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开发一种软微图案化基质以增强人诱导多能干细胞衍生心肌细胞的成熟。

Developing a soft micropatterned substrate to enhance maturation of human induced pluripotent stem cell-derived cardiomyocytes.

作者信息

Maaref Yasaman, Jannati Shayan, Jayousi Farah, Lange Philipp, Akbari Mohsen, Chiao Mu, Tibbits Glen F

机构信息

Cellular and Regenerative Medicine Centre, BC Children's Hospital Research Institute, Vancouver, BC V5Z 4H4, Canada; Biomedical Physiology and Kinesiology, Simon Fraser University, Burnaby, BC V5A 1S6, Canada.

Cellular and Regenerative Medicine Centre, BC Children's Hospital Research Institute, Vancouver, BC V5Z 4H4, Canada; Mechanical Engineering, University of British Columbia, Vancouver, BC, Canada.

出版信息

Acta Biomater. 2024 Dec;190:133-151. doi: 10.1016/j.actbio.2024.10.029. Epub 2024 Oct 26.

DOI:10.1016/j.actbio.2024.10.029
PMID:39490605
Abstract

Human induced pluripotent stem cell-derived cardiomyocytes (hiPSCCMs) offer numerous advantages as a biological model, yet their inherent immaturity compared to adult cardiomyocytes poses significant limitations. This study addresses hiPSCCM immaturity by introducing a physiologically relevant micropatterned substrate for long-term culture and maturation. An innovative microfabrication methodology combining laser etching and casting creates a micropatterned polydimethylsiloxane (PDMS) substrate with varying stiffness, from 2 to 50 kPa, mimicking healthy and fibrotic cardiac tissue. Platinum electrodes were integrated into the cell culture chamber enable pacing of cells at various frequencies. Subsequently, cells were transferred to the incubator for time-course analysis, ensuring contamination-free conditions. Cell contractility, cytosolic Ca transient, sarcomere orientation, and nucleus aspect ratio were analyzed in a 2D hiPSCCM monolayer up to 90 days post-replating in relation to substrate micropattern dimensions. Culturing hiPSCCMs for three weeks on a micropatterned PDMS substrate (2.5-5 µm deep, 20 µm center-to-center spacing of grooves, 2-5 kPa stiffness) emerges as optimal for cardiomyocyte alignment, contractility, and cytosolic Ca transient. The study provides insights into substrate stiffness effects on hiPSCCM contractility and Ca transient at immature and mature states. Maximum contractility and fastest Catransient kinetics occur in mature hiPSCCMs cultured for two to four weeks, with the optimum at three weeks, on a soft micropatterned PDMS substrate. MS proteomic analysis further revealed that hiPSCCMs cultured on soft micropatterned substrates exhibit advanced maturation, marked by significant upregulation of key structural, electrophysiological, and metabolic proteins. This new substrate offers a promising platform for disease modeling and therapeutic interventions. STATEMENT OF SIGNIFICANCE: Human induced pluripotent stem cell derived cardiomyocytes (hiPSCCMs) have been transformative to disease-in-a-dish modeling, drug discovery and testing, and autologous regeneration for human hearts and their role will continue to expand dramatically. However, one of the major limitations of hiPSCCMs is that without intervention, the cells are immature and represent those in the fetal heart. We developed protocols for the fabrication of the PDMS matrices that includes variations in its stiffness and micropatterning. Growing our hiPSCCMs on matrices of comparable stiffness to a healthy heart (5 kPa) and grooves of 20 μm, generate heart cells typical of the healthy adult human heart.

摘要

人诱导多能干细胞衍生的心肌细胞(hiPSCCMs)作为一种生物学模型具有诸多优势,然而与成年心肌细胞相比,其固有的不成熟性带来了显著限制。本研究通过引入一种生理相关的微图案化基质进行长期培养和成熟,来解决hiPSCCM的不成熟问题。一种结合激光蚀刻和铸造的创新微加工方法,制造出一种具有不同刚度(2至50 kPa)的微图案化聚二甲基硅氧烷(PDMS)基质,模拟健康和纤维化的心脏组织。铂电极集成到细胞培养室中,能够以不同频率对细胞进行起搏。随后,将细胞转移到培养箱中进行时间进程分析,确保无污染物条件。在重新接种后长达90天的二维hiPSCCM单层中,分析细胞收缩性、胞质Ca瞬变、肌节取向和细胞核纵横比与基质微图案尺寸的关系。在微图案化的PDMS基质(深2.5 - 5 µm,凹槽中心距20 µm,刚度2 - 5 kPa)上培养hiPSCCMs三周,对于心肌细胞排列、收缩性和胞质Ca瞬变而言是最佳的。该研究深入了解了基质刚度对未成熟和成熟状态下hiPSCCM收缩性和Ca瞬变的影响。在柔软的微图案化PDMS基质上培养两到四周的成熟hiPSCCMs中,出现最大收缩性和最快的Ca瞬变动力学,三周时达到最佳。质谱蛋白质组学分析进一步表明,在柔软的微图案化基质上培养的hiPSCCMs表现出更高级的成熟,关键结构、电生理和代谢蛋白显著上调。这种新基质为疾病建模和治疗干预提供了一个有前景的平台。重要性声明:人诱导多能干细胞衍生的心肌细胞(hiPSCCMs)在疾病培养皿建模、药物发现和测试以及人类心脏的自体再生方面具有变革性,其作用将继续大幅扩展。然而,hiPSCCMs的主要局限性之一是,未经干预时,细胞不成熟,代表胎儿心脏中的细胞。我们开发了用于制造PDMS基质的方案,包括其刚度和微图案化的变化。在与健康心脏(5 kPa)刚度相当且凹槽为20 µm的基质上培养我们的hiPSCCMs,可生成典型的健康成人心肌细胞。

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