouslot MF, Duval Y, Borgel A (2006) Histocytological analysis of callogenesis and somatic embryogenesis from cell suspensions of date palm (Phoenix dactylifera). Ann Bot 98:301–308\nSantana JRF, Paiva R, Souza AV, Oliveira LM (2011) Effect of different culture tube caps and concentrations of activated charcoal and sucrose on in vitro growth and budding induction of Annona glabra L. Ciênc Agrotec 35:916\nSchumann G, Ryschika U, Schulze J, Klocke E (1995) Anatomy of somatic embryogenesis. In: Bajaj YPS (ed) Biotechnology in agriculture and forestry. Springer, Berlin Heidelberg, pp 71–86\nShang H–H, Liu C-L, Zhang C, Li F-L, Hong W-D, Li F-G (2009) Histological and ultrastructural observation reveals significant cellular differences between Agrobacterium transformed embryogenic and non-embryogenic calli of cotton. J Integr Plant Biol 51:456–465\nSilva Guedes R, Silva TL, Luis ZGL, Scherwinski-Pereira JE (2011) Initial requirements for embryogenic calluses initiation in thin cell layers explants from immature female oil palm inflorescences. Afr J Biotechnol 10:10774–10780\nSilva Paula M, Noronha Fonseca ME, Boiteux LS, Peixoto JR (2010) Caracterização genética de espécies de Passiflora por marcadores moleculares análogos a genes de resistência. Rev Bras Frutic 32:222–229\nSouza AV, Bertoni BW, Castro Franca S, Pereira AMS (2011) Micropropagação de Dioscorea multiflora Grised. Ciênc agrotec 35:92–98\nStein VC, Paiva R, Vargas DP, Soares F, Alves E, Nogueira GF (2010) Ultrastructural calli analysis of Inga vera Willd subsp affinis (DC) TD Penn. Rev Árvore 34:789–796\nSteiner N, Vieira FN, Maldonado S, Guerra MP (2005) Carbon source affects morphogenesis and histodifferentiation of Araucaria angustifolia embryogenic cultures. Braz Arch Biol Technol 48:895–903\nStella A, Braga MR (2002) Callus and cell suspension cultures of Rudgea jasminoides, a tropical woody Rubiaceae. Plant Cell Tiss Org Cult 68:271–276\nVillalobo AG, Justo SR, Rodríguez R (2012) Morpho-physiological changes in pineapple plantlets [Ananas comosus (L.) merr.] during acclimatization. Ciência e Agrotecnologia 36:624–630\nWilliams EG, Maheswaran G (1986) Somatic embryogenesis: factors influencing coordinated behavior of cells as an embryogenic group. Ann Bot 57:443–462\nZienkiewicz A, Jiménez-López JC, Zienkiewicz K, Alché JD, Rodríguez-García MI (2011) Development of the cotyledon cells during olive (Olea europaea L.) in vitro seed germination and seedling growth. Protoplasma 248:751–765",{"VOID":1200},"10.1007\u002Fs40415-013-0015-4","2024-08-30T09:38:21.484+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs40415-013-0015-4",[1204,1219,1234,1249,1264,1279,1294,1310],{"id":1205,"sortIndex":21,"researcher":20,"roles":1206,"affiliations":1207,"properties":1216,"displayName":1218,"givenName":20,"familyName":20},"8ce8ecaf-1189-4700-96b8-588fd6c6eca9",[121],[1208],{"id":1209,"sortIndex":21,"affiliation":1210,"properties":20},"ee7265b7-026d-47c7-a5e3-5c622c73c41e",{"id":1209,"createTime":20,"updateTime":20,"relativeEntities":1211,"slug":20,"properties":1212,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1215,"statistic":20},[],{"title":1213},{"VI":1214},"Departamento de Biologia, Embrapa Café, Universidade Federal de Lavras, Lavras, Brazil",[],{"title":1217},{"VI":1218},"Milene Alves de Figueiredo 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multi-trial research was performed to compare some multivariate statistical methods and various stress tolerance indices with the aim of introducing an optimal method for selecting drought-tolerant genotypes of barley. Ten diverse varieties of barley were assayed during four cropping years under irrigated and rain-fed conditions. Drought tolerance and susceptibility indices were calculated. These