纤维发生
昼夜节律
内吞循环
细胞生物学
化学
纤维化
生物
神经科学
医学
生物化学
病理
纤维
内吞作用
细胞
作者
Joan Chang,Adam Pickard,Jeremy Herrera,Sarah O’Keefe,Richa Garva,Matthew Hartshorn,Anna Hoyle,Lewis Dingle,John Knox,Thomas A. Jowitt,Madeleine Coy,Jason Wong,Adam J. Reid,Yinhui Lu,Cédric Zeltz,Rajamiyer Venkateswaran,Patrick T. Caswell,Stephen High,Donald Gullberg,Karl E. Kadler
出处
期刊:eLife
[eLife Sciences Publications Ltd]
日期:2025-01-15
卷期号:13
被引量:3
标识
DOI:10.7554/elife.95842.3
摘要
Collagen-I fibrillogenesis is crucial to health and development, where dysregulation is a hallmark of fibroproliferative diseases. Here, we show that collagen-I fibril assembly required a functional endocytic system that recycles collagen-I to assemble new fibrils. Endogenous collagen production was not required for fibrillogenesis if exogenous collagen was available, but the circadian-regulated vacuolar protein sorting (VPS) 33b and collagen-binding integrin α11 subunit were crucial to fibrillogenesis. Cells lacking VPS33B secrete soluble collagen-I protomers but were deficient in fibril formation, thus secretion and assembly are separately controlled. Overexpression of VPS33B led to loss of fibril rhythmicity and overabundance of fibrils, which was mediated through integrin α11β1. Endocytic recycling of collagen-I was enhanced in human fibroblasts isolated from idiopathic pulmonary fibrosis, where VPS33B and integrin α11 subunit were overexpressed at the fibrogenic front; this correlation between VPS33B, integrin α11 subunit, and abnormal collagen deposition was also observed in samples from patients with chronic skin wounds. In conclusion, our study showed that circadian-regulated endocytic recycling is central to homeostatic assembly of collagen fibrils and is disrupted in diseases.
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