Rousseau F, Schymkowitz J W, Wilkinson H R, Itzhaki L S
Centre for Protein Engineering, University Chemical Laboratory, Lensfield Road, Cambridge CB2 1EW, United Kingdom.
Proc Natl Acad Sci U S A. 2001 May 8;98(10):5596-601. doi: 10.1073/pnas.101542098.
p13suc1 has two native states, a monomer and a domain-swapped dimer. We show that their folding pathways are connected by the denatured state, which introduces a kinetic barrier between monomer and dimer under native conditions. The barrier is lowered under conditions that speed up unfolding, thereby allowing, to our knowledge for the first time, a quantitative dissection of the energetics of domain swapping. The monomer-dimer equilibrium is controlled by two conserved prolines in the hinge loop that connects the exchanging domains. These two residues exploit backbone strain to specifically direct dimer formation while preventing higher-order oligomerization. Thus, the loop acts as a loaded molecular spring that releases tension in the monomer by adopting its alternative conformation in the dimer. There is an excellent correlation between domain swapping and aggregation, suggesting they share a common mechanism. These insights have allowed us to redesign the domain-swapping propensity of suc1 from a fully monomeric to a fully dimeric protein.
p13suc1有两种天然状态,一种单体状态和一种结构域交换二聚体状态。我们发现它们的折叠途径通过变性状态相连,这在天然条件下在单体和二聚体之间引入了一个动力学屏障。在加速去折叠的条件下,这个屏障会降低,从而据我们所知首次实现了对结构域交换能量学的定量剖析。单体 - 二聚体平衡由连接交换结构域的铰链环中的两个保守脯氨酸控制。这两个残基利用主链应变来特异性地引导二聚体形成,同时防止高阶寡聚化。因此,该环充当了一个加载的分子弹簧,通过在二聚体中采用其替代构象来释放单体中的张力。结构域交换和聚集之间存在极好的相关性,表明它们共享一种共同机制。这些见解使我们能够将suc1的结构域交换倾向从完全单体蛋白重新设计为完全二聚体蛋白。