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IV 型胶原在肾小球基底膜疾病中的功能障碍。III. α345 六聚体组装的功能框架。

Collagen IV dysfunction in glomerular basement membrane diseases. III. A functional framework for α345 hexamer assembly.

机构信息

Department of Medicine, Division of Nephrology and Hypertension, Vanderbilt University Medical Center, Nashville, Tennessee, USA; Center for Matrix Biology, Vanderbilt University Medical Center, Nashville, Tennessee, USA.

Department of Medicine, Division of Nephrology and Hypertension, Vanderbilt University Medical Center, Nashville, Tennessee, USA; Center for Matrix Biology, Vanderbilt University Medical Center, Nashville, Tennessee, USA; Department of Biochemistry, Center for Structural Biology, Vanderbilt University, Nashville, Tennessee, USA.

出版信息

J Biol Chem. 2021 Jan-Jun;296:100592. doi: 10.1016/j.jbc.2021.100592. Epub 2021 Mar 26.

Abstract

We identified a genetic variant, an 8-residue appendage, of the α345 hexamer of collagen IV present in patients with glomerular basement membrane diseases, Goodpasture's disease and Alport syndrome, and determined the long-awaited crystal structure of the hexamer. We sought to elucidate how variants cause glomerular basement membrane disease by exploring the mechanism of the hexamer assembly. Chloride ions induced in vitro hexamer assembly in a composition-specific manner in the presence of equimolar concentrations of α3, α4, and α5 NC1 monomers. Chloride ions, together with sulfilimine crosslinks, stabilized the assembled hexamer. Furthermore, the chloride ion-dependent assembly revealed the conformational plasticity of the loop-crevice-loop bioactive sites, a critical property underlying bioactivity and pathogenesis. We explored the native mechanism by expressing recombinant α345 miniprotomers in the cell culture and characterizing the expressed proteins. Our findings revealed NC1-directed trimerization, forming protomers inside the cell; hexamerization, forming scaffolds outside the cell; and a Cl gradient-signaled hexamerization. This assembly detail, along with a crystal structure, provides a framework for understanding hexamer dysfunction. Restoration of the native conformation of bioactive sites and α345 hexamer replacement are prospective approaches to therapeutic intervention.

摘要

我们鉴定出一种存在于肾小球基底膜疾病、Goodpasture 病和 Alport 综合征患者胶原 IVα345 六聚体中的遗传变异体,即一个 8 残基的附加物,并确定了六聚体的预期已久的晶体结构。我们试图通过探索六聚体组装的机制来阐明变异体如何导致肾小球基底膜疾病。在等摩尔浓度的α3、α4 和α5 NC1 单体存在下,氯离子以组成特异性的方式诱导体外六聚体组装。氯离子与亚磺酰亚胺交联一起稳定组装的六聚体。此外,氯离子依赖性组装揭示了活性位点的环裂环构象可塑性,这是生物活性和发病机制的关键特性。我们通过在细胞培养中表达重组α345 微原聚体并对表达的蛋白进行表征,探索了天然机制。我们的研究结果揭示了 NC1 指导的三聚体化,在细胞内形成原聚体;六聚体化,在细胞外形成支架;以及氯离子梯度信号诱导的六聚体化。该组装细节以及晶体结构为理解六聚体功能障碍提供了框架。恢复生物活性位点的天然构象和替代α345 六聚体是治疗干预的有前途的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/07cc/8099640/b632439ba269/gr1.jpg

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