Petrosky Keiko Y, Ou Horng D, Löhr Frank, Dötsch Volker, Lim Wendell A
Biophysics Graduate Program, University of California, San Francisco, California 94143, USA.
J Biol Chem. 2005 Nov 18;280(46):38528-36. doi: 10.1074/jbc.M506536200. Epub 2005 Sep 7.
LIN-2/7 (L27) domains are protein interaction modules that preferentially hetero-oligomerize, a property critical for their function in directing specific assembly of supramolecular signaling complexes at synapses and other polarized cell-cell junctions. We have solved the solution structure of the heterodimer composed of the L27 domains from LIN-2 and LIN-7. Comparison of this structure with other L27 domain structures has allowed us to formulate a general model for why most L27 domains form an obligate heterodimer complex. L27 domains can be divided in two types (A and B), with each heterodimer comprising an A/B pair. We have identified two keystone positions that play a central role in discrimination. The residues at these positions are energetically acceptable in the context of an A/B heterodimer, but would lead to packing defects or electrostatic repulsion in the context of A/A and B/B homodimers. As predicted by the model, mutations of keystone residues stabilize normally strongly disfavored homodimers. Thus, L27 domains are specifically optimized to avoid homodimeric interactions.
LIN-2/7(L27)结构域是蛋白质相互作用模块,它们优先形成异源寡聚体,这一特性对于其在突触和其他极化细胞间连接中指导超分子信号复合物的特定组装功能至关重要。我们解析了由LIN-2和LIN-7的L27结构域组成的异二聚体的溶液结构。将该结构与其他L27结构域结构进行比较,使我们能够构建一个关于大多数L27结构域为何形成专一性异二聚体复合物的通用模型。L27结构域可分为两种类型(A和B),每个异二聚体由一对A/B组成。我们确定了两个在区分过程中起核心作用的关键位置。这些位置的残基在A/B异二聚体的情况下在能量上是可接受的,但在A/A和B/B同二聚体的情况下会导致堆积缺陷或静电排斥。正如模型所预测的,关键残基的突变会使通常强烈不利的同二聚体稳定。因此,L27结构域经过专门优化以避免同二聚体相互作用。