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1.
Proc Natl Acad Sci U S A ; 121(40): e2404644121, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39312653

ABSTRACT

With current plans for manned missions to Mars and beyond, the need to better understand, prevent, and counteract the harmful effects of long-duration spaceflight on the body is becoming increasingly important. In this study, an automated heart-on-a-chip platform was flown to the International Space Station on a 1-mo mission during which contractile cardiac function was monitored in real-time. Upon return to Earth, engineered human heart tissues (EHTs) were further analyzed with ultrastructural imaging and RNA sequencing to investigate the impact of prolonged microgravity on cardiomyocyte function and health. Spaceflight EHTs exhibited significantly reduced twitch forces, increased incidences of arrhythmias, and increased signs of sarcomere disruption and mitochondrial damage. Transcriptomic analyses showed an up-regulation of genes and pathways associated with metabolic disorders, heart failure, oxidative stress, and inflammation, while genes related to contractility and calcium signaling showed significant down-regulation. Finally, in silico modeling revealed a potential link between oxidative stress and mitochondrial dysfunction that corresponded with RNA sequencing results. This represents an in vitro model to faithfully reproduce the adverse effects of spaceflight on three-dimensional (3D)-engineered heart tissue.


Subject(s)
Myocardial Contraction , Myocytes, Cardiac , Space Flight , Space Flight/methods , Humans , Myocardial Contraction/physiology , Myocytes, Cardiac/metabolism , Lab-On-A-Chip Devices , Weightlessness/adverse effects , Oxidative Stress , Mitochondria/metabolism , Mitochondria, Heart/metabolism
2.
Methods Mol Biol ; 2805: 89-100, 2024.
Article in English | MEDLINE | ID: mdl-39008175

ABSTRACT

Engineered heart tissues (EHTs) have been shown to be a valuable platform for disease investigation and therapeutic testing by increasing human induced pluripotent stem cell-derived cardiomyocyte (hiPSC-CM) maturity and better recreating the native cardiac environment. The protocol detailed in this chapter describes the generation of miniaturized EHTs (mEHTs) incorporating hiPSC-CMs and human stromal cells in a fibrin hydrogel. This platform utilizes an array of silicone posts designed to fit in a standard 96-well tissue culture plate. Stromal cells and hiPSC-CMs are cast in a fibrin matrix suspended between two silicone posts, forming an mEHT that produces synchronous muscle contractions. The platform presented here has the potential to be used for high throughput characterization and screening of disease phenotypes and novel therapeutics through measurements of the myocardial function, including contractile force and calcium handling, and its compatibility with immunostaining.


Subject(s)
Induced Pluripotent Stem Cells , Myocytes, Cardiac , Tissue Engineering , Humans , Tissue Engineering/methods , Myocytes, Cardiac/cytology , Myocytes, Cardiac/metabolism , Induced Pluripotent Stem Cells/cytology , Induced Pluripotent Stem Cells/metabolism , Hydrogels/chemistry , Cell Differentiation , Fibrin/metabolism , Cells, Cultured , Cell Culture Techniques/methods , Stromal Cells/cytology , Tissue Culture Techniques/methods , Tissue Culture Techniques/instrumentation
3.
Methods Mol Biol ; 2485: 87-97, 2022.
Article in English | MEDLINE | ID: mdl-35618900

ABSTRACT

Three-dimensional, human engineered heart tissue promotes maturation of human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) and provides a useful platform for in vitro cardiac development and disease modeling. This protocol describes the generation of fibrin-based engineered heart tissues (EHTs) containing hiPSC-CMs and human stromal cells. The platform makes use of racks of silicone posts that fit a standard 24-well dish. Stromal cells and hiPSC-CMs are cast in a fibrin hydrogel suspended between two silicone posts, forming an engineered tissue that generates synchronous contractions. The platform described herein is amenable to various measures of cardiac function including measurement of contractile force and calcium handling, as well as molecular biology assays and immunostaining.


Subject(s)
Induced Pluripotent Stem Cells , Myocytes, Cardiac , Tissue Engineering , Fibrin , Humans , Induced Pluripotent Stem Cells/cytology , Myocytes, Cardiac/cytology , Silicones
4.
Stem Cell Reports ; 16(3): 478-492, 2021 03 09.
Article in English | MEDLINE | ID: mdl-33657418

ABSTRACT

COVID-19 patients often develop severe cardiovascular complications, but it remains unclear if these are caused directly by viral infection or are secondary to a systemic response. Here, we examine the cardiac tropism of SARS-CoV-2 in human pluripotent stem cell-derived cardiomyocytes (hPSC-CMs) and smooth muscle cells (hPSC-SMCs). We find that that SARS-CoV-2 selectively infects hPSC-CMs through the viral receptor ACE2, whereas in hPSC-SMCs there is minimal viral entry or replication. After entry into cardiomyocytes, SARS-CoV-2 is assembled in lysosome-like vesicles and egresses via bulk exocytosis. The viral transcripts become a large fraction of cellular mRNA while host gene expression shifts from oxidative to glycolytic metabolism and upregulates chromatin modification and RNA splicing pathways. Most importantly, viral infection of hPSC-CMs progressively impairs both their electrophysiological and contractile function, and causes widespread cell death. These data support the hypothesis that COVID-19-related cardiac symptoms can result from a direct cardiotoxic effect of SARS-CoV-2.


Subject(s)
COVID-19/virology , Induced Pluripotent Stem Cells/virology , Myocytes, Cardiac/virology , SARS-CoV-2/pathogenicity , Cells, Cultured , Humans , RNA Splicing/genetics , RNA, Messenger/genetics , SARS-CoV-2/genetics , Virus Internalization
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