水稻 NADP 依赖性苹果酸脱氢酶基因 OsMDH8.2 与耐热性有关

IF 6.3 3区 综合性期刊 Q1 Multidisciplinary
Min Jiang , Zhang Chen , Ebenezer Ottopah Ansah , Wangmenghan Peng , Lifeng Huang , Fei Xiong , Peng Li , Gynheung An , Wenfei Wang , Yunfei Wu
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引用次数: 0

摘要

趋同和发散进化使植物对高温具有更强的适应性,从而避免了作物生物量产量的减少。nadp依赖性苹果酸脱氢酶(NADP-MDH)是一种氧化还原调节酶,催化草酰乙酸可逆还原为苹果酸。水稻唯一的NADP-MDH基因OsMDH8.2在光合器官的叶肉细胞和各种汇组织中表达。然而,NADP-MDH是否在水稻热应激中起作用尚不清楚。我们在热胁迫处理(40°C)下鉴定了转基因OsMDH8.2过表达系。转基因品系对热胁迫的适应性优于野生型;通过关闭气孔能更好地维持生物量和较低的地表温度,对光合活性的影响较小。OsMDH8.2通过降低旗叶过氧化氢含量,影响旗叶过氧化物酶活性。OsMDH8.2敲除系的分析结果证实OsMDH8.2有助于耐热性。转录组学和代谢组学分析表明,OsMDH8.2通过降低三羧酸循环活性,诱导乙醛酸循环产生更多能量,并通过调节氨基酸代谢来挽救热应激损伤,在能量稳态中发挥关键作用。综上所述,OsMDH8.2提高了乙醛酸循环效率,减少了通过气孔关闭释放到环境中的二氧化碳,为通过基因工程提高植物耐热性提供了一个极好的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rice NADP-dependent malate dehydrogenase gene OsMDH8.2 is involved in heat tolerance

Rice NADP-dependent malate dehydrogenase gene OsMDH8.2 is involved in heat tolerance
Convergent and divergent evolution lead to plants with stronger adaptability to higher temperatures, thus averting crop biomass yield reductions. NADP-dependent malate dehydrogenase (NADP-MDH) is a redox-regulated enzyme that catalyzes the reversible reduction of oxaloacetate to malate. The sole NADP-MDH gene in rice, OsMDH8.2, is expressed in mesophyll cells of photosynthetic organs and various sink tissues. However, it is unknown whether NADP-MDH functions in heat stress in rice. We characterized a transgenic OsMDH8.2 overexpression line under thermal stress treatment (40 °C). The transgenic line exhibited better adaptability to heat stress than the wild type; it better maintained biomass and a lower surface temperature through stomatal closure, and photosynthetic activity was less affected. OsMDH8.2 was found to affect peroxidase activity by reducing the hydrogen peroxide content in flag leaves after 3 and 5 days of thermal stress. Analysis results of OsMDH8.2 knockout lines confirmed that OsMDH8.2 contributes to heat tolerance. Transcriptome and metabolome analyses demonstrated that OsMDH8.2 plays a key role in energy homeostasis by reducing tricarboxylic acid cycle activity while inducing the glyoxylate cycle to produce more energy, and by regulating amino acid metabolism to rescue heat-stress damage. Collectively, these results suggest that OsMDH8.2 enhances glyoxylate cycle efficiency, resulting in lower carbon dioxide release into the environment through stomatal closure, providing an excellent strategy for improving plant heat tolerance through genetic engineering.
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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