Maple Jodi, Aldridge Cassie, Møller Simon Geir
Department of Biology, University of Leicester, University Road, Leicester LE1 7RH, UK.
Plant J. 2005 Sep;43(6):811-23. doi: 10.1111/j.1365-313X.2005.02493.x.
Plastids arise by division from pre-existing organelles, and with the recent characterization of several new components of plastid division our understanding of the division process in higher plants has improved dramatically. However, it is still not known how these different protein components act together during division. Here we analyse protein-protein interactions between all known stromal plastid division proteins. Using a combination of quantitative yeast two-hybrid assays, in planta co-localization studies, fluorescence resonance energy transfer and bimolecular fluorescence complementation assays we show that these proteins do not act in isolation but rather in protein complexes to govern appropriate plastid division. We have previously shown that AtMinD1 forms functional homodimers and we show here that in addition to homodimerization AtMinD1 also interacts with AtMinE1. Furthermore, AtMinE1 has the ability to homodimerize. We also demonstrate that proteins from both FtsZ families (AtFtsZ1-1 and AtFtsZ2-1) not only interact with themselves but also with each other, and we show that these interactions are not dependent on correct Z-ring formation. Further to this we demonstrate that ARC6 specifically interacts with the core domain of AtFtsZ2-1, but not with AtFtsZ1-1, providing in planta evidence for a functional difference between the two FtsZ protein families in plants. Our studies have enabled us to construct a meaningful intraplastidic protein-protein interaction map of all known stromal plastid division proteins in Arabidopsis.
质体由先前存在的细胞器分裂产生,随着最近对质体分裂几个新组分的表征,我们对高等植物分裂过程的理解有了显著提高。然而,这些不同的蛋白质组分在分裂过程中如何协同作用仍不清楚。在这里,我们分析了所有已知的质体基质分裂蛋白之间的蛋白质-蛋白质相互作用。通过定量酵母双杂交试验、植物体内共定位研究、荧光共振能量转移和双分子荧光互补试验相结合,我们表明这些蛋白质并非孤立起作用,而是在蛋白质复合物中共同控制适当的质体分裂。我们之前已经表明AtMinD1形成功能性同二聚体,并且我们在此表明,除了同二聚化之外,AtMinD1还与AtMinE1相互作用。此外,AtMinE1具有同二聚化的能力。我们还证明了来自两个FtsZ家族(AtFtsZ1-1和AtFtsZ2-1)的蛋白质不仅自身相互作用,而且彼此相互作用,并且我们表明这些相互作用不依赖于正确的Z环形成。除此之外,我们证明ARC6特异性地与AtFtsZ2-1的核心结构域相互作用,但不与AtFtsZ1-1相互作用,为植物中两个FtsZ蛋白家族之间的功能差异提供了植物体内的证据。我们的研究使我们能够构建拟南芥中所有已知的质体基质分裂蛋白的有意义的质体内蛋白质-蛋白质相互作用图谱。