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首页> 外文期刊>Tissue engineering, Part C. Methods >Deformation-controlled load application in heart valve tissue engineering.
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Deformation-controlled load application in heart valve tissue engineering.

机译:变形控制的负荷在心脏瓣膜组织工程中的应用。

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摘要

In cardiovascular tissue engineering, mechanical stimulation of tissue-engineered constructs is known to improve tissue properties. During tissue culture, the mechanical properties of the tissue construct change. To impose a predefined deformation protocol and to avoid negative effects of excessive strain, it is desired to monitor and control deformations during load application. In a previous study, load application and resulting deformation of tissue-engineered heart valve leaflets were monitored during culture inside a bioreactor in real time and noninvasively. A combined experimental-numerical approach was applied to assess volumetric and local leaflet deformation of the cultured heart valve in a diastolic configuration. In this study, this approach was further developed and a feedback controller to regulate deformation was incorporated into the bioreactor system. Functionality of this technique was demonstrated in two tissue engineering experiments in which a total of eight heart valves were cultured by application of two different deformation protocols. Results indicated a good correspondence between the measured and the prescribed deformation values in both experiments. In addition, the cultured heart valves showed mechanical properties in the range of previous tissue engineering studies. The bioreactor system including the deformation measurement and control features has promising possibilities of systematically elucidating the effects of loading protocols on tissue properties. In conclusion, it facilitates the development of an optimal conditioning protocol for tissue engineering of aortic heart valves.
机译:在心血管组织工程中,已知对组织工程构建体的机械刺激可改善组织特性。在组织培养期间,组织构建体的机械性能发生变化。为了施加预定的变形方案并避免过度应变的负面影响,期望在载荷施加期间监视和控制变形。在先前的研究中,在生物反应器内部进行培养的过程中,实时且无创地监测了负荷量以及组织工程化心脏瓣膜小叶的变形。结合实验-数值方法来评估舒张期配置的心脏瓣膜的体积和局部小叶变形。在这项研究中,该方法得到了进一步发展,并将调节变形的反馈控制器并入了生物反应器系统。这项技术的功能在两个组织工程实验中得到了证明,其中通过应用两个不同的变形规程培养了总共八个心脏瓣膜。结果表明,在两个实验中,测量值和规定的变形值之间都具有良好的对应关系。此外,培养的心脏瓣膜在先前的组织工程研究范围内显示出机械性能。包括变形测量和控制功能的生物反应器系统具有系统地阐明加载方案对组织特性的影响的有希望的可能性。总之,它有助于开发用于主动脉心脏瓣膜组织工程的最佳调节方案。

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