参考文献/References:
[1]戴红燕,华劲松,张荣萍,等.低温胁迫对高原粳稻幼苗生长的影响[J].江苏农业科学,2014,42(11):85-88.
[2]李孝凯,沙伟,国春晖,等.低温胁迫对毛尖紫萼藓、东亚砂藓生理生化及光合特性的影响[J].江苏农业科学,2014,42(10):355-359.
[3]THEOCHARIS A, CLEMENT C, BARKA E A. Physiological and molecular changes in plants grown at low temperatures[J]. Planta, 2012, 235(6):1091-1105.
[4]SANGWAN V, ORVAR B L,BEYERLY J, et al. Opposite changes in membrane fluidity mimic cold and heat stress activation of distinct plant MAP kinase pathways[J]. Plant J, 2002,31(5):629-638.
[5]CATALA R, SANTOS E, ALONSO J M, et al. Mutations in the Ca2+/H+transporter CAX1increase CBF/DREB1 expression and the cold-acclimation response in Arabidopsis[J]. Plant Cell, 2003,15(12):2940-2951.
[6]CHINNUSAMY V, ZHU J K,ZHU J H. Gene regulation during cold stress acclimation in plants[J]. Physiologia Plantarum, 2006,126(1):52-61.
[7]CHINNUSAMY V, OHTA M, KANRAR S, et al. ICE1: a regulator of cold-induced transcriptome and freezing tolerance in Arabidopsis[J]. Genes Dev, 2003,17 (8) : 1043-1054.
[8]ZHU J, DONG C H, ZHU J K. Interplay between cold-responsive gene regulation, metabolism and RNA processing during plant cold acclimation[J]. Curr Opin Plant Biol, 2007,10(3) :290-295.
[9]ZHU J, SHI H, LEE B H, et al . An Arabidopsis homeodomain transcription factor gene, HOS9, mediates cold tolerance through a CBF2-independent pathway[J]. Proc Natl Acad Sci USA, 2004,101(26):9873-9878.
[10]DONG C H, HU X, TANG W, et al . A putative Arabidopsis nucleoporin, AtNUP160, is critical for RNA export and required for plant tolerance to cold stress[J]. Mol Cell Biol, 2006,26(24) :9533-9543.
[11]LIU Y, JIANG H, ZHAO Z, et al. Abscisic acid is involved in brassinosteroids-induced chilling tolerance in the suspension cultured cells from Chorispora bungeana[J]. J Plant Physiol, 2011,168(9):853-862.
[12]KNIGHT H, ZARKA D G, OKAMOTO H, et al. Abscisic acid induces CBF gene transcription and subsequent induction of cold-regulated genes via the CRT promoter element[J]. Plant Physiol, 2004,135(3):1710-1717.
[13]ANURADHA R, RAO S S R. Effects of brassinosteroids on salinity stress induced inhibition of seed germination and seedling growth of rice (Oryza sativa L.) [J]. Plant Growth Regul, 2001,33(2): 151-153.
[14]KIM H B, KWON M, RYU H, et al. The regulation of DWARF4 expression is likely a critical mechanism in maintaining the homeostasis of bioactive brassinosteroids in Arabidopsis[J]. Plant Physiol,2006,140(2):548-557.
[15]CHUNG Y, MAHARJAN P M, Lee O, et al. Auxin stimulates DWARF4 expression and brassinosteroid biosynthesis in Arabidopsis[J]. Plant J, 2011,66(4):564-578.
[16]MAHARJAN P M, CHOE S. High temperature stimulates DWARF4 (DWF4) expression to increase hypocotyl elongation in Arabidopsis[J]. J Plant Biol, 2011,54(6):425-429.
[17]CHOE S, FUJIOKA S, NOGUCHI T, et al. Overexpression of DWARF4 in the brassinosteroid biosynthetic pathway results in increased vegetative growth and seed yield in Arabidopsis[J]. Plant J, 2001,26(6):573-582.
[18]RISTIC Z, ASHWORTH E N. Ultrastructural evidence thatintracellular ice formation and possibly cavitation are the sources of freezing injury in supercooling wood tissue of Cornus florida L.[J]. Plant Physiol, 1993,103(3):753-761.
[19]SHI H T, YE T T, CHEN F F, et al. Manipulation of arginase expression modulate abiotic stress tolerance in Arabidopsis: effent on arginine metabolism and ROS accumulation[J]. J Exp Bot, 2013, 64(5):1367-1397.
[20]LICHTENTHALER H K. Chlorophyll and carotenoids: pigments of photosynthetic biomembranes[J]. Methods Enzymol, 1987,148:350-382.
[21]ISHITANI M, XIONG L, LEE H, et al. HOS1, a genetic locus involved in cold-responsive gene expression in Arabidopsis[J]. Plant Cell,1998,10(7):1151-1161.
[22]HAN Y, ZHANG J, CHEN X, et al. Carbon monoxide alleviates cadmium-induced oxidative damage by modulating glutathione metabolism in the roots of Medicago sativa[J].New Phytol, 2008, 177(1):155-166.
[23]XIE Y, LING T, HAN Y, et al. Carbon monoxide enhances salt tolerance by nitric oxide-mediated maintenance of ion homeostasis and up-regulation of antioxidant defence in wheat seedling roots[J]. Plant Cell Environ, 2008,31(12):1864-1881.
[24]LV W T, LIN B, ZHANG M, et al. Proline accumulation is inhibitory to Arabidopsis seedlings during heat stress[J]. Plant Physiol,2011,156(8):1921-1933.
[25]STRIZHOV N, BRAHM E, KRSZ L, et al. Differential expression of two P5CS genes controlling proline accumulation during salt-stress requires ABA and is regulated by ABA1, ABI1 and AXR2 in Arabidopsis[J]. The Plant Journal, 1997,12(3) :557-569.
[26]DHAUBHADEL S, CHAUDHARY S, DOBINSON K F, et al. Treatment with 24-epibrassinolide, a brassinosteroid, increases the basic thermotolerance of Brassica napus and tomato seedlings[J]. Plant Mol Biol,1999,40(2):333-342.
[27]KAGALE S, DIVI U K, KROCHKO J E, et al. Brassinosteroid confers tolerance in Arabidopsis thaliana and Brassica napus to a range of abiotic stresses[J]. Planta,2007,225(2):353-364.
[28]ASADA K. Production and scavenging of reactive oxygen species in chloroplasts and their functions[J]. Plant Physiol,2006,141(2): 391-396.
[29]STOCKINGER E J, GILMOUR S J, THOMASHOW M F. Arabidopsis thaliana CBF1 encodes an AP2 domain-containing transcriptional activator that binds to the C-repeat/DRE, a cis-acting DNA regulatory element that stimulates transcription in response to low temperature and water deficit[J]. Proc Natl Acad Sci USA, 1997,94(3): 1035-1040.〖ZK)〗〖FL)〗
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