Sheckler Lauren R, Henry Lisa, Sugita Shuzo, Südhof Thomas C, Rudenko Gabby
Life Sciences Institute and Department of Pharmacology, The University of Michigan, Ann Arbor, Michigan 48109-2216, USA.
J Biol Chem. 2006 Aug 11;281(32):22896-905. doi: 10.1074/jbc.M603464200. Epub 2006 Jun 13.
Neurexins mediate protein interactions at the synapse, playing an essential role in synaptic function. Extracellular domains of neurexins, and their fragments, bind a distinct profile of different proteins regulated by alternative splicing and Ca2+. The crystal structure of n1alpha_LNS#2 (the second LNS/LG domain of bovine neurexin 1alpha) reveals large structural differences compared with n1alpha_LNS#6 (or n1beta_LNS), the only other LNS/LG domain for which a structure has been determined. The differences overlap the so-called hyper-variable surface, the putative protein interaction surface that is reshaped as a result of alternative splicing. A Ca2+-binding site is revealed at the center of the hyper-variable surface next to splice insertion sites. Isothermal titration calorimetry indicates that the Ca2+-binding site in n1alpha_LNS#2 has low affinity (Kd approximately 400 microm). Ca2+ binding ceases to be measurable when an 8- or 15-residue splice insert is present at the splice site SS#2 indicating that alternative splicing can affect Ca2+-binding sites of neurexin LNS/LG domains. Our studies initiate a framework for the putative protein interaction sites of neurexin LNS/LG domains. This framework is essential to understand how incorporation of alternative splice inserts expands the information from a limited set of neurexin genes to produce a large array of synaptic adhesion molecules with potentially very different synaptic function.
神经连接蛋白介导突触处的蛋白质相互作用,在突触功能中发挥着至关重要的作用。神经连接蛋白的细胞外结构域及其片段可结合由可变剪接和Ca2+调节的不同蛋白质的独特组合。n1alpha_LNS#2(牛神经连接蛋白1alpha的第二个LNS/LG结构域)的晶体结构与n1alpha_LNS#6(或n1beta_LNS,唯一已确定结构的其他LNS/LG结构域)相比,显示出很大的结构差异。这些差异与所谓的高变表面重叠,高变表面是假定的蛋白质相互作用表面,由于可变剪接而重塑。在高变表面中心靠近剪接插入位点处发现了一个Ca2+结合位点。等温滴定量热法表明,n1alpha_LNS#2中的Ca2+结合位点亲和力较低(Kd约为400微摩尔)。当剪接位点SS#2存在8个或15个残基的剪接插入时,Ca2+结合不再可测,这表明可变剪接可影响神经连接蛋白LNS/LG结构域的Ca2+结合位点。我们的研究为神经连接蛋白LNS/LG结构域的假定蛋白质相互作用位点建立了一个框架。这个框架对于理解可变剪接插入的纳入如何从有限的神经连接蛋白基因集合中扩展信息以产生大量具有潜在非常不同突触功能的突触粘附分子至关重要。