indices included the stress susceptibility index, mean productivity, tolerance, stress tolerance index, geometric mean productivity, harmonic average productivity, yield (YI), yield stability and linear regression coefficient (b). The studied varieties showed significant differences (p ≤ 0.01) in terms of grain yield and its components. Multivariate statistical techniques including discriminant function analysis and factors analysis along with stress tolerance score (STS) as a function of all conventional indices were applied in order to select high-yield and drought-tolerant varieties. Based on the results of discriminant function analysis, factor analysis and STS, the ‘Kavir’ variety was more tolerant to drought stress and generated the highest yield, compared to other varieties during each year of the four cropping years. The similarity of obtained results from the various methods revealed that STS index due to easier calculation and more accurate than other statistical analyses and indices can be considered as an integrated criterion to identify drought-tolerant genotypes in barley and a broad spectrum of grain crops over all the world.",{"EN":1388},"Comparing the potential of indices and multivariate statistical techniques to select drought tolerant genotypes in barley (Hordeum vulgare L.)",{"VOID":107},{"VOID":1391},"Abdolshahi R, Safarian A, Nazari M et al (2013) Screening drought-tolerant genotypes in bread wheat (Triticum aestivum L.) using different multivariate methods. Arch Agron Soil Sci 59:685–704\nAjalli J, Salehi M (2012) Evaluation of drought stress indices in barley (Hordeum vulgare L.). Ann Biol Res 3:5515–5520\nAkçura M, Partigoç F, Kaya Y (2011) Evaluating of drought stress tolerance based on selection indices in Turkish bread wheat landraces. J Anim Plant Sci 21:700–709\nArshadi A, Karami E, Khateri B, Rezabakhsh P (2016) Drought stress effects on the grain yield among different barley cultivars. Genetika 48:1087–1100. https:\u002F\u002Fdoi.org\u002F10.2298\u002FGENSR1603087A\nBahrami F, Arzani A, Rahimmalek M (2020) A novel tolerance index to identify heat tolerance in cultivated and wild barley genotypes. bioRxiv\nBansal KC, Sinha SK (1991) Assessment of drought resistance in 20 accessions of Triticum aestivum and related species I. Total dry matter and grain yield stability. Euphytica 56:7–14\nBouslama M, Schapaugh WT (1984) Stress tolerance in soybeans. I. Evaluation of three screening techniques for heat and drought tolerance 1. Crop Sci 24:933–937. https:\u002F\u002Fdoi.org\u002F10.2135\u002Fcropsci1984.0011183x002400050026x\nBrown JD (2009) Statistics corner. Questions and answers about language testing statistics: choosing the right number of components or factors in PCA and EFA. Shiken JALT Test Eval SIG Newsl 13:19–23\nCeccarelli S, Grando S, Baum M (2007) Participatory plant breeding in water-limited environment. Exp Agric 43:411–435\nChaves MM, Oliveira MM (2004) Mechanisms underlying plant resilience to water deficits: prospects for water-saving agriculture. J Exp Bot 55:2365–2384\nClarke JM, DePauw RM, Townley-Smith TF (1992) Evaluation of methods for quantification of drought tolerance in wheat. Crop Sci 32:723–728\nDadbakhsh A, Sepas AY, Aminzadeh G, Hasanpanah D, Mollasadeghi V (2011) Evaluation of drought tolerance indices for screening bread wheat genotypes in end-season drought stress conditions. Adv Environ Biol 5:1040–1045\nFernandez GCJ (1992) Effective selection criteria for assessing plant stress tolerance. In: Proceeding of the international symposium on adaptation of vegetables and other food crops in temperature and water stress, Aug. 13–16, Shanhua, Taiwan, 1992. pp 257–270\nFischer RA, Maurer R (1978) Drought resistance in spring wheat cultivars. I. Grain