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PRP4KA使锯齿状蛋白磷酸化,以便通过26S蛋白酶体进行降解,从而微调(细胞中的)微小RNA生成。 (注:原文中“20 proteasome”可能有误,推测应为“26S proteasome”,已按此修正翻译)

PRP4KA phosphorylates SERRATE for degradation via 20 proteasome to fine-tune miRNA production in .

作者信息

Wang Lin, Yan Xingxing, Li Yanjun, Wang Zhiye, Chhajed Shweta, Shang Baoshuan, Wang Zhen, Choi Suk Won, Zhao Hongwei, Chen Sixue, Zhang Xiuren

机构信息

Department of Biochemistry and Biophysics, Texas A&M University, College Station, TX 77843, USA.

Laboratory of Bio-interactions and Crop Health, Department of Plant Pathology, College of Plant Protection, Nanjing Agricultural University, Nanjing 210095, China.

出版信息

Sci Adv. 2022 Mar 25;8(12):eabm8435. doi: 10.1126/sciadv.abm8435.

Abstract

Phosphorylation can quickly switch on/off protein functions. Here, we reported pre-mRNA processing 4 kinase A (PRP4KA), and its paralogs interact with Serrate (SE), a key factor in RNA processing. PRP4KA phosphorylates at least five residues of SE in vitro and in vivo. Hypophosphorylated, but not hyperphosphorylated, SE variants could readily rescue phenotypes in vivo. Moreover, hypophosphorylated SE variants had stronger binding affinity to microprocessor component HYL1 and were more resistant to degradation by 20 proteasome than hyperphosphorylated counterparts. Knockdown of the kinases enhanced the accumulation of hypophosphorylated SE. However, the excessive SE interfered with the assembly and function of SE-scaffolded macromolecule complexes, causing the -like defects in the mutant and wild-type backgrounds. Thus, phosphorylation of SE via PRP4KA can quickly clear accumulated SE to secure its proper amount. This study provides new insight into how protein phosphorylation regulates miRNA metabolism through controlling homeostasis of SE accumulation in plants.

摘要

磷酸化作用能够迅速开启或关闭蛋白质的功能。在此,我们报道了前体mRNA加工4激酶A(PRP4KA)及其旁系同源物与RNA加工中的关键因子锯齿蛋白(SE)相互作用。PRP4KA在体外和体内至少使SE的五个残基发生磷酸化。低磷酸化而非高磷酸化的SE变体能够在体内轻易地挽救表型。此外,低磷酸化的SE变体与微处理器组件HYL1具有更强的结合亲和力,并且比高磷酸化的对应物更能抵抗20蛋白酶体的降解。敲低这些激酶会增强低磷酸化SE的积累。然而,过量的SE会干扰SE支架大分子复合物的组装和功能,在突变体和野生型背景中导致类似的缺陷。因此,通过PRP4KA对SE进行磷酸化可以迅速清除积累的SE以确保其适量。这项研究为蛋白质磷酸化如何通过控制植物中SE积累的稳态来调节miRNA代谢提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eaa9/8956257/9994459f702d/sciadv.abm8435-f1.jpg

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