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玉米 PIMT2 在线粒体中修复受损的 3-甲基戊二酰辅酶 A 羧化酶,影响种子活力。

Maize PIMT2 repairs damaged 3-METHYLCROTONYL COA CARBOXYLASE in mitochondria, affecting seed vigor.

机构信息

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

The Key Laboratory of Biology and Genetics Improvement of Maize in Arid Area of Northwest Region, Ministry of Agriculture, Northwest A&F University, Yangling, Shaanxi, 712100, China.

出版信息

Plant J. 2023 Jul;115(1):220-235. doi: 10.1111/tpj.16225. Epub 2023 Apr 20.

Abstract

PROTEIN l-ISOASPARTYL O-METHYLTRANSFERASE (PIMT) affects seed vigor by repairing damaged proteins. While PIMT is capable of isoaspartyl (isoAsp) repair in all proteins, those proteins most susceptible to isoAsp formation have not been well characterized, and the mechanisms by which PIMT affects seed vigor remain largely unknown. Using co-immunoprecipitation and LC-MS/MS, we found that maize (Zea mays) PIMT2 (ZmPIMT2) interacted predominantly with both subunits of maize 3-METHYLCROTONYL COA CARBOXYLASE (ZmMCC). ZmPIMT2 is specifically expressed in the maize embryo. Both mRNA and protein levels of ZmPIMT2 increased during seed maturation and declined during imbibition. Maize seed vigor was decreased in the zmpimt2 mutant line, while overexpression of ZmPIMT2 in maize and Arabidopsis thaliana increased seed vigor upon artificial aging. ZmPIMT2 was localized in the mitochondria, as determined by subcellular localization assays using maize protoplasts. ZmPIMT2 binding to ZmMCCα was confirmed by luciferase complementation tests in both tobacco (Nicotiana benthamiana) leaves and maize protoplasts. Knockdown of ZmMCCα decreased maize seed aging tolerance. Furthermore, overexpression of ZmPIMT2 decreased the accumulation of isoAsp of ZmMCCα protein in seed embryos that underwent accelerated aging treatment. Taken together, our results demonstrate that ZmPIMT2 binds ZmMCCα in mitochondria, repairs isoAsp damage, and positively affects maize seed vigor.

摘要

蛋白 l-异天冬氨酰基-O-甲基转移酶(PIMT)通过修复受损蛋白来影响种子活力。虽然 PIMT 能够对所有蛋白质中的异天冬氨酸(isoAsp)进行修复,但那些最容易形成 isoAsp 的蛋白质尚未得到很好的表征,PIMT 影响种子活力的机制在很大程度上仍然未知。通过共免疫沉淀和 LC-MS/MS,我们发现玉米(Zea mays)PIMT2(ZmPIMT2)主要与玉米 3-甲基巴豆酰辅酶 A 羧化酶(ZmMCC)的两个亚基相互作用。ZmPIMT2 特异性表达于玉米胚中。ZmPIMT2 的 mRNA 和蛋白水平在种子成熟过程中增加,在吸胀过程中下降。ZmPIMT2 突变体种子活力下降,而在玉米和拟南芥中过表达 ZmPIMT2 可增加人工老化后的种子活力。通过使用玉米原生质体进行亚细胞定位测定,确定 ZmPIMT2 定位于线粒体。ZmPIMT2 与 ZmMCCα 的结合通过烟草(Nicotiana benthamiana)叶片和玉米原生质体中的荧光素酶互补测试得到证实。ZmMCCα 的敲低降低了玉米种子的老化耐受性。此外,过表达 ZmPIMT2 降低了经历加速老化处理的种子胚中 ZmMCCα 蛋白异天冬氨酸积累。综上所述,我们的结果表明,ZmPIMT2 在线粒体中与 ZmMCCα 结合,修复异天冬氨酸损伤,从而积极影响玉米种子活力。

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