Cardiac Troponin I–Interacting Kinase Affects Cardiomyocyte S-Phase Activity but Not Cardiomyocyte Proliferation

Identifying genetic variants that affect the level of cell cycle reentry and establishing the degree of cell cycle progression in those variants could help guide development of therapeutic interventions aimed at effecting cardiac regeneration. We observed that C57Bl6/NCR (B6N) mice have a marked inc...

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Veröffentlicht in:Circulation (New York, N.Y.) N.Y.), 2023-01, Vol.147 (2), p.142-153
Hauptverfasser: Reuter, Sean P., Soonpaa, Mark H., Field, Dorothy, Simpson, Ed, Rubart-von der Lohe, Michael, Lee, Han Kyu, Sridhar, Arthi, Ware, Stephanie M., Green, Nick, Li, Xiaochun, Ofner, Susan, Marchuk, Douglas A., Wollert, Kai C., Field, Loren J.
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Sprache:eng
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Zusammenfassung:Identifying genetic variants that affect the level of cell cycle reentry and establishing the degree of cell cycle progression in those variants could help guide development of therapeutic interventions aimed at effecting cardiac regeneration. We observed that C57Bl6/NCR (B6N) mice have a marked increase in cardiomyocyte S-phase activity after permanent coronary artery ligation compared with infarcted DBA/2J (D2J) mice. Cardiomyocyte cell cycle activity after infarction was monitored in D2J, (D2J×B6N)-F1, and (D2J×B6N)-F1×D2J backcross mice by means of bromodeoxyuridine or 5-ethynyl-2'-deoxyuridine incorporation using a nuclear-localized transgenic reporter to identify cardiomyocyte nuclei. Genome-wide quantitative trait locus analysis, fine scale genetic mapping, whole exome sequencing, and RNA sequencing analyses of the backcross mice were performed to identify the gene responsible for the elevated cardiomyocyte S-phase phenotype. (D2J×B6N)-F1 mice exhibited a 14-fold increase in cardiomyocyte S-phase activity in ventricular regions remote from infarct scar compared with D2J mice (0.798±0.09% versus 0.056±0.004%;
ISSN:0009-7322
1524-4539
1524-4539
DOI:10.1161/CIRCULATIONAHA.122.061130