Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA, United States of America.
Department of Chemical and Petroleum Engineering, University of Pittsburgh, Pittsburgh, PA, United States of America.
Biofabrication. 2020 Nov 10;13(1). doi: 10.1088/1758-5090/abc05f.
Pluripotent stem cells are promising source of cells for tissue engineering, regenerative medicine and drug discovery applications. The process of stem cell differentiation is regulated by multi-parametric cues from the surrounding microenvironment, one of the critical one being cell interaction with extracellular matrix (ECM). The ECM is a complex tissue-specific structure which is an important physiological regulator of stem cell function and fate. Recapitulating this native ECM microenvironment niche is best facilitated by decellularized tissue/organ derived ECM, which can faithfully reproduce the physiological environment with high fidelity tocondition and promote tissue-specific cellular development and maturation. Recognizing the need for organ specific ECM in a 3D culture environment in driving phenotypic differentiation and maturation of hPSCs, we fabricated an ECM array platform using native-mimicry ECM from decellularized organs (namely pancreas, liver and heart), which allows cell-ECM interactions in both 2D and 3D configuration. The ECM array was integrated with rapid quantitative imaging for a systematic investigation of matrix protein profiles and sensitive measurement of cell-ECM interaction during hPSC differentiation. We tested our platform by elucidating the role of the three different organ-specific ECM in supporting induced pancreatic differentiation of hPSCs. While the focus of this report is on pancreatic differentiation, the developed platform is versatile to be applied to characterize any lineage specific differentiation.
多能干细胞是组织工程、再生医学和药物发现应用中细胞的有前途的来源。干细胞分化的过程受周围微环境中多参数线索的调节,其中一个关键线索是细胞与细胞外基质 (ECM) 的相互作用。ECM 是一种复杂的组织特异性结构,是干细胞功能和命运的重要生理调节剂。通过脱细胞组织/器官衍生的 ECM 来再现这种天然 ECM 微环境小生境,可以最好地促进组织特异性细胞的发育和成熟。为了在 3D 培养环境中识别器官特异性 ECM 在驱动 hPSC 表型分化和成熟方面的需求,我们使用脱细胞器官(即胰腺、肝脏和心脏)中的天然模拟 ECM 制造了 ECM 阵列平台,允许细胞在 2D 和 3D 配置中与 ECM 相互作用。ECM 阵列与快速定量成像相结合,用于系统研究基质蛋白图谱,并在 hPSC 分化过程中灵敏地测量细胞-ECM 相互作用。我们通过阐明三种不同的器官特异性 ECM 在支持 hPSC 诱导的胰腺分化中的作用来测试我们的平台。虽然本报告的重点是胰腺分化,但开发的平台具有多功能性,可用于表征任何谱系特异性分化。