Departments of Biochemistry and Molecular Biology, Institute of Structural Biology, George S. Wise Faculty of Life Sciences, Sackler Faculty of Medicine, Tel Aviv University, Tel Aviv 69978, Israel.
J Neurosci. 2012 May 30;32(22):7602-13. doi: 10.1523/JNEUROSCI.5727-11.2012.
Voltage-dependent calcium channels (VDCCs) allow the passage of Ca(2+) ions through cellular membranes in response to membrane depolarization. The channel pore-forming subunit, α1, and a regulatory subunit (Ca(V)β) form a high affinity complex where Ca(V)β binds to a α1 interacting domain in the intracellular linker between α1 membrane domains I and II (I-II linker). We determined crystal structures of Ca(V)β2 functional core in complex with the Ca(V)1.2 and Ca(V)2.2 I-II linkers to a resolution of 1.95 and 2.0 Å, respectively. Structural differences between the highly conserved linkers, important for coupling Ca(V)β to the channel pore, guided mechanistic functional studies. Electrophysiological measurements point to the importance of differing linker structure in both Ca(V)1 and 2 subtypes with mutations affecting both voltage- and calcium-dependent inactivation and voltage dependence of activation. These linker effects persist in the absence of Ca(V)β, pointing to the intrinsic role of the linker in VDCC function and suggesting that I-II linker structure can serve as a brake during inactivation.
电压门控钙通道(VDCCs)允许 Ca(2+)离子通过细胞膜,以响应膜去极化。通道孔形成亚基 α1 和调节亚基(Ca(V)β)形成高亲和力复合物,其中 Ca(V)β 结合到位于 α1 膜结构域 I 和 II 之间的细胞内环的 α1 相互作用域(I-II 环)。我们分别以 1.95 和 2.0 Å 的分辨率确定了 Ca(V)β2 功能核心与 Ca(V)1.2 和 Ca(V)2.2 I-II 环的复合物的晶体结构。对于耦合 Ca(V)β 到通道孔至关重要的高度保守的连接子之间的结构差异,指导了机械功能研究。电生理学测量表明,连接子结构在 Ca(V)1 和 2 亚型中都很重要,突变影响电压和钙依赖性失活以及激活的电压依赖性。在没有 Ca(V)β 的情况下,这些连接子效应仍然存在,这表明连接子在 VDCC 功能中的固有作用,并表明 I-II 连接子结构在失活过程中可以作为制动器。