State Key Laboratory for Crop Stress Resistance and High-Efficiency Production/Shaanxi Key Laboratory of Apple, College of Horticulture, Northwest A & F University, Yangling 712100, Shaanxi, China.
Plant Cell. 2024 Sep 3;36(9):3631-3653. doi: 10.1093/plcell/koae171.
Heat stress severely restricts the growth and fruit development of apple (Malus domestica). Little is known about the involvement of WRKY proteins in the heat tolerance mechanism in apple. In this study, we found that the apple transcription factor (TF) MdWRKY75 responds to heat and positively regulates basal thermotolerance. Apple plants that overexpressed MdWRKY75 were more tolerant to heat stress while silencing MdWRKY75 caused the opposite phenotype. RNA-seq and reverse transcription quantitative PCR showed that heat shock factor genes (MdHsfs) could be the potential targets of MdWRKY75. Electrophoretic mobility shift, yeast one-hybrid, β-glucuronidase, and dual-luciferase assays showed that MdWRKY75 can bind to the promoters of MdHsf4, MdHsfB2a, and MdHsfA1d and activate their expression. Apple plants that overexpressed MdHsf4, MdHsfB2a, and MdHsfA1d exhibited heat tolerance and rescued the heat-sensitive phenotype of MdWRKY75-Ri3. In addition, apple heat shock cognate 70 (MdHSC70) interacts with MdWRKY75, as shown by yeast two-hybrid, split luciferase, bimolecular fluorescence complementation, and pull-down assays. MdHSC70 acts as a negative regulator of the heat stress response. Apple plants that overexpressed MdHSC70 were sensitive to heat, while virus-induced gene silencing of MdHSC70 enhanced heat tolerance. Additional research showed that MdHSC70 exhibits heat sensitivity by interacting with MdWRKY75 and inhibiting MdHsfs expression. In summary, we proposed a mechanism for the response of apple to heat that is mediated by the "MdHSC70/MdWRKY75-MdHsfs" molecular module, which enhances our understanding of apple thermotolerance regulated by WRKY TFs.
热应激严重限制了苹果(Malus domestica)的生长和果实发育。关于 WRKY 蛋白在苹果耐热机制中的参与,知之甚少。在本研究中,我们发现苹果转录因子(TF)MdWRKY75 对热响应,并正向调节基础耐热性。过表达 MdWRKY75 的苹果植株对热胁迫更耐受,而沉默 MdWRKY75 则导致相反的表型。RNA-seq 和反转录定量 PCR 显示,热休克因子基因(MdHsfs)可能是 MdWRKY75 的潜在靶标。电泳迁移率变动、酵母单杂交、β-葡萄糖醛酸酶和双荧光素酶测定表明,MdWRKY75 可以结合到 MdHsf4、MdHsfB2a 和 MdHsfA1d 的启动子上,并激活它们的表达。过表达 MdHsf4、MdHsfB2a 和 MdHsfA1d 的苹果植株表现出耐热性,并挽救了 MdWRKY75-Ri3 的热敏感表型。此外,酵母双杂交、分裂荧光素酶、双分子荧光互补和下拉实验表明,苹果热激同源物 70(MdHSC70)与 MdWRKY75 相互作用。MdHSC70 作为热应激反应的负调控因子。过表达 MdHSC70 的苹果植株对热敏感,而病毒诱导的 MdHSC70 基因沉默增强了耐热性。进一步的研究表明,MdHSC70 通过与 MdWRKY75 相互作用并抑制 MdHsfs 的表达来表现出热敏感性。综上所述,我们提出了一个由“MdHSC70/MdWRKY75-MdHsfs”分子模块介导的苹果对热响应的机制,这增强了我们对 WRKY TF 调控的苹果耐热性的理解。