yield responses. Aust J Agric Res 29:897–912\nGavuzzi P, Rizza F, Palumbo M et al (1997) Evaluation of field and laboratory predictors of drought and heat tolerance in winter cereals. Can J Plant Sci 77:523–531\nGiancarla V, Madosa E, Ciulca S et al (2010) Assessment of drought tolerance in some barley genotypes cultivated in West part of Romania. J Hortic for Biotechnol 14:114–118\nGolabadi M, Arzani A, Maibody SAMM (2006) Assessment of drought tolerance in segregating populations in durum wheat. Afr J Agric Res 1:162–171\nHaddadin MF (2015) Assessment of drought tolerant barley varieties under water stress. Int J Agric for 5:131–137\nHair JF, Black WC, Babin BJ et al (1998) Multivariate data analysis, vol 5. Prentice Hall, Upper Saddle River\nHittalmani S, Huang N, Courtois B et al (2003) Identification of QTL for growth-and grain yield-related traits in rice across nine locations of Asia. Theor Appl Genet 107:679–690\nHossain ABS, Sears RG, Cox TS, Paulsen GM (1990) Desiccation tolerance and its relationship to assimilate partitioning in winter wheat. Crop Sci 30:622–627. https:\u002F\u002Fdoi.org\u002F10.2135\u002Fcropsci1990.0011183x003000030030x\nHossain A, da Silva JAT, Lozovskaya MV et al (2012) High temperature combined with drought affect rainfed spring wheat and barley in south-eastern Russia: yield, relative performance and heat susceptibility index. J Plant Breed Crop Sci 4:184–196\nIlker E, Tatar Ö, Tonk FA, Tosun M (2011) Determination of tolerance level of some wheat genotypes to post-anthesis drought. Turk J F Crop 16:59–63\nIPGRI (1994) Descriptors for barley (hordeum vulgare l.). Int Plant Genet Resour Institute, Rome\nJafari A, Paknejad F, Jami Al-Ahmadi M (2012) Evaluation of selection indices for drought tolerance of corn (Zea mays L.) hybrids. Int J Plant Prod 3:33–38\nKaspar TC, Pulido DJ, Fenton TE et al (2004) Relationship of corn and soybean yield to soil and terrain properties. Agron J 96:700–709\nKhokhar MI, da Silva JAT, Spiertz H (2012) Evaluation of barley genotypes for yielding ability and drought tolerance under irrigated and water-stressed conditions. Am J Agric Environ Sci 12:287–292\nMallarino AP, Oyarzabal ES, Hinz PN (1999) Interpreting within-field relationships between crop yields and soil and plant variables using factor analysis. Precis Agric 1:15–25\nMardeh AS-S, Ahmadi A, Poustini K, Mohammadi V (2006) Evaluation of drought resistance indices under various environmental conditions. Field Crop Res 98:222–229\nMitra J (2001) Genetics and genetic improvement of drought resistance in crop plants. Curr Sci 80(6):758–763\nMohammadi M, Karimizadeh R, Abdipour M (2011) Evaluation of drought tolerance in bread wheat genotypes under dryland and supplemental irrigation conditions. Aust J Crop Sci 5:487–493\nNazari L, Pakniyat H (2010) Assessment of drought tolerance in barley genotypes. J Appl Sci 10:151–156. https:\u002F\u002Fdoi.org\u002F10.3923\u002Fjas.2010.151.156\nNazari Bu-Ali M, Abdolshahi R, Nazari M et al (2015) Integrated selection criteria for drought tolerance in wheat (Triticum aestivum L.) breeding programs using discriminant analysis. Elsevier 174:20–29. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.fcr.2015.01.009\nNiazi-Fard A, Nouri F, Nouri A et al (2012) Investigation of the relationship between grain yield and yield components undernormal and terminal drought stress conditions in advanced barley lines (Hordeum vulgar) using path analysis in Kermanshah province. Int J Agric Crop Sci 4:1885–1887\nOuk M, Basnayake J, Tsubo M et al (2006) Use of drought response index for identification of drought tolerant genotypes in rainfed lowland rice. Field Crop Res 99:48–58\nPireivatlou AS, Masjedlou BD, Aliyev RT (2010) Evaluation of yield potential