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Characterization and Primary Functional Analysis of a Bamboo ZEP Gene from Phyllostachys edulis

机译:从脑氏植物的竹子ZEP基因的表征与主要功能分析

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Zeaxanthin epoxidase (ZEP) plays important roles in plant response to various environmental stresses by involving in abscisic acid (ABA) biosynthesis and xanthophyll cycle. A full-length cDNA of PeZEP was isolated from moso bamboo (Phyllostachys edulis), which comprised of a 138-bp 5'-untranslated region (UTR), a 381-bp 3'-UTR, and a 2013-bp open reading frame (ORF) encoding a putative protein of 670 amino acids. PeZEP was mainly expressed in leaf blades and leaf sheaths, and less in roots and culms. The transcript level of PeZEP in bamboo leaf was elevated with the increasing light intensity. PeZEP was significantly upregulated in response to high light (HL: 1200 mu mol.m(-2).s(-1)) and reached to a higher level after 1 h treatment, and kept higher levels in the following hours. Besides, PeZEP was upregulated under high temperature (42 degrees C), and downregulated under low temperature (4 degrees C) and exogenous ABA treatment. The expression vector of PeZEP driven by CaMV 35S was constructed and transformed into Arabidopsis thaliana. The transgenic plants overexpressing PeZEP were generated and subjected to drought stress for morphological and physiological assays. Compared with Col-0, the transgenic plants demonstrated enhanced tolerance to drought stress, which appeared later wilting and higher survival rate. Moreover, higher value of F-v/F-m, higher activities of superoxide dismutase, peroxidase, and catalase, and lower concentration of malondialdehyde were also observed in transgenic plants. Transcript levels of AtP5CS and AtRD29b related to drought stress were enhanced in transgenic plants. These results indicated that PeZEP might play an important function in response to drought stress in bamboo.
机译:玉米黄质环氧化酶(ZEP)通过参与脱落酸(ABA)生物合成和叶黄素循环,在植物对各种环境胁迫的反应中发挥重要作用。从毛竹(Phyllostachys edulis)中分离到PeZEP的全长cDNA,该cDNA由138 bp的5'-非翻译区(UTR)、381 bp的3'-UTR和2013 bp的开放阅读框(ORF)组成,编码670个氨基酸的蛋白质。PeZEP主要在叶片和叶鞘中表达,在根和秆中表达较少。竹叶中PeZEP的转录水平随着光照强度的增加而升高。PeZEP在强光下显著上调(HL:1200μmol.m(-2)。s(-1))在处理1h后达到较高水平,并在接下来的几个小时内保持较高水平。此外,PeZEP在高温(42℃)下上调,在低温(4℃)和外源ABA处理下下调。构建了camv35s驱动的PeZEP表达载体,并将其转化到拟南芥中。生成过表达PeZEP的转基因植株,并对其进行干旱胁迫,以进行形态学和生理学检测。与Col-0相比,转基因植株表现出更强的耐旱性,表现出更晚的萎蔫和更高的存活率。此外,转基因植株的F-v/F-m值较高,超氧化物歧化酶、过氧化物酶和过氧化氢酶活性较高,丙二醛浓度较低。在转基因植株中,与干旱胁迫相关的AtP5CS和AtRD29b的转录水平提高。这些结果表明,PeZEP可能在竹子对干旱胁迫的响应中发挥重要作用。

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