Ohnishi Norikazu, Sugimoto Manabu, Kondo Hideki, Shioya Ken-Ichi, Zhang Lingang, Sakamoto Wataru
Institute for Plant Science and Resources, Okayama University, Kurashiki, Japan.
School of Life Sciences, Inner Mongolia University, Hohhot, China.
Front Plant Sci. 2022 Jul 12;13:949578. doi: 10.3389/fpls.2022.949578. eCollection 2022.
Vesicle-inducing protein in plastid 1 (VIPP1), characteristic to oxygenic photosynthetic organisms, is a membrane-remodeling factor that forms homo-oligomers and functions in thylakoid membrane formation and maintenance. The cyanobacterial VIPP1 structure revealed a monomeric folding pattern similar to that of endosomal sorting complex required for transport (ESCRT) III. Characteristic to VIPP1, however, is its own GTP and ATP hydrolytic activity without canonical domains. In this study, we found that histidine-tagged VIPP1 (AtVIPP1) hydrolyzed GTP and ATP to produce GDP and ADP , respectively. Unexpectedly, the observed GTPase and ATPase activities were biochemically distinguishable, because the ATPase was optimized for alkaline conditions and dependent on Ca as well as Mg, with a higher affinity for ATP than GTP. We found that a version of AtVIPP1 protein with a mutation in its nucleotide-binding site, as deduced from the cyanobacterial structure, retained its hydrolytic activity, suggesting that and cyanobacterial VIPP1s have different properties. Negative staining particle analysis showed that AtVIPP1 formed particle or rod structures that differed from those of cyanobacteria and . These results suggested that the nucleotide hydrolytic activity and oligomer formation of VIPP1 are common in photosynthetic organisms, whereas their properties differ among species.
质体中诱导囊泡蛋白1(VIPP1)是产氧光合生物所特有的,是一种膜重塑因子,可形成同型寡聚体,并在类囊体膜的形成和维持中发挥作用。蓝藻VIPP1结构揭示了一种类似于运输所需的内体分选复合体(ESCRT)III的单体折叠模式。然而,VIPP1的独特之处在于其自身具有GTP和ATP水解活性,却没有典型结构域。在本研究中,我们发现组氨酸标签化的VIPP1(AtVIPP1)分别水解GTP和ATP产生GDP和ADP。出乎意料的是,观察到的GTPase和ATPase活性在生化性质上是可区分的,因为ATPase在碱性条件下最活跃,并且依赖于Ca以及Mg,对ATP的亲和力高于GTP。我们发现,根据蓝藻结构推导,在其核苷酸结合位点发生突变的AtVIPP1蛋白版本保留了其水解活性,这表明 与蓝藻VIPP1具有不同的特性。负染颗粒分析表明,AtVIPP1形成的颗粒或杆状结构与蓝藻和 的不同。这些结果表明,VIPP1的核苷酸水解活性和寡聚体形成在光合生物中很常见,但其性质在不同物种之间存在差异。