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作为评估主动脉瓣基质依赖性发病机制的平台的异质多层组织构建体。

Heterogeneous multi-laminar tissue constructs as a platform to evaluate aortic valve matrix-dependent pathogenicity.

机构信息

Department of Bioengineering, Rice University, Houston, TX 77005, USA.

Department of Bioengineering, Rice University, Houston, TX 77005, USA.

出版信息

Acta Biomater. 2019 Oct 1;97:420-427. doi: 10.1016/j.actbio.2019.07.046. Epub 2019 Jul 27.

Abstract

Designing and constructing controlled in vitro cell culture platforms is imperative toward pinpointing factors that contribute to the development of calcific aortic valve disease. A 3D, laminar, filter paper-based cell culture system that was previously established as a method of analyzing valvular interstitial cell migration and protein expression was adapted here for studying the impact of specific extracellular matrix proteins on cellular viability and calcification proclivity. Hydrogels incorporating hyaluronan and collagen I, two prevalent valvular extracellular matrix proteins with altered pathological production, were designed with similar mechanics to parse out effects of the individual proteins on cell behavior. Laminar constructs containing varying combinations of discrete layers of collagen and hyaluronan were assembled to mimic native and pathological valve compositions. Proteinaceous and genetic expression patterns pertaining to cell viability and calcific potential were quantified via fluorescent imaging. A significant dose-dependency was observed, with increased collagen content associated with decreased viability and increased calcific phenotype. These results suggest that extracellular composition is influential in calcific aortic valve disease progression and will be key toward development of future tissue-engineered or pharmaceutical calcific aortic valve treatments. STATEMENT OF SIGNIFICANCE: Calcific aortic valve disease (CAVD), a widespread heart valve disorder, is characterized by fibrotic leaflet thickening and calcific nodule formation. This pathological remodeling is an active process mediated by the valvular interstitial cells (VICs). Currently, the only treatment available is surgical replacement of the valve - a procedure associated with significant long-term risk and morbidity. Development of effective alternate therapies is hindered by our poor understanding of CAVD etiology. Previous work has implicated the composition and mechanics of the extracellular matrix in the progression of CAVD. These individual factors and their magnitude of influence have not been extensively explored - particularly in 3D systems. Here, we have bridged this gap in understanding through the employment of a heterogeneous 3D filter-paper culture system.

摘要

设计和构建受控的体外细胞培养平台对于确定导致钙化性主动脉瓣疾病发展的因素至关重要。先前建立的一种 3D、层流、滤纸基细胞培养系统被用作分析瓣膜间质细胞迁移和蛋白表达的方法,在此基础上进行了适应性改造,用于研究特定细胞外基质蛋白对细胞活力和钙化倾向的影响。包含透明质酸和胶原 I 的水凝胶,这两种常见的瓣膜细胞外基质蛋白在病理产生中发生改变,其设计力学类似于解析单个蛋白对细胞行为的影响。设计了包含不同组合的胶原和透明质酸离散层的层流结构,以模拟天然和病理性瓣膜组成。通过荧光成像定量测定与细胞活力和钙化潜力相关的蛋白表达和遗传表达模式。观察到显著的剂量依赖性,随着胶原含量的增加,细胞活力降低,钙化表型增加。这些结果表明细胞外组成对钙化性主动脉瓣疾病的进展有影响,这将是开发未来组织工程或药物治疗钙化性主动脉瓣疾病的关键。意义声明:钙化性主动脉瓣疾病(CAVD)是一种广泛存在的心脏瓣膜疾病,其特征是瓣叶纤维化增厚和钙化结节形成。这种病理性重塑是由瓣膜间质细胞(VICs)介导的活跃过程。目前,唯一可用的治疗方法是瓣膜置换手术-该手术与显著的长期风险和发病率相关。有效的替代疗法的发展受到我们对 CAVD 病因学理解的限制。先前的工作已经暗示了细胞外基质的组成和力学在 CAVD 的进展中的作用。这些单独的因素及其影响的程度尚未得到广泛探索-特别是在 3D 系统中。在这里,我们通过使用异质 3D 滤纸培养系统弥补了这一理解差距。

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