and stress adaptive trait in wheat genotypes under post anthesis drought stress conditions. Afr J Agric Res 5:2829–2836\nPlaut Z (2003) Plant exposure to water stress during specific growth stages, Encyclopedia of Water Science\nRosielle AA, Hamblin J (1981) Theoretical aspects of selection for yield in stress and non-stress environment 1. Crop Sci 21:943–946\nSadeghi Shoae M, Paknejad F, Rika ZF, Reza Nasri, Tookalloo M (2014) Selection for drought tolerant barley (Hordeum vulgare L.) genotypes under climatic conditions of Karaj, Iran. Res Crops 15:558–563. https:\u002F\u002Fdoi.org\u002F10.5958\u002F2348-7542.2014.01377.1\nSaeidi M, Abdoli M, Azhand M, Khas-Amiri M (2013) Evaluation of drought resistance of barley (Hordeum vulgare L.) cultivars using agronomic characteristics and drought tolerance indices. Albanian J Agric Sci 12:545–554\nSardouei-Nasab S, Mohammadi-Nejad G, Nakhoda B (2019) Yield stability in bread wheat germplasm across drought stress and non-stress conditions. Agron J 111:175–181. https:\u002F\u002Fdoi.org\u002F10.2134\u002Fagronj2018.06.0381\nSardouie-Nasab S, Mohammadi-Nejad G, Nakhoda B (2014) Field screening of salinity tolerance in Iranian bread wheat lines. Crop Sci 54:1489–1496\nSchneider KA, Rosales-Serna R, Ibarra-Perez F et al (1997) Improving common bean performance under drought stress. Crop Sci 37:43–50\nTalebi R, Fayaz F, Naji AM (2009) Effective selection criteria for assessing drought stress tolerance in durum wheat (Triticum durum Desf.). Gen Appl Plant Physiol 35:64–74\nThornton PK, Ericksen PJ, Herrero M, Challinor AJ (2014) Climate variability and vulnerability to climate change: a review. Glob Chang Biol 20:3313–3328\nTousi Mojarrad M, Ghanadha MR, Khodarahimi M, Shahabi S (2005) Factor analysis for grain yield and other attributes in bread wheat. J Pazhohesh Sazandegi 66:9–16\nWinter SR, Musick JT, Porter KB (1988) Evaluation of screening techniques for breeding drought-resistanct winter wheat. Crop Sci 28:512–516\nYaremko RM, Harari H (1986) Handbook of research and quantitative methods in psychology: for students and professionals. Psychology Press, London\nZare M (2012) Evaluation of drought tolerance indices for the selection of Iranian barley (Hordeum vulgare) cultivars. Afr J Biotechnol 11:15975–15981. https:\u002F\u002Fdoi.org\u002F10.5897\u002FAJB12.2127\nZeng L, Shannon MC, Grieve CM (2002) Evaluation of salt tolerance in rice genotypes by multiple agronomic parameters. Euphytica 127:235–245",{"VOID":1393},"10.1007\u002Fs40415-021-00740-w","2024-05-27T07:48:03.509+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs40415-021-00740-w",[1397,1412,1427,1442],{"id":1398,"sortIndex":21,"researcher":20,"roles":1399,"affiliations":1400,"properties":1409,"displayName":1411,"givenName":20,"familyName":20},"5d278ae6-4409-4e8b-b34b-8a79c50465d6",[121],[1401],{"id":1402,"sortIndex":21,"affiliation":1403,"properties":20},"d27abf0b-8860-4e6d-94a7-1b3ac39ad4f3",{"id":1402,"createTime":20,"updateTime":20,"relativeEntities":1404,"slug":20,"properties":1405,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1408,"statistic":20},[],{"title":1406},{"VI":1407},"Department of Agronomy and Plant Breeding, Sanandaj Branch, Islamic Azad University, Sanandaj, Iran",[],{"title":1410},{"VI":1411},"Ezzat Karami",{"id":1413,"sortIndex":85,"researcher":20,"roles":1414,"affiliations":1415,"properties":1424,"displayName":1426,"givenName":20,"familyName":20},"47c7b50d-2a38-4507-8d36-1346a5abcae3",[121],[1416],{"id":1417,"sortIndex":21,"affiliation":1418,"properties":20},"3ac743cc-1d20-439e-9544-bd1a8fe0e21c",{"id":1417,"createTime":20,"updateTime":20,"relativeEntities":1419,"slug":20,"properties":1420,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1423,"statistic":20},[],{"title":1421},{"VI":1422},"Young