Division of Nephrology and Hypertension, Department of Medicine, Vanderbilt University Medical Center, Nashville, Tennessee, USA; Center for Matrix Biology, Vanderbilt University Medical Center, Nashville, Tennessee, USA; Department of Biochemistry, Vanderbilt University, Nashville, Tennessee, USA.
Morphic Therapeutic, Inc, Waltham, Massachusetts, USA.
J Biol Chem. 2023 Jul;299(7):104901. doi: 10.1016/j.jbc.2023.104901. Epub 2023 Jun 10.
Collagen superfamily of proteins is a major component of the extracellular matrix. Defects in collagens underlie the cause of nearly 40 human genetic diseases in millions of people worldwide. Pathogenesis typically involves genetic alterations of the triple helix, a hallmark structural feature that bestows exceptional mechanical resistance to tensile forces and a capacity to bind a plethora of macromolecules. Yet, there is a paramount knowledge gap in understanding the functionality of distinct sites along the triple helix. Here, we present a recombinant technique to produce triple helical fragments for functional studies. The experimental strategy utilizes the unique capacity of the NC2 heterotrimerization domain of collagen IX to drive three α-chain selection and registering the triple helix stagger. For proof of principle, we produced and characterized long triple helical fragments of collagen IV that were expressed in a mammalian system. The heterotrimeric fragments encompassed the CB3 trimeric peptide of collagen IV, which harbors the binding motifs for αβ and αβ integrins. Fragments were characterized and shown to have a stable triple helix, post-translational modifications, and high affinity and specific binding of integrins. The NC2 technique is a universal tool for the high-yield production of heterotrimeric fragments of collagens. Fragments are suitable for mapping functional sites, determining coding sequences of binding sites, elucidating pathogenicity and pathogenic mechanisms of genetic mutations, and production of fragments for protein replacement therapy.
胶原蛋白超家族蛋白是细胞外基质的主要成分。胶原蛋白的缺陷是全球数百万人近 40 种人类遗传性疾病的病因。发病机制通常涉及三螺旋的遗传改变,这是一种标志性的结构特征,赋予了其对拉伸力的非凡机械抵抗力和结合大量大分子的能力。然而,人们对理解三螺旋上不同部位的功能存在着至关重要的知识空白。在这里,我们提出了一种生产用于功能研究的三螺旋片段的重组技术。该实验策略利用了胶原蛋白 IX 的 NC2 异三聚化结构域的独特能力,驱动三个α链的选择和注册三螺旋的交错。作为原理验证,我们在哺乳动物系统中表达并表征了长的胶原蛋白 IV 的三螺旋片段。异三聚体片段包含胶原蛋白 IV 的 CB3 三聚体肽,其具有与αβ和αβ整联蛋白结合的基序。对片段进行了表征,并显示其具有稳定的三螺旋、翻译后修饰以及整联蛋白的高亲和力和特异性结合。NC2 技术是生产胶原蛋白异三聚体片段的通用工具,产量高。片段适用于绘制功能位点、确定结合位点的编码序列、阐明遗传突变的致病性和发病机制以及用于蛋白质替代疗法的片段生产。