Brodsky Barbara, Persikov Anton V
Department of Biochemistry, University of Medicine and Dentistry of New Jersey, Robert Wood Johnson Medical School, Piscataway, New Jersey 08854, USA.
Adv Protein Chem. 2005;70:301-39. doi: 10.1016/S0065-3233(05)70009-7.
The molecular conformation of the collagen triple helix confers strict amino acid sequence constraints, requiring a (Gly-X-Y)(n) repeating pattern and a high content of imino acids. The increasing family of collagens and proteins with collagenous domains shows the collagen triple helix to be a basic motif adaptable to a range of proteins and functions. Its rodlike domain has the potential for various modes of self-association and the capacity to bind receptors, other proteins, GAGs, and nucleic acids. High-resolution crystal structures obtained for collagen model peptides confirm the supercoiled triple helix conformation, and provide new information on hydrogen bonding patterns, hydration, sidechain interactions, and ligand binding. For several peptides, the helix twist was found to be sequence dependent, and such variation in helix twist may serve as recognition features or to orient the triple helix for binding. Mutations in the collagen triple-helix domain lead to a variety of human disorders. The most common mutations are single-base substitutions that lead to the replacement of one Gly residue, breaking the Gly-X-Y repeating pattern. A single Gly substitution destabilizes the triple helix through a local disruption in hydrogen bonding and produces a discontinuity in the register of the helix. Molecular information about the collagen triple helix and the effect of mutations will lead to a better understanding of function and pathology.
胶原蛋白三螺旋的分子构象赋予了严格的氨基酸序列限制,要求具有(Gly-X-Y)(n)重复模式和高含量的亚氨基酸。越来越多的胶原蛋白家族以及具有胶原结构域的蛋白质表明,胶原蛋白三螺旋是一种可适应多种蛋白质和功能的基本基序。其杆状结构域具有多种自缔合模式的潜力,以及结合受体、其他蛋白质、糖胺聚糖和核酸的能力。针对胶原蛋白模型肽获得的高分辨率晶体结构证实了超螺旋三螺旋构象,并提供了关于氢键模式、水合作用、侧链相互作用和配体结合的新信息。对于几种肽,发现螺旋扭曲与序列有关,并且这种螺旋扭曲的变化可能作为识别特征或使三螺旋定向以进行结合。胶原蛋白三螺旋结构域中的突变会导致多种人类疾病。最常见的突变是单碱基取代,导致一个甘氨酸残基被替换,打破了Gly-X-Y重复模式。单个甘氨酸取代会通过氢键的局部破坏使三螺旋不稳定,并在螺旋的排列中产生不连续性。关于胶原蛋白三螺旋的分子信息以及突变的影响将有助于更好地理解其功能和病理学。