Researchers and Elite Club, Ardabil Branch, Islamic Azad University, Ardabil, Iran",[],{"title":1425},{"VI":1426},"Asgar Sartip",{"id":1428,"sortIndex":87,"researcher":20,"roles":1429,"affiliations":1430,"properties":1439,"displayName":1441,"givenName":20,"familyName":20},"c7fe0589-6aea-4bcc-9b0c-28396654e10f",[121],[1431],{"id":1432,"sortIndex":21,"affiliation":1433,"properties":20},"4ebbe930-0bed-47be-8bd2-62e1727f97d0",{"id":1432,"createTime":20,"updateTime":20,"relativeEntities":1434,"slug":20,"properties":1435,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1438,"statistic":20},[],{"title":1436},{"VI":1437},"Young Researchers and Elite Club, Sanandaj Branch, Islamic Azad University, Sanandaj, Iran",[],{"title":1440},{"VI":1441},"Aram Arshadi",{"id":1443,"sortIndex":86,"researcher":20,"roles":1444,"affiliations":1445,"properties":1454,"displayName":1456,"givenName":20,"familyName":20},"36ebe231-164c-4748-b2cb-ccd04f6a43c2",[121],[1446],{"id":1447,"sortIndex":21,"affiliation":1448,"properties":20},"0bd613cc-8d14-4622-b87d-424ecaefe06d",{"id":1447,"createTime":20,"updateTime":20,"relativeEntities":1449,"slug":20,"properties":1450,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1453,"statistic":20},[],{"title":1451},{"VI":1452},"Department of Agriculture, Firoozabad Branch, Islamic Azad University, Firoozabad, Iran",[],{"title":1455},{"VI":1456},"Mahdi Zare",{"url":1395,"publisher":1458,"properties":1500},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1459,"slug":10,"properties":1460,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1464,"manageAffiliations":1469,"indexDatabases":1480,"url":80,"thumbnailPath":20,"statistic":1495,"gsStatistic":20,"type":90,"analyzePriority":20},[],{"issn":1461,"title":1462,"eissn":1463},{"VOID":13},{"EN":15},{"VOID":17},[1465],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":1466,"label":1467,"description":1468,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[1470,1475],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":1471,"slug":20,"properties":1472,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1474,"statistic":20},[],{"title":1473},{"EN":35},[37],{"id":39,"createTime":20,"updateTime":20,"relativeEntities":1476,"slug":20,"properties":1477,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1479,"statistic":20},[],{"title":1478},{"EN":43},[],[1481,1488],{"id":47,"indexDatabase":1482,"url":60,"indexYears":20,"academicFieldIds":1487,"indexDatabaseRanking":20},{"id":49,"createTime":20,"updateTime":20,"relativeEntities":1483,"label":1484,"description":1485,"key":56,"publicationTags":1486,"standard":20},[],{"EN":52,"VI":52},{"EN":54,"VI":55},[58,59],[62],{"id":64,"indexDatabase":1489,"url":75,"indexYears":76,"academicFieldIds":1494,"indexDatabaseRanking":79},{"id":66,"createTime":20,"updateTime":20,"relativeEntities":1490,"label":1491,"description":1492,"key":72,"publicationTags":1493,"standard":20},[],{"EN":69,"VI":69},{"EN":69,"VI":71},[74],[78],{"impactFactor":21,"impactFactorByYear":1496,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":83,"totalPublicationByYear":1497,"totalCitation":21,"totalCitationByYear":1498,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":1499,"hindexLast5Year":21,"hindex":21},{},{"2013":85,"2015":86,"2016":87,"2020":86,"2021":85},{},{},{"pages":1501,"volume":1503},{"VOID":1502},"767-777",{"VOID":375},"2021-08-16",[79,58],{"id":1507,"createTime":1508,"updateTime":1509,"relativeEntities":1510,"slug":1511,"properties":1512,"entityType":112,"verifyStatus":113,"verifyTime":1521,"verifyNote":115,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1522,"fullTextUrl":20,"authors":1523,"publicationType":160,"publisherRelationship":1702,"citationCount":21,"citationInfo":1749,"publishDate":1751,"publishYear":760,"citationAnalyzeStatus":19,"lastCitationAnalyze":1752,"indexDatabases":1753,"openAccess":20,"references":1754,"isForceReanalyzing":214},"3e1876b0-86f9-44a6-801b-b9aaf8806ab8","2024-01-04T03:48:21.906+00:00","2026-05-23T01:39:37.876+00:00",[],"Bixa-orellana-L-from-northern-Brazil-morphological-analysis-phenolic-content-antioxidant-and-antibacterial-activities",{"abstract":1513,"title":1515,"gsPaper":1517,"doi":1519},{"EN":1514},"Bixa