Zou Yu, Xu Ending, Fan Ye, Zhang Peijiang, Zhang Wei, Chen Xi
Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei, Anhui, 230031, China.
Rice Research Institute, Anhui Academy of Agricultural Sciences, Hefei, Anhui, 230031, China; Department of Biochemistry & Molecular Biology, College of Life Science, Nanjing Agriculture University, Nanjing, Jiangsu, 210095, China.
Plant Physiol Biochem. 2023 Oct;203:108054. doi: 10.1016/j.plaphy.2023.108054. Epub 2023 Sep 23.
Manganese (Mn), a vital element, plays crucial roles in various biochemical and physiological processes by serving as an essential cofactor for numerous enzymes and acting as a catalytically active metal within biological clusters. In this study, we investigate the role of PHOTOSYNTHESIS-AFFECTED MUTANT 71-LIKE 2 (OsPML2), a member of the UNCHARACTERIZED PROTEIN FAMILY 0016 (UPF0016) family, in regulating Mn homeostasis in rice. OsPML2 was highly expressed in young leaves, ovaries, and stigmas. Cross sections from young leaves revealed that OsPML2 was mainly expressed in the phloem region and mesophyll cells. Furthermore, heterologous expression of OsPML2 restored the growth of Mn uptake-defective yeast strain Δsmf1 under Mn-limited conditions. Subcellular localization analysis demonstrated that OsPML2 was specifically localized in the chloroplast envelope. Knockdown of OsPML2 resulted in reduced chloroplast Mn content, significantly affecting plant growth under Mn deficiency. Furthermore, analysis of isolated thylakoid membranes using blue native gels indicated a compromised accumulation of photosystem II (PSII) complexes in OsPML2 knockdown lines. Additionally, grain yield, grain length, and width were significantly reduced in OsPML2 knockdown plants. Collectively, our findings provide insights into the transport function of OsPML2, which facilitates Mn transport from the cytosol to chloroplast stroma and influences the accumulation of PSII complexes in rice.
锰(Mn)是一种重要元素,通过作为众多酶的必需辅因子并在生物簇中作为具有催化活性的金属,在各种生化和生理过程中发挥关键作用。在本研究中,我们研究了光合作用受影响突变体71样2(OsPML2),即未鉴定蛋白家族0016(UPF0016)家族的成员,在调节水稻锰稳态中的作用。OsPML2在幼叶、子房和柱头中高表达。幼叶的横截面显示,OsPML2主要在韧皮部区域和叶肉细胞中表达。此外,OsPML2的异源表达恢复了锰限制条件下锰吸收缺陷酵母菌株Δsmf1的生长。亚细胞定位分析表明,OsPML2特异性定位于叶绿体包膜。敲低OsPML2导致叶绿体锰含量降低,显著影响缺锰条件下的植物生长。此外,使用蓝色天然凝胶对分离的类囊体膜进行分析表明,OsPML2敲低系中光系统II(PSII)复合物的积累受损。此外,OsPML2敲低植物的籽粒产量、粒长和粒宽显著降低。总的来说,我们的研究结果为OsPML2的转运功能提供了见解,它促进锰从细胞质向叶绿体基质的转运,并影响水稻中PSII复合物的积累。