Adams Sally, Maple Jodi, Møller Simon Geir
Department of Biology, University of Leicester, Leicester, LE1 7RH, UK.
Planta. 2008 May;227(6):1199-211. doi: 10.1007/s00425-008-0692-6. Epub 2008 Feb 13.
Chloroplasts arise by binary fission from pre-existing plastids, thus division plays a key role in the development of these essential photosynthetic organelles. To ensure that actively dividing tissues accumulate large numbers of chloroplasts prior to cell division, chloroplast division and the cell cycle must be intimately linked. However, little is known about the regulation of the plastid division machinery during cell division and these questions are difficult to address in higher plants. For this purpose we have studied the unicellular green alga Chlamydomonas reinhardtii for its potential as a new system for chloroplast division research. Here we show the functional conservation of key components of the higher plant chloroplast machinery in Chlamydomonas. The highly conserved Chlamydomonas MinD homologue, CrMinD1, retains crucial protein-protein interactions, sub-cellular localisation and the ability to affect both higher plant plastid division and bacterial cell division. Furthermore, using the coupling of chloroplast and cell division in Chlamydomonas we have established that transcript levels of chloroplast division homologues significantly increase during cell division, with levels falling as division reaches completion.
叶绿体通过由先前存在的质体进行二分裂产生,因此分裂在这些重要的光合细胞器的发育中起着关键作用。为确保活跃分裂的组织在细胞分裂之前积累大量叶绿体,叶绿体分裂和细胞周期必须紧密相连。然而,关于细胞分裂过程中质体分裂机制的调控知之甚少,而这些问题在高等植物中难以解决。为此,我们研究了单细胞绿藻莱茵衣藻,因为它有潜力成为叶绿体分裂研究的新系统。在此我们展示了高等植物叶绿体机制关键成分在衣藻中的功能保守性。高度保守的衣藻MinD同源物CrMinD1保留了关键的蛋白质-蛋白质相互作用、亚细胞定位以及影响高等植物质体分裂和细菌细胞分裂的能力。此外,利用衣藻中叶绿体与细胞分裂的偶联,我们确定叶绿体分裂同源物的转录水平在细胞分裂期间显著增加,而在分裂完成时水平下降。