StMAPKK5 responds to heat stress by regulating potato growth, photosynthesis, and antioxidant defenses

Xi Zhu, Wei Li, Ning Zhang, Hui Jin, Huimin Duan, Zhuo Chen, Shu Chen, Qihua Wang, Jinghua Tang, Jiannan Zhou, Yu Zhang, H. Si
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Abstract

As a conserved signaling pathway, mitogen-activated protein kinase (MAPK) cascade regulates cellular signaling in response to abiotic stress. High temperature may contribute to a significant decrease in economic yield. However, research into the expression patterns of StMAPKK family genes under high temperature is limited and lacks experimental validation regarding their role in supporting potato plant growth.To trigger heat stress responses, potato plants were grown at 35°C. qRT-PCR was conducted to analyze the expression pattern of StMAPKK family genes in potato plants. Plant with StMAPKK5 loss-of-function and gain-of-function were developed. Potato growth and morphological features were assessed through measures of plant height, dry weight, and fresh weight. The antioxidant ability of StMAPKK5 was indicated by antioxidant enzyme activity and H2O2 content. Cell membrane integrity and permeability were suggested by relative electrical conductivity (REC), and contents of MDA and proline. Photosynthetic capacity was next determined. Further, mRNA expression of heat stress-responsive genes and antioxidant enzyme genes was examined.In reaction to heat stress, the expression profiles of StMAPKK family genes were changed. The StMAPKK5 protein is located to the nucleus, cytoplasm and cytomembrane, playing a role in controlling the height and weight of potato plants under heat stress conditions. StMAPKK5 over-expression promoted photosynthesis and maintained cell membrane integrity, while inhibited transpiration and stomatal conductance under heat stress. Overexpression of StMAPKK5 triggered biochemical defenses in potato plant against heat stress, modulating the levels of H2O2, MDA and proline, as well as the antioxidant activities of CAT, SOD and POD. Overexpression of StMAPKK5 elicited genetic responses in potato plants to heat stress, affecting heat stress-responsive genes and genes encoding antioxidant enzymes.StMAPKK5 can improve the resilience of potato plants to heat stress-induced damage, offering a promising approach for engineering potatoes with enhanced adaptability to challenging heat stress conditions.
StMAPKK5 通过调节马铃薯的生长、光合作用和抗氧化防御能力来应对热胁迫
作为一种保守的信号通路,丝裂原活化蛋白激酶(MAPK)级联在非生物胁迫下调节细胞信号。高温可能会导致经济产量显著下降。为了引发热胁迫反应,马铃薯植株在35°C下生长,采用qRT-PCR方法分析马铃薯植株中StMAPKK家族基因的表达模式。培养出了StMAPKK5功能缺失和功能增益的植株。通过测量植株高度、干重和鲜重来评估马铃薯的生长和形态特征。StMAPKK5 的抗氧化能力通过抗氧化酶活性和 H2O2 含量来体现。通过相对电导率(REC)以及 MDA 和脯氨酸的含量来说明细胞膜的完整性和渗透性。随后测定了光合能力。此外,还检测了热胁迫反应基因和抗氧化酶基因的 mRNA 表达。StMAPKK5蛋白位于细胞核、细胞质和细胞膜中,在热胁迫条件下控制马铃薯植株的高度和重量。在热胁迫条件下,StMAPKK5的过表达促进了光合作用,维持了细胞膜的完整性,同时抑制了蒸腾作用和气孔导度。过表达 StMAPKK5 能引发马铃薯植株对热胁迫的生化防御,调节 H2O2、MDA 和脯氨酸的水平以及 CAT、SOD 和 POD 的抗氧化活性。StMAPKK5能提高马铃薯植株对热胁迫诱导的损伤的恢复能力,为提高马铃薯对具有挑战性的热胁迫条件的适应性提供了一种很有前景的工程方法。
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