Macromolecular crowding enhances fibrillin-1 deposition in the extracellular matrix.

IF 3.2 3区 医学 Q3 CELL & TISSUE ENGINEERING
B Satz-Jacobowitz, N Taye, S Z Karoulias, D Hubmacher
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Abstract

Biochemical and biophysical factors need consideration when modelling in vivo cellular behaviour using in vitro cell culture systems. One underappreciated factor is the high concentration of macromolecules present in vivo, which is typically not simulated under standard cell culture conditions. This disparity is especially relevant when studying biochemical processes that govern extracellular matrix (ECM) deposition, which may be altered due to dilution of secreted macromolecules by the relatively large volumes of culture medium required for cell maintenance in vitro. Macromolecular crowding (MMC) utilises the addition of inert macromolecules to cell culture medium to mimic such high concentration environments found in vivo. The present study induced MMC using the sucrose polymer Ficoll and examined whether fibrillin-1 deposition by human lung fibroblasts could be augmented. Fibrillin-1 forms extracellular microfibrils, which are versatile scaffolds required for elastic fibre formation, deposition of other ECM proteins and growth factor regulation. Pathogenic variants in the fibrillin-1 gene (FBN1) cause Marfan syndrome, where ECM deposition of fibrillin-1 can be compromised. Using immunocytochemistry, significantly enhanced fibrillin-1 deposition was observed when lung fibroblasts were cultured under MMC conditions. MMC also augmented fibrillin-1 deposition in Marfan syndrome patient-derived skin fibroblasts in a cell line- and likely FBN1 variant-specific manner. The ability of MMC to increase fibrillin-1 deposition suggested potential applications for tissue-engineering approaches, e.g. to generate tendon or vascular tissues, where fibrillin-1 microfibrils and elastic fibres are key determinants of their biomechanical properties. Moreover, it suggested the potency of MMC to better mimic in vivo ECM environments in cell culture studies.

大分子拥挤增强纤维蛋白-1在细胞外基质中的沉积。
当使用体外细胞培养系统模拟体内细胞行为时,需要考虑生化和生物物理因素。一个未被重视的因素是体内存在高浓度的大分子,这在标准细胞培养条件下通常无法模拟。在研究控制细胞外基质(ECM)沉积的生化过程时,这种差异尤其重要,因为细胞维持所需的相对大体积培养基可能会稀释分泌的大分子,从而改变细胞外基质沉积的生化过程。大分子拥挤(MMC)利用惰性大分子添加到细胞培养基中来模拟体内这种高浓度环境。本研究使用蔗糖聚合物Ficoll诱导MMC,并检测是否能增强人肺成纤维细胞的纤维蛋白-1沉积。纤维蛋白-1形成细胞外微原纤维,是弹性纤维形成、其他ECM蛋白沉积和生长因子调节所需的多功能支架。纤维蛋白1基因(FBN1)的致病性变异导致马凡氏综合征,其中纤维蛋白1的ECM沉积可能受到损害。免疫细胞化学观察发现,MMC条件下肺成纤维细胞的纤维蛋白-1沉积明显增强。MMC还以细胞系特异性和可能的FBN1变异特异性的方式增强了马凡氏综合征患者来源的皮肤成纤维细胞中的纤维蛋白-1沉积。MMC增加纤维蛋白-1沉积的能力表明了组织工程方法的潜在应用,例如产生肌腱或血管组织,其中纤维蛋白-1微原纤维和弹性纤维是其生物力学性能的关键决定因素。此外,这表明MMC在细胞培养研究中可以更好地模拟体内ECM环境。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
European cells & materials
European cells & materials 生物-材料科学:生物材料
CiteScore
6.00
自引率
6.50%
发文量
55
审稿时长
1.5 months
期刊介绍: eCM provides an interdisciplinary forum for publication of preclinical research in the musculoskeletal field (Trauma, Maxillofacial (including dental), Spine and Orthopaedics). The clinical relevance of the work must be briefly mentioned within the abstract, and in more detail in the paper. Poor abstracts which do not concisely cover the paper contents will not be sent for review. Incremental steps in research will not be entertained by eCM journal.Cross-disciplinary papers that go across our scope areas are welcomed.
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