Soybean gene GmMLP34 regulates Arabidopsis negative response to high temperature stress

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Zhi Xianguan, Lu Yun, Liao Wei, Chen Linying, Chen Haoran, Hu Xiaoyu, Wang Heng, Wei Ying, Wang Xiaobo, Li Jiajia
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Abstract

The functions of major latex proteins (MLPs) in plant defense and stress responses have been widely documented; however, their roles in HT stress response in soybeans have not been elucidated. This study investigated the role of GmMLP34, a member of the major latex protein (MLP) family, in the response of soybeans to HT stress. Transcriptome analysis of HT-resistant (JD21) and HT-sensitive (HD14) soybean leaves under HT stress (43.40 ± 1.70 °C) and field conditions revealed differential expression of GmMLP34. Further examination across different HT-resistant varieties showed that GmMLP34 was down-regulated in the leaves of 6 HT-resistant varieties (85.7 %) and up-regulated in the leaves of 6 HT-sensitive varieties (85.7 %) under the HT treatment (45 °C for 3 h). The results of this study indicate that ectopic expression of the GmMLP34 gene in Arabidopsis led to a significant decrease in the survival rate of seedling when compared to the wild type (WT) under HT stress conditions of 37/28 °C (day/night) for 5 d, Moreover, the results indicated a significant decrease in primary root length and lateral root number under 45 °C/3 h HT stress followed by 12 h room temperature recovery. Additionally, the levels of abscisic acid (ABA), and flavonoids, and the activity of the peroxidase (POD) enzyme in the antioxidant system was decreased, while the activity of the superoxide dismutase (SOD) enzyme increased in GmMLP34-overexpressing transgenic Arabidopsis thaliana. The expression levels of the HT-response genes AtCHS1 and AtCHI2-A, were significantly down-regulated, whereas that of AtGBP1 was significantly up-regulated. These results suggest that GmMLP34 negatively regulates the response of Arabidopsis thaliana to HT stress by modulating flavonoid synthesis, hormone synthesis, and the antioxidant enzyme system. These findings provide theoretical information for the genetic improvement of HT tolerance in soybean and contribute to the understanding of the molecular mechanisms underlying plant responses to abiotic stress.

Abstract Image

大豆基因 GmMLP34 调节拟南芥对高温胁迫的负反馈。
主要乳胶蛋白(MLPs)在植物防御和胁迫响应中的功能已被广泛记载,但它们在大豆 HT 胁迫响应中的作用尚未阐明。本研究调查了主要乳胶蛋白(MLP)家族成员 GmMLP34 在大豆对 HT 胁迫响应中的作用。在高温胁迫(43.40 ± 1.70 °C)和田间条件下,对抗高温胁迫(JD21)和对高温胁迫敏感(HD14)的大豆叶片进行转录组分析,发现 GmMLP34 的表达存在差异。对不同抗高温胁迫品种的进一步研究表明,在高温胁迫处理(45 °C,3 h)下,6 个抗高温胁迫品种叶片中的 GmMLP34 下调(85.7%),6 个对高温胁迫敏感品种叶片中的 GmMLP34 上调(85.7%)。该研究结果表明,在 37/28 ℃(白天/黑夜)的高温胁迫条件下,拟南芥异位表达 GmMLP34 基因后,与野生型相比,幼苗存活率显著降低,而且在 45 ℃/3 h 高温胁迫后室温恢复 12 h 的条件下,主根长度和侧根数量显著减少。此外,在 GmMLP34 表达的转基因拟南芥中,脱落酸(ABA)和类黄酮的含量以及抗氧化系统中过氧化物酶(POD)的活性都有所下降,而超氧化物歧化酶(SOD)的活性则有所上升。HT 响应基因 AtCHS1 和 AtCHI2-A 的表达水平显著下调,而 AtGBP1 的表达水平显著上调。这些结果表明,GmMLP34通过调节黄酮类化合物合成、激素合成和抗氧化酶系统,负向调节拟南芥对HT胁迫的响应。这些发现为遗传改良大豆对 HT 的耐受性提供了理论信息,并有助于理解植物对非生物胁迫响应的分子机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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