Comparative transcriptome profiling of Arabidopsis Col-0 in responses to heat stress under different light conditions

Plant Growth Regulation - Tập 79 Số 2 - Trang 209-218 - 2016
Junyi Song1, Qijun Liu1, Biru Hu1, Wenjian Wu1
1College of Science, National University of Defense Technology, Changsha, Hunan, China

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Tài liệu tham khảo

Chen M, Chory J (2011) Phytochrome signaling mechanisms and the control of plant development. Trends Cell Biol 21:664–671

Dodd AN, Salathia N, Hall A, Kévei E, Tóth R, Nagy F, Hibberd JM, Millar AJ, Webb AA (2005) Plant circadian clocks increase photosynthesis, growth, survival, and competitive advantage. Science 309:630–633

Franklin KA (2009) Light and temperature signal crosstalk in plant development. Curr Opin Plant Biol 12:63–68. doi: 10.1016/j.pbi.2008.09.007

Franklin KA, Quail PH (2010) Phytochrome functions in Arabidopsis development. J Exp Bot 61:11–24

Gilmartin PM, Sarokin L, Memelink J, Chua N-H (1990) Molecular light switches for plant genes. Plant Cell 2:369

Hanssen IM, van Esse HP, Ballester AR, Hogewoning SW, Parra NO, Paeleman A, Lievens B, Bovy AG, Thomma BP (2011) Differential tomato transcriptomic responses induced by pepino mosaic virus isolates with differential aggressiveness. Plant Physiol 156:301–318. doi: 10.1104/pp.111.173906

Hasegawa T, Yamada K, Shigemori H, Goto N, Miyamoto K, Ueda J, Hasegawa K (2004) Isolation and identification of blue light-induced growth inhibitor from light-grown Arabidopsis shoots. Plant Growth Regul 44:81–86

Heggie L, Halliday KJ (2005) The highs and lows of plant life: temperature and light interactions in development. Int J Dev Biol 49:675

Higuchi Y, Sumitomo K, Oda A, Shimizu H, Hisamatsu T (2012) Day light quality affects the night-break response in the short-day plant chrysanthemum, suggesting differential phytochrome-mediated regulation of flowering. J Plant Physiol 169:1789–1796. doi: 10.1016/j.jplph.2012.07.003

Hofmann N (2014) Cryptochromes and seed dormancy: the molecular mechanism of blue light inhibition of grain germination. Plant Cell 26:846. doi: 10.1105/tpc.114.124727

Hu XW, Huang XH, Wang YR (2012) Hormonal and temperature regulation of seed dormancy and germination in Leymus chinensis. Plant Growth Regul 67:199–207. doi: 10.1007/s10725-012-9677-3

Jiao Y, Lau OS, Deng XW (2007) Light-regulated transcriptional networks in higher plants. Nat Rev Genet 8:217–230

Joseph MP, Papdi C, Kozma-Bognár L, Nagy I, López-Carbonell M, Rigó G, Koncz C, Szabados L (2014) The Arabidopsis ZINC FINGER PROTEIN3 interferes with abscisic acid and light signaling in seed germination and plant development. Plant Physiol 165:1203–1220

Karayekov E, Sellaro R, Legris M, Yanovsky MJ, Casal JJ (2013a) Heat shock-induced fluctuations in clock and light signaling enhance phytochrome B-mediated Arabidopsis deetiolation. Plant Cell 25:2892–2906. doi: 10.1105/tpc.113.114306

Karayekov E, Sellaro R, Legris M, Yanovsky MJ, Casal JJ (2013b) Heat shock-induced fluctuations in clock and light signaling enhance phytochrome B-mediated Arabidopsis deetiolation. Plant Cell Online 25:2892–2906

Kurtyka R, Małkowski E, Burdach Z, Kita A, Karcz W (2012) Interactive effects of temperature and heavy metals (Cd, Pb) on the elongation growth in maize coleoptiles. C R Biol 335:292–299. doi: 10.1016/j.crvi.2012.03.012

Larkindale J (2005) Heat stress phenotypes of Arabidopsis mutants implicate multiple signaling pathways in the acquisition of thermotolerance. Plant Physiol 138:882–897. doi: 10.1104/pp.105.062257

Laxmi A, Pan J, Morsy M, Chen R (2008) Light plays an essential role in intracellular distribution of auxin efflux carrier PIN2 in Arabidopsis thaliana. PLoS ONE. doi: 10.1371/journal.pone.0001510.g001

Li F, Zhang X, Hu R, Wu F, Ma J, Meng Y, Fu Y (2013) Identification and molecular characterization of FKF1 and GI homologous genes in soybean. PLoS ONE 8:e79036

Li J-Y, Deng X-G, Chen L-J, Fu F-Q, Pu X-J, Xi D-H, Lin H-H (2015) Involvement of PHYB in resistance to Cucumber mosaic virus in Nicotiana tabacum. Plant Growth Regul 77(1):33–42

Liu X, Qin T, Ma Q, Sun J, Liu Z, Yuan M, Mao T (2013) Light-regulated hypocotyl elongation involves proteasome-dependent degradation of the microtubule regulatory protein WDL3 in Arabidopsis. Plant Cell 25:1740–1755. doi: 10.1105/tpc.113.112789

Loveys B, Scheurwater I, Pons T, Fitter A, Atkin O (2002) Growth temperature influences the underlying components of relative growth rate: an investigation using inherently fast-and slow-growing plant species. Plant, Cell Environ 25:975–988

McWatters HG, Devlin PF (2011) Timing in plants–a rhythmic arrangement. FEBS Lett 585:1474–1484

