Hruby V J
Life Sci. 1982 Jul 19;31(3):189-99. doi: 10.1016/0024-3205(82)90578-1.
Determining the relationships between conformation and biological activity in peptide hormones and neurotransmitters is an important goal of contemporary biology. A major difficulty in these studies is the conformational flexibility of most peptides and the high dependence of the conformations on environment. The question arises whether conformations determined in solution are relevant to those important to the peptide at the membrane receptor(s). One recent approach to overcome these difficulties has been the use of conformational constraints by covalent bonding of side chain groups of residues in the peptide. In this manner linear peptides are rendered cyclic, and cyclic peptides are further conformationally constrained either by ring contractions or by other conformational constraints. Biologically active peptides specifically designed by this approach have been found to possess several useful properties including: 1) greater conformational integrity; 2) increased agonist or antagonist potency; 3) prolonged biological activity; 4) increased enzymatic stability; and 5) increased specificity for a particular receptor. Careful applications of this approach have provided important new designs features for peptide structure-function studies, and new insights into peptide conformation-activity relationships for oxytocin, somatostatin, enkephalin, bradykinin, vasopressin, and other biologically active peptides.
确定肽类激素和神经递质的构象与生物活性之间的关系是当代生物学的一个重要目标。这些研究中的一个主要困难是大多数肽的构象灵活性以及构象对环境的高度依赖性。于是就出现了一个问题,即在溶液中确定的构象是否与肽在膜受体处的那些重要构象相关。最近一种克服这些困难的方法是通过肽中残基侧链基团的共价键合来使用构象限制。通过这种方式,线性肽变成环状,并且环状肽通过环收缩或其他构象限制进一步受到构象限制。通过这种方法专门设计的生物活性肽已被发现具有几种有用的特性,包括:1)更高的构象完整性;2)激动剂或拮抗剂效力增加;3)生物活性延长;4)酶稳定性增加;5)对特定受体的特异性增加。这种方法的谨慎应用为肽结构 - 功能研究提供了重要的新设计特征,并为催产素、生长抑素、脑啡肽、缓激肽、血管加压素和其他生物活性肽的肽构象 - 活性关系提供了新的见解。