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Engineered approaches to the stem cell microenvironment for cardiac tissue regeneration

机译:心脏组织再生的干细胞微环境工程化方法

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Micro- and nanoscale engineering approaches in medicine have the potential to recreate physiologically relevant stem cell microenvironments to enhance our understanding of stem cell behaviour and bring stem cell therapy closer to fruition. The realization of such advancements will impact a number of therapeutic applications, the most immediate of which may be the repair of heart tissue. Despite profound advances in creating physiologically relevant in vivo stem cell niches through the control of biochemical regulatory factors, further synergism of innovative techniques promise to elucidate the impact of a number of physical cues such as stem cell differentiation into cardiac cells, the electromechanical coupling among these cells, and the formation of bioengineered cardiac tissue grafts. This review examines the recent physiologically relevant micro- and nanoengineering efforts that have been made to address these factors. In Sections II and III, we introduce the traditional focuses of stem cell derived cardiac tissue: differentiation directed by transcription factors and structural cues within the stem cell niche. However, the majority of this review, Sections IV-VII, endeavours to highlight innovative and unconventional microscale engineering techniques that have employed topographic, biomaterial, microfluidic, mechanical, electrical, and optical stimulation for stem cell based cardiac tissue engineering.
机译:医学中的微米级和纳米级工程方法有可能重建生理相关的干细胞微环境,以增强我们对干细胞行为的理解,并使干细胞疗法更接近于实现。这种进步的实现将影响许多治疗应用,其中最直接的可能是心脏组织的修复。尽管通过生化调节因子的控制在创造生理相关的体内干细胞壁ches方面取得了重大进展,但创新技术的进一步协同作用有望阐明许多物理线索的影响,例如干细胞分化为心脏细胞,这些之间的机电耦合细胞,并形成生物工程心脏组织移植物。这项审查审查了最近生理上相关的微观和纳米工程方面的努力,以解决这些因素。在第二节和第三节中,我们介绍了干细胞衍生的心脏组织的传统焦点:由干细胞生态位内的转录因子和结构提示指导的分化。然而,本文的第四部分至第七部分主要着重于介绍创新的和非常规的微型工程技术,这些技术已将地形,生物材料,微流体,机械,电和光学刺激应用于基于干细胞的心脏组织工程。

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