Department of Cell and Developmental Biology, University College London, London WC1E 6BT, U.K.
Biochem J. 2012 Jan 1;441(1):317-23. doi: 10.1042/BJ20111617.
TPCs (two-pore channels) have recently been identified as targets for the Ca2+-mobilizing messenger NAADP (nicotinic acid-adenine dinucleotide phosphate). TPCs have a unique structure consisting of cytosolic termini, two hydrophobic domains (I and II) each comprising six transmembrane regions and a pore, and a connecting cytosolic loop; however, little is known concerning how these channels are assembled. In the present paper, we report that both domain I and II of human TPCs are capable of independent insertion into membranes, whereas the loop linking the domains fails to insert. Pairs of transmembrane regions within domain I of TPC1 are also capable of insertion, consistent with sequential translational integration of hydrophobic regions. Insertion of the first two transmembrane regions, however, was inefficient, indicating possible interaction between transmembrane regions during translation. Both domains, and each pair of transmembrane regions within domain I, were capable of forming oligomers, highlighting marked redundancy in the molecular determinants driving oligomer formation. Each hydrophobic domain formed dimers upon cross-linking. The first four transmembrane regions of TPC1 also formed dimers, whereas transmembrane regions 5 and 6, encompassing the pore loop, formed both dimers and tetramers. TPCs thus probably assemble as dimers through differential interactions between transmembrane regions. The present study provides new molecular insight into the membrane insertion and oligomerization of TPCs.
TPCs(双孔通道)最近被确定为 Ca2+-动员信使 NAADP(烟酰胺腺嘌呤二核苷酸磷酸)的靶标。TPC 具有独特的结构,由胞质末端、两个疏水区(I 和 II)组成,每个疏水区包含六个跨膜区和一个孔,以及一个连接胞质环;然而,关于这些通道如何组装的信息知之甚少。在本文中,我们报告说人类 TPC 的结构域 I 和 II 都能够独立插入膜中,而连接结构域的环则无法插入。TPC1 结构域 I 内的跨膜区对也能够插入,这与疏水区域的顺序翻译整合一致。然而,插入前两个跨膜区的效率较低,表明翻译过程中跨膜区域之间可能存在相互作用。两个结构域以及结构域 I 内的每对跨膜区都能够形成寡聚体,突出了驱动寡聚体形成的分子决定因素的显著冗余性。每个疏水区在交联时形成二聚体。TPC1 的前四个跨膜区也形成二聚体,而包含孔环的跨膜区 5 和 6 则形成二聚体和四聚体。因此,TPC 可能通过跨膜区之间的差异相互作用组装成二聚体。本研究为 TPC 的膜插入和寡聚化提供了新的分子见解。