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Heart-on-a-chip
               Alteration of Calcium Dynamics in Cardiomyocytes during      https://doi.org/10.1002/smtd.202000438
               Acute Hypoxia Transient in a Microfluidic Platform. Integr   93.  Zhao Y, Rafatian N, Feric NT, et al., 2019, A Platform for
               Biol, 4:153–64.                                     Generation of Chamber-Specific Cardiac Tissues and Disease
               https://doi.org/10.1039/c1ib00087j                  Modeling. Cell, 176:913–27.e18.
           88.  Sadeghi AH, Shin SR, Deddens JC, et al., 2017, Engineered   94.  Huang G, Li F, Zhao X, et al., 2017, Functional and Biomimetic
               3D  Cardiac Fibrotic Tissue to Study Fibrotic Remodeling.   Materials  for Engineering  of the  Three-Dimensional  Cell
               Adv Healthc Mater, 6:1601434.                       Microenvironment. Chem Rev, 117:12764–850.
               https://doi.org/10.1002/adhm.201601434          95.  Yu  F,  Choudhury  D,  2019,  Microfluidic  Bioprinting  for
           89.  Tse G, 2016, Mechanisms  of Cardiac  Arrhythmias.   Organ-on-a-Chip Models. Drug Discov Today, 24:1248–57.
               J Arrhythm, 32:75–81.                               https://doi.org/10.1016/j.drudis.2019.03.025
           90.  Ma Z, Koo S, Finnegan MA, et al., 2014, Three-Dimensional   96.  Gao B, Yang Q, Zhao  X,  et  al., 2016, 4D Bioprinting  for
               Filamentous  Human Diseased Cardiac  Tissue Model.   Biomedical Applications. Trends Biotechnol, 34:746–56.
               Biomaterials, 35:1367–77.                       97.  Shi M, Ling K, Yong KW,  et al., 2015, High-Throughput
               https://doi.org/10.1016/j.biomaterials.2013.10.052  Non-Contact Vitrification of Cell-Laden Droplets Based on
           91.  Brandão  KO, Tabel VA,  Atsma  DE,  et al., 2017, Human   Cell Printing. Sci Rep, 5:17928.
               Pluripotent  Stem Cell  Models of Cardiac  Disease: From      https://doi.org/10.1038/srep17928
               Mechanisms to Therapies. Dis Model Mech, 10:1039–59.  98.  Bertassoni LE, Cecconi  M, Manoharan  V,  et al., 2014,
               https://doi.org/10.1242/dmm.030320                  Hydrogel  Bioprinted  Microchannel  Networks  for
           92.  Ren L, Zhou X, Nasiri R, et al., 2020, Combined Effects of   Vascularization of Tissue Engineering Constructs. Lab Chip,
               Electric Stimulation and Microgrooves in Cardiac Tissue-on-  14:2202–11.
               a-Chip for Drug Screening. Small Methods, 4:2000438.  https://doi.org/10.1039/c4lc00030g














































           70                          International Journal of Bioprinting (2021)–Volume 7, Issue 3
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