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过量表达 FERONIA 受体激酶 MdMRLK2 调控木质素积累并提高苹果在长期水分亏缺下的水分利用效率。

Overexpression of FERONIA receptor kinase MdMRLK2 regulates lignin accumulation and enhances water use efficiency in apple under long-term water deficit condition.

机构信息

State Key Laboratory of Crop Stress Biology for Arid Areas/Shaanxi Key Laboratory of Apple, College of Horticulture, Northwest A&F University, Yangling, Shaanxi, 712100, China.

Department of Horticulture, College of Agriculture, Shihezi University, Shihezi, Xinjiang, 832003, China.

出版信息

Plant J. 2024 Sep;119(6):2638-2653. doi: 10.1111/tpj.16938. Epub 2024 Jul 23.

Abstract

Water use efficiency (WUE) is crucial for apple tree fitness and survival, especially in response to climatic changes. The receptor-like kinase FERONIA is reportedly an essential regulator of plant stress responses, but its role in regulating WUE under water deficit conditions is unclear. Here, we found that overexpressing the apple FERONIA receptor kinase gene, MdMRLK2, enhanced apple WUE under long-term water deficit conditions. Under drought treatment, 35S::MdMRLK2 apple plants exhibited higher photosynthetic capacity and antioxidant enzyme activities than wild-type (WT) plants. 35S::MdMRLK2 apple plants also showed increased biomass accumulation, root activity, and water potential compared to WT plants. Moreover, MdMRLK2 physically interacts with and phosphorylates cinnamoyl-CoA reductase 1, MdCCR1, an enzyme essential for lignin synthesis, at position Ser. This interaction likely contributed to increased vessel density, vascular cylinder area, and lignin content in 35S::MdMRLK2 apple plants under drought conditions. Therefore, our findings reveal a novel function of MdMRLK2 in regulating apple WUE under water deficit conditions.

摘要

水分利用效率(WUE)对苹果树的适应性和生存至关重要,特别是在应对气候变化方面。据报道,受体样激酶 FERONIA 是植物应激反应的重要调节因子,但它在调节水分亏缺条件下的 WUE 中的作用尚不清楚。在这里,我们发现过表达苹果 FERONIA 受体激酶基因 MdMRLK2 可增强苹果在长期水分亏缺条件下的 WUE。在干旱处理下,35S::MdMRLK2 苹果植株比野生型(WT)植株表现出更高的光合能力和抗氧化酶活性。35S::MdMRLK2 苹果植株的生物量积累、根系活力和水势也高于 WT 植株。此外,MdMRLK2 与肉桂酰辅酶 A 还原酶 1(MdCCR1)发生物理相互作用,并在丝氨酸残基上对其进行磷酸化,而 MdCCR1 是木质素合成所必需的酶。这种相互作用可能导致 35S::MdMRLK2 苹果植株在干旱条件下的脉管密度、维管束面积和木质素含量增加。因此,我们的研究结果揭示了 MdMRLK2 在调节水分亏缺条件下苹果 WUE 中的新功能。

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