Sekereš Juraj, Pejchar Přemysl, Šantrůček Jiří, Vukašinović Nemanja, Žárský Viktor, Potocký Martin
Institute of Experimental Botany, Czech Academy of Sciences, Prague 6, Czech Republic (J.S., P.P., N.V., V.Ž., M.P.).
Department of Experimental Plant Biology, Faculty of Science, Charles University, Prague 2, Czech Republic (J.S., V.Ž.); and.
Plant Physiol. 2017 Mar;173(3):1659-1675. doi: 10.1104/pp.16.01709. Epub 2017 Jan 12.
The vesicle-tethering complex exocyst is one of the crucial cell polarity regulators. The EXO70 subunit is required for the targeting of the complex and is represented by many isoforms in angiosperm plant cells. This diversity could be partly responsible for the establishment and maintenance of membrane domains with different composition. To address this hypothesis, we employed the growing pollen tube, a well-established cell polarity model system, and performed large-scale expression, localization, and functional analysis of tobacco () EXO70 isoforms. Various isoforms localized to different regions of the pollen tube plasma membrane, apical vesicle-rich inverted cone region, nucleus, and cytoplasm. The overexpression of major pollen-expressed EXO70 isoforms resulted in growth arrest and characteristic phenotypic deviations of tip swelling and apical invaginations. NtEXO70A1a and NtEXO70B1 occupied two distinct and mutually exclusive plasma membrane domains. Both isoforms partly colocalized with the exocyst subunit NtSEC3a at the plasma membrane, possibly forming different exocyst complex subpopulations. NtEXO70A1a localized to the small area previously characterized as the site of exocytosis in the tobacco pollen tube, while NtEXO70B1 surprisingly colocalized with the zone of clathrin-mediated endocytosis. Both NtEXO70A1a and NtEXO70B1 colocalized to different degrees with markers for the anionic signaling phospholipids phosphatidylinositol 4,5-bisphosphate and phosphatidic acid. In contrast, members of the EXO70 C class, which are specifically expressed in tip-growing cells, exhibited exocytosis-related functional effects in pollen tubes despite the absence of apparent plasma membrane localization. Taken together, our data support the existence of multiple membrane-trafficking domains regulated by different EXO70-containing exocyst complexes within a single cell.
囊泡拴系复合体外排复合体是关键的细胞极性调节因子之一。EXO70亚基是该复合体靶向定位所必需的,并且在被子植物细胞中有许多同种型。这种多样性可能部分负责具有不同组成的膜结构域的建立和维持。为了验证这一假设,我们利用生长中的花粉管,这是一个成熟的细胞极性模型系统,对烟草()EXO70同种型进行了大规模的表达、定位和功能分析。各种同种型定位于花粉管质膜的不同区域、富含顶端囊泡的倒锥形区域、细胞核和细胞质。主要在花粉中表达的EXO70同种型的过表达导致生长停滞以及顶端肿胀和顶端内陷的特征性表型偏差。NtEXO70A1a和NtEXO70B1占据两个不同且相互排斥的质膜结构域。这两种同种型在质膜上都与外排复合体亚基NtSEC3a部分共定位,可能形成不同的外排复合体亚群。NtEXO70A1a定位于先前被确定为烟草花粉管胞吐作用位点的小区域,而NtEXO70B1令人惊讶地与网格蛋白介导的内吞作用区域共定位。NtEXO70A1a和NtEXO70B1都与阴离子信号磷脂磷脂酰肌醇4,5 - 二磷酸和磷脂酸的标记物不同程度地共定位。相比之下,在顶端生长细胞中特异性表达的EXO70 C类成员,尽管没有明显的质膜定位,但在花粉管中表现出与胞吐作用相关的功能效应。综上所述,我们的数据支持在单个细胞内存在由不同的含EXO70外排复合体调节的多个膜运输结构域。