orellana L. (Bixaceae), also known as “urucum” (Brazil), “annatto” (USA), or “axiote” (Mexico), contains seeds rich in carotenoids, mainly bixin. This study showed the morphological analysis, total phenolic content (Folin-Ciocalteu assay), and in vitro antioxidant activity (DPPH and phosphomolybdenum assays) and antimicrobial activity (MIC) from seeds of three annatto phenotypes (red, yellow, and green), using solvents of different polarity (hexane, ethyl acetate, methanol, and hydroethanolic). All phenotypes showed oval fruits, and the red phenotype presented a different petiole color from the others. The total phenolic content was remarkably high in the methanolic fraction of green fruit (30.10 ± 0.05 mg EAG g−1 extrato, p \u003C 00.5). DPPH method exhibited a more significant antioxidant capacity for the methanolic fraction of green fruit (IC50 97.81 ± 1.86 µg mL−1, EC50 2.44 ± 0.04, and ARP 40.90 ± 0.77) when compared to others. The total antioxidant activity (phosphomolybdenum assays) showed the highest percentage inhibition rate for the hexane fraction of green fruit (68.04 ± 0.09) and the methanolic fraction of red fruit (67.98 ± 0.33), without a significant difference between both (p > 0.05). The three hydroethanolic seed extracts from three phenotypes showed high antibacterial properties against Gram-positive Staphylococcus aureus Newman, with MIC values ranging from 4.9 to 6.6 µg mL−1. The results on phenolic content and free radical scavenging ability of obtained fractions from the seeds of B. orellana from northern Brazil agree with data from other studies, moreover also showed the high antimicrobial activity of hydroethanolic extracts from the seeds of this species against S. aureus.",{"EN":1516},"Bixa orellana L. from northern Brazil: morphological analysis, phenolic content, antioxidant and antibacterial activities",{"VOID":1518},"13265234906855343573",{"VOID":1520},"10.1007\u002Fs40415-022-00832-1","2024-04-25T08:07:36.893+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs40415-022-00832-1",[1524,1547,1568,1583,1606,1625,1644,1657,1672,1688],{"id":1525,"sortIndex":21,"researcher":20,"roles":1526,"affiliations":1527,"properties":1544,"displayName":1546,"givenName":20,"familyName":20},"c4c7151d-46dd-4031-b3fb-4fc3f2dd1b6f",[121],[1528,1536],{"id":1529,"sortIndex":21,"affiliation":1530,"properties":20},"da27d6aa-3df7-41a7-bdb8-902e369b7646",{"id":1529,"createTime":20,"updateTime":20,"relativeEntities":1531,"slug":20,"properties":1532,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1535,"statistic":20},[],{"title":1533},{"VI":1534},"Laboratório de Biocatálise e Síntese Orgânica Aplicada, Departamento de Ciências Exatas e Tecnológicas, Universidade Federal do Amapá, Macapá, Brazil",[],{"id":1537,"sortIndex":85,"affiliation":1538,"properties":20},"29635078-4aa6-49d4-a874-aec78ba2468d",{"id":1537,"createTime":20,"updateTime":20,"relativeEntities":1539,"slug":20,"properties":1540,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1543,"statistic":20},[],{"title":1541},{"VI":1542},"Laboratório de Pesquisa em Fármacos, Departamento de Ciências Biológicas e da Saúde, Universidade Federal do Amapá, Macapá, Brazil",[],{"title":1545},{"VI":1546},"Sônia do Socorro do C. 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