Literature DB >> 34275296

Elastomer-Grafted iPSC-Derived Micro Heart Muscles to Investigate Effects of Mechanical Loading on Physiology.

Jingxuan Guo1, Daniel W Simmons2,3, Ghiska Ramahdita1,3, Mary K Munsell2, Kasoorelope Oguntuyo2, Brennan Kandalaft2, Brandon Rios2, Missy Pear2, David Schuftan2, Huanzhu Jiang2, Spencer P Lake1, Guy M Genin1,3, Nathaniel Huebsch2,3,4.   

Abstract

Mechanical loading plays a critical role in cardiac pathophysiology. Engineered heart tissues derived from human induced pluripotent stem cells (iPSCs) allow rigorous investigations of the molecular and pathophysiological consequences of mechanical cues. However, many engineered heart muscle models have complex fabrication processes and require large cell numbers, making it difficult to use them together with iPSC-derived cardiomyocytes to study the influence of mechanical loading on pharmacology and genotype-phenotype relationships. To address this challenge, simple and scalable iPSC-derived micro-heart-muscle arrays (μHM) have been developed. "Dog-bone-shaped" molds define the boundary conditions for tissue formation. Here, we extend the μHM model by forming these tissues on elastomeric substrates with stiffnesses spanning from 5 to 30 kPa. Tissue assembly was achieved by covalently grafting fibronectin to the substrate. Compared to μHM formed on plastic, elastomer-grafted μHM exhibited a similar gross morphology, sarcomere assembly, and tissue alignment. When these tissues were formed on substrates with different elasticity, we observed marked shifts in contractility. Increased contractility was correlated with increases in calcium flux and a slight increase in cell size. This afterload-enhanced μHM system enables mechanical control of μHM and real-time tissue traction force microscopy for cardiac physiology measurements, providing a dynamic tool for studying pathophysiology and pharmacology.

Entities:  

Keywords:  afterload; calcium dynamics; cardiac contractility; elastomer modification; stem cells

Mesh:

Substances:

Year:  2020        PMID: 34275296     DOI: 10.1021/acsbiomaterials.0c00318

Source DB:  PubMed          Journal:  ACS Biomater Sci Eng        ISSN: 2373-9878


  4 in total

1.  Robust, Automated Analysis of Electrophysiology in Induced Pluripotent Stem Cell-Derived Micro-Heart Muscle for Drug Toxicity.

Authors:  Kasoorelope Oguntuyo; David Schuftan; Jingxuan Guo; Daniel Simmons; Druv Bhagavan; Jonathan D Moreno; Po Wei Kang; Evan Miller; Jonathan R Silva; Nathaniel Huebsch
Journal:  Tissue Eng Part C Methods       Date:  2022-08-04       Impact factor: 3.273

2.  Interplay of Genotype and Substrate Stiffness in Driving the Hypertrophic Cardiomyopathy Phenotype in iPSC-Micro-Heart Muscle Arrays.

Authors:  Jingxuan Guo; Huanzhu Jiang; Kasoorelope Oguntuyo; Brandon Rios; Zoë Boodram; Nathaniel Huebsch
Journal:  Cell Mol Bioeng       Date:  2021-06-25       Impact factor: 3.337

Review 3.  Kidney organoids: current knowledge and future directions.

Authors:  Niloofar Khoshdel-Rad; Amin Ahmadi; Reza Moghadasali
Journal:  Cell Tissue Res       Date:  2022-01-28       Impact factor: 5.249

Review 4.  Engineering the Cellular Microenvironment of Post-infarct Myocardium on a Chip.

Authors:  Natalie N Khalil; Megan L McCain
Journal:  Front Cardiovasc Med       Date:  2021-07-14
  4 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.