Mittler R, Finka A, Goloubinoff P (2012) How do plants feel the heat? Trends Biochem Sci 37:118–125

Nemhauser JL, Mockler TC, Chory J (2004) Interdependency of brassinosteroid and auxin signaling in Arabidopsis. PLoS Biol 2:e258. doi: 10.1371/journal.pbio.0020258

Oh S, Warnasooriya SN, Montgomery BL (2013) Downstream effectors of light- and phytochrome-dependent regulation of hypocotyl elongation in Arabidopsis thaliana. Plant Mol Biol 81:627–640. doi: 10.1007/s11103-013-0029-0

Penfield S (2008) Temperature perception and signal transduction in plants. New Phytol 179:615–628

Quail PH (2002) Photosensory perception and signalling in plant cells: new paradigms? Curr Opin Cell Biol 14:180–188

Rangani G, Underwood JL, Srivastava V (2015) Chromatin analysis of an Arabidopsis phytochrome A allele reveals the correlation of transcriptional repression with recalcitrance to histone acetylation. Plant Growth Regul 75:179–186

Rasmussen S, Barah P, Suarez-Rodriguez MC, Bressendorff S, Friis P, Costantino P, Bones AM, Nielsen HB, Mundy J (2013) Transcriptome responses to combinations of stresses in Arabidopsis. Plant Physiol 161:1783–1794

Sellaro R, Yanovsky MJ, Casal JJ (2011) Repression of shade-avoidance reactions by sunfleck induction of HY5 expression in Arabidopsis. Plant J 68:919–928. doi: 10.1111/j.1365-313X.2011.04745.x

Song Y, Gao Z, Luan W (2012) Interaction between temperature and photoperiod in regulation of flowering time in rice. Sci China Life Sci 55:241–249

Song YH, Ito S, Imaizumi T (2013) Flowering time regulation: photoperiod- and temperature-sensing in leaves. Trends Plant Sci 18:575–583. doi: 10.1016/j.tplants.2013.05.003

Staiger D, Allenbach L, Salathia N, Fiechter V, Davis SJ, Millar AJ, Chory J, Fankhauser C (2003) The Arabidopsis SRR1 gene mediates phyB signaling and is required for normal circadian clock function. Genes Dev 17:256–268

Su X, Wu S, Yang L, Xue R, Li H, Wang Y, Zhao H (2014) Exogenous progesterone alleviates heat and high light stress-induced inactivation of photosystem II in wheat by enhancing antioxidant defense and D1 protein stability. Plant Growth Regul 74:311–318. doi: 10.1007/s10725-014-9920-1

Swindell WR, Huebner M, Weber AP (2007) Transcriptional profiling of Arabidopsis heat shock proteins and transcription factors reveals extensive overlap between heat and non-heat stress response pathways. BMC Genom 8:125. doi: 10.1186/1471-2164-8-125

Thines BC, Youn Y, Duarte MI, Harmon FG (2014) The time of day effects of warm temperature on flowering time involve PIF4 and PIF5. J Exp Bot 65:1141–1151

van Zanten M, Voesenek LA, Peeters AJ, Millenaar FF (2009) Hormone-and light-mediated regulation of heat-induced differential petiole growth in Arabidopsis. Plant Physiol 151:1446–1458

van Zanten M, Ritsema T, Polko JK, Leon-Reyes A, Voesenek LA, Millenaar FF, Pieterse CM, Peeters AJ (2012) Modulation of ethylene-and heat-controlled hyponastic leaf movement in Arabidopsis thaliana by the plant defence hormones jasmonate and salicylate. Planta 235:677–685

Vinterhalter D, Vinterhalter B (2014) Phototropic responses of potato under conditions of continuous light and subsequent darkness. Plant Growth Regul 75:725–732. doi: 10.1007/s10725-014-9974-0

Wang L, Fujiwara S, Somers DE (2010) PRR5 regulates phosphorylation, nuclear import and subnuclear localization of TOC1 in the Arabidopsis circadian clock. EMBO J 29:1903–1915

Xin C, Wang X, Cai J, Zhou Q, Liu F, Dai T, Cao W, Jiang D (2015) Changes of transcriptome and proteome are associated with the enhanced post-anthesis high temperature tolerance induced by pre-anthesis heat priming in wheat. Plant Growth Regul. 1–11. doi: 10.1007/s10725-015-0119-x

Yang Y-X, Wang M-M, Ren Y, Onac E, Zhou G, Peng S, Xia X-J, Shi K, Zhou Y-H, Yu J-Q (2015) Light-induced systemic resistance in tomato plants against root-knot nematode Meloidogyne incognita. Plant Growth Regul 76:167–175

Zeng J, He X, Wu D, Zhu B, Cai S, Nadira UA, Jabeen Z, Zhang G (2014) Comparative transcriptome profiling of two Tibetan wild barley genotypes in responses to low potassium. PLoS ONE 9:e100567. doi: 10.1371/journal.pone.0100567

Zhang H, He H, Wang X, Wang X, Yang X, Li L, Deng XW (2011) Genome-wide mapping of the HY5-mediated genenetworks in Arabidopsis that involve both transcriptional and post-transcriptional regulation. Plant J 65:346–358. doi: 10.1111/j.1365-313X.2010.04426.x

Zinn KE, Tunc-Ozdemir M, Harper JF (2010) Temperature stress and plant sexual reproduction: uncovering the weakest links. J Exp Bot 61(7):1959–1968. doi: 10.1093/jxb/erq053