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重组富含亮氨酸小分子蛋白聚糖调节胶原凝胶的纤维结构和力学性能。

Recombinant Small Leucine-Rich Proteoglycans Modulate Fiber Structure and Mechanical Properties of Collagen Gels.

作者信息

Lopez Serafina G, Moura Henrique Reis, Chow Erik, Kuo Joe Chin-Hun, Paszek Matthew J, Bonassar Lawrence J

机构信息

Meinig of Biomedical Engineering, Cornell University, Ithaca, New York 14853-0001, United States.

Robert Frederick Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York 14853-0001, United States.

出版信息

ACS Biomater Sci Eng. 2025 Jul 14;11(7):4101-4115. doi: 10.1021/acsbiomaterials.5c00732. Epub 2025 Jun 13.

Abstract

Collagen is a key extracellular matrix protein found in connective tissues. The structure and organization of collagen fibers play a crucial role in determining tissue function and how tissues respond to mechanical loads. Small leucine-rich proteoglycans (SLRPs) are well-known facilitators of collagen fibrillogenesis in connective tissues. While the role of SLRPs has been extensively documented in tissues such as tendon and skin, their functions are primarily inferred from changes observed in knockout models. Additionally, their specific roles and influences of their addition to a system, particularly in collagen gel-based materials, remain underexplored. Previous in vitro studies of SLRPs have been partly limited by the challenges associated with obtaining pure SLRPs in sufficient quantities and with appropriate glycosylation. Therefore, novel methods to reliably produce SLRPs at the required quality and scale are needed. In this study, we first evaluated the feasibility of producing recombinant decorin, biglycan, and fibromodulin using HEK293-F cells. Subsequently, we investigated the effect of SLRP supplementation on high-density collagen gels using scanning electron microscopy and assessed the impact on tensile properties. Our findings demonstrated that each SLRP uniquely influenced collagen structure at both the fibril and fiber levels, consequently modifying the tissues' mechanical response to load. Decorin, in particular, exhibited significant differences in tensile properties compared to biglycan and fibromodulin, underscoring its distinct role in promoting a structurally and mechanically robust response under tensile load.

摘要

胶原蛋白是一种在结缔组织中发现的关键细胞外基质蛋白。胶原纤维的结构和组织在决定组织功能以及组织对机械负荷的反应方式方面起着至关重要的作用。富含亮氨酸的小分子蛋白聚糖(SLRPs)是结缔组织中胶原蛋白原纤维形成的著名促进因子。虽然SLRPs在肌腱和皮肤等组织中的作用已被广泛记录,但其功能主要是从基因敲除模型中观察到的变化推断出来的。此外,它们添加到系统中的具体作用和影响,特别是在基于胶原凝胶的材料中,仍未得到充分探索。以前对SLRPs的体外研究部分受到获取足够数量且糖基化适当的纯SLRPs相关挑战的限制。因此,需要可靠地生产所需质量和规模的SLRPs的新方法。在本研究中,我们首先评估了使用HEK293-F细胞生产重组核心蛋白聚糖、双糖链蛋白聚糖和纤调蛋白的可行性。随后,我们使用扫描电子显微镜研究了补充SLRP对高密度胶原凝胶的影响,并评估了对拉伸性能的影响。我们的研究结果表明,每种SLRP在原纤维和纤维水平上对胶原蛋白结构都有独特的影响,从而改变了组织对负荷的机械反应。特别是,与双糖链蛋白聚糖和纤调蛋白相比,核心蛋白聚糖在拉伸性能上表现出显著差异,突出了其在拉伸负荷下促进结构和机械稳健反应方面的独特作用。

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