Itoh Kazuhito, Sasai Masaki
Department of Computational Science and Engineering, Nagoya University, Nagoya 464-8603, Japan.
Proc Natl Acad Sci U S A. 2008 Sep 16;105(37):13865-70. doi: 10.1073/pnas.0804512105. Epub 2008 Sep 4.
Multidomain proteins are ubiquitous in both prokaryotic and eukaryotic proteomes. Study on protein folding, however, has concentrated more on the isolated single domains of proteins, and there have been relatively few systematic studies on the effects of domain-domain interactions on folding. We here discuss this issue by examining human gammaD-crystallin, spore coat protein S, and a tandem array of the R16 and R17 domains of spectrin as example proteins by using a structure-based model of folding. The calculated results consistently explain the experimental data on folding pathways and effects of mutational perturbations, supporting the view that the connectivity of two domains and the distribution of domain-domain interactions in the native conformation are factors to determine kinetic and equilibrium properties of cooperative folding.
多结构域蛋白在原核生物和真核生物的蛋白质组中普遍存在。然而,关于蛋白质折叠的研究更多地集中在蛋白质的孤立单结构域上,而关于结构域间相互作用对折叠影响的系统性研究相对较少。我们在此通过使用基于结构的折叠模型,以人γD-晶状体蛋白、芽孢衣蛋白S以及血影蛋白R16和R17结构域的串联阵列作为示例蛋白来探讨这个问题。计算结果一致地解释了关于折叠途径和突变扰动影响的实验数据,支持了这样一种观点,即两个结构域的连接性以及天然构象中结构域间相互作用的分布是决定协同折叠的动力学和平衡性质的因素。