Kamtekar S, Hecht M H
Department of Chemistry, Princeton University, New Jersey 08544-1009, USA.
FASEB J. 1995 Aug;9(11):1013-22. doi: 10.1096/fasebj.9.11.7649401.
The four-helix bundle motif occurs in many structural contexts and in proteins that are functionally diverse. The motif can be classified into individual folds on the basis of topological and geometric properties. It has been thoroughly investigated structurally by both nuclear magnetic resonance and x-ray crystallography. Many mutants of four-helix bundles have been generated, and the motif has also been the target of de novo design studies. Taken together, these studies provide an opportunity to examine many of the forces governing protein folding. In this article we consider the relative importance of the burial of hydrophobic residues, loss of conformational entropy, packing interactions, interhelical turn composition, and helical dipole interactions all within the context of a single folding motif. We conclude by examining why de novo designed four-helix bundle proteins possess flexible interiors, and possible mechanisms by which natural proteins may lock their cores into rigid structures.
四螺旋束基序出现在许多结构背景以及功能多样的蛋白质中。基于拓扑和几何特性,该基序可被分类为不同的折叠形式。它已通过核磁共振和X射线晶体学在结构上进行了深入研究。已经产生了许多四螺旋束的突变体,并且该基序也是从头设计研究的目标。综合来看,这些研究为研究许多控制蛋白质折叠的作用力提供了机会。在本文中,我们在单一折叠基序的背景下考虑疏水残基埋藏、构象熵损失、堆积相互作用、螺旋间转角组成以及螺旋偶极相互作用的相对重要性。我们通过研究为何从头设计的四螺旋束蛋白具有灵活的内部结构以及天然蛋白可能将其核心锁定为刚性结构的潜在机制来得出结论。