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利用细菌胶原蛋白研究血管性埃勒斯-当洛综合征相关甘氨酸替代对结构、功能和力学的影响。

Impact of vascular Ehlers-Danlos Syndrome-associated Gly substitutions on structure, function, and mechanics using bacterial collagen.

作者信息

Gahlawat Sonal, Siess Jan, Losada Natalie, Timm Jennifer, Nanda Vikas, Shreiber David I

机构信息

Department of Biomedical Engineering, Rutgers University - New Brunswick, Piscataway, New Jersey 08854, United States.

Institute for Quantitative Biomedicine, Rutgers University, Piscataway, New Jersey 08854, United States; Center for Advanced Biotechnology and Medicine, Robert Wood Johnson Medical School, Rutgers University, Piscataway, New Jersey 08854, United States.

出版信息

Matrix Biol. 2025 Feb;135:87-98. doi: 10.1016/j.matbio.2024.12.002. Epub 2024 Dec 6.

Abstract

Vascular Ehlers-Danlos syndrome (vEDS) arises from mutations in collagen-III, a major structural component of the extracellular matrix (ECM) in vascularized tissues, including blood vessels. Fibrillar collagens form a triple-helix that is characterized by a canonical (Gly-X-Y) sequence. The substitution of another amino acid for Gly within this conserved repeating sequence is associated with several hereditary connective tissue disorders, including vEDS. The clinical severity of vEDS depends on the identity of the substituted amino acid and its location. In this study, we engineered recombinant bacterial collagen-like proteins (CLPs) with previously reported Gly→X (X=Ser or Arg) vEDS substitutions within the integrin-binding site. Employing a combination of biophysical techniques, enzymatic digestion assays, integrin binding affinity assays, and computational modeling, we assessed the impact of Gly→X substitutions on structure, stability, function, and mechanical properties. While constructs with Ser or Arg substitutions maintained a triple-helix structure, Arg substitution significantly reduced global thermal stability, heightened susceptibility to trypsin digestion, and altered integrin α2-inserted (α2I) domain binding. Molecular dynamics (MD) simulations also demonstrated distinct effects of different Gly substitutions on the triple-helix structure - Arg substitutions induced notable bulging at the substitution site and disrupted interchain hydrogen bonds compared to Ser substitutions. Additionally, steered MD simulations revealed that Arg substitution led to a significant decrease in the Young's modulus of the triple-helix. Bacterial CLPs have proved to be a powerful model for studying the underlying mechanisms of vEDS-causing mutations in collagen-III. Serine and arginine substitutions differentially perturb cell-matrix interactions and ECM in a manner consistent with clinical vEDS severity.

摘要

血管型埃勒斯-当洛综合征(vEDS)源于胶原蛋白III的突变,胶原蛋白III是血管化组织(包括血管)细胞外基质(ECM)的主要结构成分。纤维状胶原蛋白形成三螺旋结构,其特征在于具有典型的(甘氨酸- X - 酪氨酸)序列。在这个保守的重复序列中,用另一种氨基酸取代甘氨酸与几种遗传性结缔组织疾病有关,包括vEDS。vEDS的临床严重程度取决于取代氨基酸的种类及其位置。在本研究中,我们构建了重组细菌胶原蛋白样蛋白(CLP),其在整合素结合位点具有先前报道的甘氨酸→X(X = 丝氨酸或精氨酸)的vEDS取代。我们结合使用生物物理技术、酶消化试验、整合素结合亲和力试验和计算建模,评估了甘氨酸→X取代对结构、稳定性、功能和机械性能的影响。虽然丝氨酸或精氨酸取代的构建体保持了三螺旋结构,但精氨酸取代显著降低了整体热稳定性,增加了对胰蛋白酶消化的敏感性,并改变了整合素α2插入(α2I)结构域的结合。分子动力学(MD)模拟也证明了不同甘氨酸取代对三螺旋结构的不同影响——与丝氨酸取代相比,精氨酸取代在取代位点引起明显的凸起并破坏了链间氢键。此外,定向MD模拟显示精氨酸取代导致三螺旋杨氏模量显著降低。细菌CLP已被证明是研究胶原蛋白III中导致vEDS突变的潜在机制的有力模型。丝氨酸和精氨酸取代以与临床vEDS严重程度一致的方式不同程度地扰乱细胞-基质相互作用和ECM。

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