Michigan State University-Department of Energy Plant Research Laboratory, Michigan State University, East Lansing, Michigan 48824, USA.
Plant Cell. 2010 Feb;22(2):431-42. doi: 10.1105/tpc.109.071324. Epub 2010 Feb 23.
Peroxisomes are highly dynamic organelles involved in various metabolic pathways. The division of peroxisomes is regulated by factors such as the PEROXIN11 (PEX11) proteins that promote peroxisome elongation and the dynamin-related proteins (DRPs) and FISSION1 (FIS1) proteins that function together to mediate organelle fission. In Arabidopsis thaliana, DRP3A/DRP3B and FIS1A (BIGYIN)/FIS1B are two pairs of homologous proteins known to function in both peroxisomal and mitochondrial division. Here, we report that DRP5B, a DRP distantly related to the DRP3s and originally identified as a chloroplast division protein, also contributes to peroxisome division. DRP5B localizes to both peroxisomes and chloroplasts. Mutations in the DRP5B gene lead to peroxisome division defects and compromised peroxisome functions. Using coimmunoprecipitation and bimolecular fluorescence complementation assays, we further demonstrate that DRP5B can interact or form a complex with itself and with DRP3A, DRP3B, FIS1A, and most of the Arabidopsis PEX11 isoforms. Our data suggest that, in contrast with DRP3A and DRP3B, whose orthologs exist across plant, fungal, and animal kingdoms, DRP5B is a plant/algal invention to facilitate the division of their organelles (i.e., chloroplasts and peroxisomes). In addition, our results support the notion that proteins involved in the early (elongation) and late (fission) stages of peroxisome division may act cooperatively.
过氧化物酶体是参与各种代谢途径的高度动态细胞器。过氧化物酶体的分裂受 PEROXIN11(PEX11)蛋白等因素的调节,这些蛋白促进过氧化物酶体的伸长,而与动力相关的蛋白(DRPs)和 FISSION1(FIS1)蛋白共同作用以介导细胞器分裂。在拟南芥中,DRP3A/DRP3B 和 FIS1A(BIGYIN)/FIS1B 是两对同源蛋白,已知它们在过氧化物酶体和线粒体分裂中都发挥作用。在这里,我们报告说 DRP5B,一种与 DRP3s 关系较远的 DRP,最初被鉴定为叶绿体分裂蛋白,也有助于过氧化物酶体的分裂。DRP5B 定位于过氧化物酶体和叶绿体。DRP5B 基因突变导致过氧化物酶体分裂缺陷和过氧化物酶体功能受损。通过共免疫沉淀和双分子荧光互补测定,我们进一步证明 DRP5B 可以与自身以及 DRP3A、DRP3B、FIS1A 和大多数拟南芥 PEX11 同工型相互作用或形成复合物。我们的数据表明,与在植物、真菌和动物王国中都存在的 DRP3A 和 DRP3B 不同,DRP5B 是植物/藻类的发明,以促进它们的细胞器(即叶绿体和过氧化物酶体)的分裂。此外,我们的结果支持这样一种观点,即参与过氧化物酶体分裂早期(伸长)和晚期(分裂)阶段的蛋白质可能协同作用。