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一个HD-ZIP因子的自然变异确定了其在控制苹果叶片表皮蜡质沉积中的作用。

Natural variation in an HD-ZIP factor identifies its role in controlling apple leaf cuticular wax deposition.

作者信息

Cao Fuguo, Qian Qian, Li Zhongxing, Wang Jingrong, Liu Zeyuan, Zhang Zitong, Niu Chundong, Xie Yinpeng, Ma Fengwang, Guan Qingmei

机构信息

State Key Laboratory for Crop Stress Resistance and High-Efficiency Production, College of Horticulture, Northwest A&F University, Yangling, China.

Liaoning Academy of Agricultural Sciences, Shenyang, China.

出版信息

Dev Cell. 2025 Mar 24;60(6):949-964.e6. doi: 10.1016/j.devcel.2024.12.001. Epub 2024 Dec 24.

Abstract

Natural variation is an invaluable genetic resource for plant trait improvement. Here, we performed a genome-wide association study (GWAS) analysis and identified MdHDG5, which controls apple leaf cuticular wax. An A-to-G single-nucleotide polymorphism (SNP) on the HDG5 promoter is associated with HDG5 expression and hexacosanol content (a component of leaf cuticular wax). Furthermore, the single-nucleotide variation (G/G) within a MYB cis-regulatory element (CRE) can be directly bound by MYB62, which represses HDG5 expression and leaf wax deposition. In addition, MdPIAL2, a Small Ubiquitin-like Modifier (SUMO) E3 ligase, positively controls apple leaf wax deposition by stabilizing MdHDG5, while MdMIEL1 interacts with and degrades both MdHDG5 and MdPIAL2 to negatively control leaf wax deposition. Notably, MIEL1 expression is negatively associated with leaf hexacosanol deposition. Taken together, our results provide significant genetic insights into the natural variation of leaf cuticular wax loads in apple and identify the intricate molecular regulation of MdHDG5.

摘要

自然变异是植物性状改良中一种宝贵的遗传资源。在此,我们进行了全基因组关联研究(GWAS)分析,并鉴定出控制苹果叶片表皮蜡质的MdHDG5。HDG5启动子上的一个A到G的单核苷酸多态性(SNP)与HDG5表达及二十六醇含量(叶片表皮蜡质的一种成分)相关。此外,MYB顺式调控元件(CRE)内的单核苷酸变异(G/G)可被MYB62直接结合,从而抑制HDG5表达和叶片蜡质沉积。另外,小泛素样修饰物(SUMO)E3连接酶MdPIAL2通过稳定MdHDG5正向调控苹果叶片蜡质沉积,而MdMIEL1与MdHDG5和MdPIAL2相互作用并使其降解,从而负向调控叶片蜡质沉积。值得注意的是,MIEL1表达与叶片二十六醇沉积呈负相关。综上所述,我们的研究结果为苹果叶片表皮蜡质负载的自然变异提供了重要的遗传学见解,并确定了MdHDG5复杂的分子调控机制。

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