Effects of PDMS culture on stem cell differentiation towards definitive endoderm and hepatocytes.

Christopher T Clark, Yao Wang, Devin C Johnson, Seohyun C Lee, Quinton Smith
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Abstract

The generation of human induced pluripotent stem cell (hiPSC) derivatives for regenerative medicine applications holds tremendous promise in treating various disorders. One critical target includes liver disease, in which the primary curative treatment is a cellular transplant aimed to restore the lost function of hepatocytes. In an effort to improve the differentiation of hiPSC-derived liver tissue, we manipulated the mechanical conditions of endoderm specification through directed perturbation of the cytoskeleton and through 2D substrate culture on viscoelastic materials. Through a combination of qRT-PCR, immunofluorescence staining, and functional assays, we found that mechanical cues can bias endoderm specification in an actomyosin and Yes-associated protein (YAP) dependent manner, unveiling new insights into mechanotransduction in germ layer specification and downstream maturation toward parenchymal cells. STATEMENT OF SIGNIFICANCE: The translational potential of using human induced pluripotent stem cell (hiPSC) derived hepatocytes to therapeutically improve impaired liver function holds great clinical promise. However, challenges remain in efficiently differentiating functional hepatocytes with mature marker expression. In an effort to improve the differentiation efficiency of hepatocytes, the role of early mechanosensing mechanisms was investigated in the specification of hiPSCs to definitive endoderm progenitor populations. Through a combination of cytoskeletal modulation, control of mechanoresponsive, yes-associated protein expression, and culture on physiologically compliant PDMS substrates, we found that soft environments not only improve progenitor specification but also impact the downstream functionality of differentiated hepatocytes. These results contribute to the collective appreciation that mechanical cues are critical in developmental processes.

PDMS培养对干细胞向最终内胚层和肝细胞分化的影响。
用于再生医学的人类诱导多能干细胞(hiPSC)衍生物的产生在治疗各种疾病方面具有巨大的前景。一个关键的目标包括肝病,其中主要的治愈治疗是旨在恢复肝细胞丧失功能的细胞移植。为了提高hipsc衍生的肝组织的分化,我们通过对细胞骨架的定向扰动和在粘弹性材料上的二维底物培养来操纵内胚层规格的机械条件。通过qRT-PCR、免疫荧光染色和功能分析的结合,我们发现机械提示可以以肌动球蛋白和yes相关蛋白(YAP)依赖的方式影响内胚层规范,揭示了胚层规范和向实质细胞下游成熟的机械转导的新见解。意义声明:利用人诱导多能干细胞(hiPSC)衍生肝细胞的转化潜力,治疗性地改善受损的肝功能,具有巨大的临床前景。然而,在有效分化具有成熟标记表达的功能性肝细胞方面仍然存在挑战。为了提高肝细胞的分化效率,研究人员研究了早期机械传感机制在hipsc分化为内胚层祖细胞群体中的作用。通过结合细胞骨架调节、机械反应性、yes相关蛋白表达的控制以及在生理上顺从的PDMS底物上的培养,我们发现软环境不仅可以改善祖细胞的规范,还可以影响分化肝细胞的下游功能。这些结果有助于集体认识到机械线索在发育过程中是至关重要的。
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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