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将小儿猪肺动脉瓣作为组织工程心脏瓣膜模型的特性研究。

Characterization of pediatric porcine pulmonary valves as a model for tissue engineered heart valves.

机构信息

Translational Biology and Engineering Program, Ted Rogers Centre for Heart Research, Toronto, Canada; Institute of Biomedical Engineering, University of Toronto, Toronto, Canada.

Translational Biology and Engineering Program, Ted Rogers Centre for Heart Research, Toronto, Canada; Institute of Biomedical Engineering, University of Toronto, Toronto, Canada; Department of Mechanical and Industrial Engineering, University of Toronto, Toronto, Canada.

出版信息

Acta Biomater. 2024 Oct 15;188:242-252. doi: 10.1016/j.actbio.2024.08.050. Epub 2024 Sep 2.

Abstract

Heart valve tissue engineering holds the potential to transform the surgical management of congenital heart defects affecting the pediatric pulmonary valve (PV) by offering a viable valve replacement. While aiming to recapitulate the native valve, the minimum requirement for tissue engineered heart valves (TEHVs) has historically been adequate mechanical function at implantation. However, long-term in situ functionality of TEHVs remains elusive, suggesting that a closer approximation of the native valve is required. The realization of biomimetic engineered pediatric PV is impeded by insufficient characterization of healthy pediatric tissue. In this study, we comprehensively characterized the planar biaxial tensile behaviour, extracellular matrix (ECM) composition and organization, and valvular interstitial cell (VIC) phenotypes of PVs from piglets to provide benchmarks for TEHVs. The piglet PV possessed an anisotropic and non-linear tension-strain profile from which material constants for a predictive constitutive model were derived. The ECM of the piglet PV possessed a trilayer organization populated by collagen, glycosaminoglycans, and elastin. Biochemical quantification of ECM content normalized to wet weight and DNA content of PV tissue revealed homogeneous distribution across sampled regions of the leaflet. Finally, VICs in the piglet PV were primarily quiescent vimentin-expressing fibroblasts, with a small proportion of activated α-smooth muscle actin-expressing myofibroblasts. Overall, piglet PV properties were consistent with those reported anecdotally for pediatric human PVs and distinct from those of adult porcine and human PVs, supporting the utility of the properties determined here to inform the design of tissue engineered pediatric PVs. STATEMENT OF SIGNIFICANCE: Heart valve tissue engineering has the potential to transform treatment for children born with defective pulmonary valves by providing living replacement tissue that can grow with the child. The design of tissue engineered heart valves is best informed by native valve properties, but native pediatric pulmonary valves have not been fully described to date. Here, we provide comprehensive characterization of the planar biaxial tensile behaviour, extracellular matrix composition and organization, and valvular interstitial cell phenotypes of pulmonary valves from piglets as a model for the native human pediatric valve. Together, these findings provide standards that inform engineered heart valve design towards generation of biomimetic pediatric pulmonary valves.

摘要

心脏瓣膜组织工程具有改变先天性心脏病(影响儿科肺动脉瓣(PV))手术管理的潜力,通过提供可行的瓣膜替代物。虽然旨在重现天然瓣膜,但组织工程心脏瓣膜(TEHV)的最低要求是在植入时具有足够的机械功能。然而,TEHV 的长期原位功能仍然难以捉摸,这表明需要更接近天然瓣膜。由于对健康儿科组织的特征描述不足,仿生工程儿科 PV 的实现受到阻碍。在这项研究中,我们全面描述了从仔猪到 PV 的平面双轴拉伸行为、细胞外基质(ECM)组成和组织以及瓣膜间质细胞(VIC)表型,为 TEHV 提供了基准。仔猪 PV 具有各向异性和非线性的张力-应变曲线,从中得出了预测本构模型的材料常数。仔猪 PV 的 ECM 具有三层组织,由胶原蛋白、糖胺聚糖和弹性蛋白组成。通过对 ECM 含量进行生物化学定量,以湿重和 PV 组织的 DNA 含量为归一化,揭示了叶瓣取样区域的均匀分布。最后,仔猪 PV 中的 VIC 主要是静止的波形蛋白表达成纤维细胞,少量是激活的α-平滑肌肌动蛋白表达的肌成纤维细胞。总的来说,仔猪 PV 的特性与据报道的儿科人类 PV 的特性一致,与成年猪和人类 PV 的特性不同,支持这里确定的特性有助于为组织工程儿科 PV 的设计提供信息。

意义声明

心脏瓣膜组织工程有可能通过提供可以随儿童生长的活替代组织来改变患有先天性缺陷的儿童的治疗方法。组织工程心脏瓣膜的设计最好基于天然瓣膜的特性,但迄今为止,尚未对天然儿科肺动脉瓣进行全面描述。在这里,我们提供了仔猪肺动脉瓣的平面双轴拉伸行为、细胞外基质组成和组织以及瓣膜间质细胞表型的全面描述,作为天然人类儿科瓣膜的模型。这些发现共同提供了标准,为生成仿生儿科肺动脉瓣的工程心脏瓣膜设计提供了信息。

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