Hemler Martin E
Dana-Farber Cancer Institute, Boston, Massachusetts 02115, USA.
Annu Rev Cell Dev Biol. 2003;19:397-422. doi: 10.1146/annurev.cellbio.19.111301.153609.
This review summarizes key aspects of tetraspanin proteins, with a focus on the functional relevance and structural features of these proteins and how they are organized into a novel type of membrane microdomain. Despite the size of the tetraspanin family and their abundance and wide distribution over many cell types, most have not been studied. However, from studies of prototype tetraspanins, information regarding functions, cell biology, and structural organization has begun to emerge. Genetic evidence points to critical roles for tetraspanins on oocytes during fertilization, in fungi during leaf invasion, in Drosophila embryos during neuromuscular synapse formation, during T and B lymphocyte activation, in brain function, and in retinal degeneration. From structure and mutagenesis studies, we are beginning to understand functional subregions within tetraspanins, as well as the levels of connections among tetraspanins and their many associated proteins. Tetraspanin-enriched microdomains (TEMs) are emerging as entities physically and functionally distinct from lipid rafts. These microdomains now provide a context in which to evaluate tetraspanins in the regulation of growth factor signaling and in the modulation of integrin-mediated post-cell adhesion events. Finally, the enrichment of tetraspanins within secreted vesicles called exosomes, coupled with hints that tetraspanins may regulate vesicle fusion and/or fission, suggests exciting new directions for future research.
本综述总结了四跨膜蛋白的关键方面,重点关注这些蛋白的功能相关性和结构特征,以及它们如何组装成一种新型的膜微结构域。尽管四跨膜蛋白家族规模庞大,且在多种细胞类型中含量丰富、分布广泛,但大多数尚未得到研究。然而,通过对典型四跨膜蛋白的研究,有关其功能、细胞生物学和结构组织的信息已开始浮现。遗传学证据表明,四跨膜蛋白在受精过程中的卵母细胞、叶片侵染过程中的真菌、神经肌肉突触形成过程中的果蝇胚胎、T和B淋巴细胞激活过程、脑功能以及视网膜变性中都发挥着关键作用。从结构和诱变研究中,我们开始了解四跨膜蛋白内的功能亚区,以及四跨膜蛋白与其众多相关蛋白之间的连接水平。富含四跨膜蛋白的微结构域(TEMs)正作为在物理和功能上与脂筏不同的实体而出现。这些微结构域现在为评估四跨膜蛋白在生长因子信号调节和整合素介导的细胞后黏附事件调节中的作用提供了一个背景。最后,四跨膜蛋白在称为外泌体的分泌小泡中的富集,以及四跨膜蛋白可能调节小泡融合和/或裂变的线索,为未来的研究指明了令人兴奋的新方向。