Kondos S C, Hatfaludi T, Voskoboinik I, Trapani J A, Law R H P, Whisstock J C, Dunstone M A
Department of Biochemistry and Molecular Biology, Monash University, Clayton, Victoria, Australia.
Tissue Antigens. 2010 Nov;76(5):341-51. doi: 10.1111/j.1399-0039.2010.01566.x. Epub 2010 Sep 22.
The membrane-attack complex (MAC) of complement pathway and perforin (PF) are important tools deployed by the immune system to target pathogens. Both perforin and the C9 component of the MAC contain a common 'MACPF' domain and form pores in the cell membrane as part of their function. The MAC targets gram-negative bacteria and certain pathogenic parasites, while perforin, released by natural killer cells or cytotoxic T lymphocytes (CTLs), targets virus-infected and transformed host cells (1). Remarkably, recent structural studies show that the MACPF domain is homologous to the pore-forming portion of bacterial cholesterol-dependent cytolysins; these data have provided important insight into the mechanism of pore-forming MACPF proteins. In addition to their role in immunity, MACPF family members have been identified as animal venoms, factors required for pathogen migration across host cell membranes and factors that govern developmental processes such as embryonic patterning and neuronal guidance (2). While most MACPF proteins characterized to date either form pores or span lipid membranes, some do not (e.g. the C6 component of the MAC). A current challenge is thus to understand the role, pore forming or otherwise, of MACPF proteins in developmental biology. This review discusses structural and functional diversity of the mammalian MACPF proteins.
补体途径的膜攻击复合物(MAC)和穿孔素(PF)是免疫系统用于靶向病原体的重要工具。穿孔素和MAC的C9成分都含有一个共同的“MACPF”结构域,并在细胞膜上形成孔道作为其功能的一部分。MAC靶向革兰氏阴性菌和某些致病性寄生虫,而由自然杀伤细胞或细胞毒性T淋巴细胞(CTL)释放的穿孔素则靶向病毒感染和转化的宿主细胞(1)。值得注意的是,最近的结构研究表明,MACPF结构域与细菌胆固醇依赖性细胞溶素的成孔部分同源;这些数据为成孔MACPF蛋白的机制提供了重要见解。除了在免疫中的作用外,MACPF家族成员还被鉴定为动物毒液、病原体跨宿主细胞膜迁移所需的因子以及控制胚胎模式形成和神经元导向等发育过程的因子(2)。虽然迄今为止鉴定的大多数MACPF蛋白要么形成孔道,要么跨越脂质膜,但有些则不然(例如MAC的C6成分)。因此,当前的一个挑战是了解MACPF蛋白在发育生物学中的作用,无论是成孔作用还是其他作用。本综述讨论了哺乳动物MACPF蛋白的结构和功能多样性。