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      milliPillar: A Platform for the Generation and Real-Time Assessment of Human Engineered Cardiac Tissues.

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          Abstract

          Engineered cardiac tissues derived from human induced pluripotent stem cells (iPSCs) are increasingly used for drug discovery, pharmacology and in models of development and disease. While there are numerous platforms to engineer cardiac tissues, they often require expensive and nonconventional equipment and utilize complex video-processing algorithms. As a result, only specialized academic laboratories have been able to harness this technology. In addition, methodologies and tissue features have been challenging to reproduce between different groups and models. Here, we describe a facile technology (milliPillar) that covers the entire pipeline required for studies of engineered cardiac tissues. We include methodologies for (i) platform fabrication, (ii) cardiac tissue generation, (iii) electrical stimulation, (iv) automated real-time data acquisition, and (v) advanced video analyses. We validate these methodologies and demonstrate the versatility of the platform by showcasing the fabrication of tissues in different hydrogel materials and using cardiomyocytes derived from different iPSC lines in combination with different types of stromal cells. We also validate the long-term culture of tissues within the platform and provide protocols for automated analysis of force generation and calcium flux using both brightfield and fluorescence imaging. Lastly, we demonstrate the compatibility of the milliPillar platform with electromechanical stimulation to enhance cardiac tissue function. We expect that this resource will provide a valuable and user-friendly tool for the generation and real-time assessment of engineered human cardiac tissues for basic and translational studies.

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          Author and article information

          Journal
          ACS Biomater Sci Eng
          ACS biomaterials science & engineering
          American Chemical Society (ACS)
          2373-9878
          2373-9878
          Nov 08 2021
          : 7
          : 11
          Affiliations
          [1 ] Department of Biomedical Engineering, Columbia University, 622 West 168th Street, VC12-234, New York, New York 10032, United States.
          [2 ] Department of Medicine, Columbia University, 622 West 168th Street, VC12-234, New York, New York 10032, United States.
          [3 ] Gladstone Institutes, San Francisco, California 94158, United States.
          Article
          NIHMS1811632
          10.1021/acsbiomaterials.1c01006
          9233181
          34668692
          d1f3dba0-5130-453c-a3bf-0989dee5c3e9
          History

          organs-on-a-chip,induced pluripotent stem cells,cardiac tissue engineering,real-time imaging,cardiomyocytes,electromechanical stimulation

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