Science · 2019 · 367 citations · 47 references
Cardiac MuscleHeart FailureHormonal ControlCardiac Progenitor CellsCardiac RegenerationMetabolic RemodelingCardiovascular FunctionPhysiological RegulationMetabolic SignalingCardiologyCardiac MechanicHealth SciencesCardiomyopathyMolecular PhysiologyEndocrine MechanismDevelopmental EndocrinologyThyroid HormonesOrganogenesisHeart Regenerative CapacityEndocrinologyCardiac ReprogrammingCell BiologyStandard Metabolic RateDevelopmental BiologyPhysiologyCardiovascular PhysiologyThyroid HormoneMetabolismMedicineEndothermy Acquisition
Tissue regenerative potential displays striking divergence across phylogeny and ontogeny, but the underlying mechanisms remain enigmatic. Loss of mammalian cardiac regenerative potential correlates with cardiomyocyte cell-cycle arrest and polyploidization as well as the development of postnatal endothermy. We reveal that diploid cardiomyocyte abundance across 41 species conforms to Kleiber's law-the ¾-power law scaling of metabolism with bodyweight-and inversely correlates with standard metabolic rate, body temperature, and serum thyroxine level. Inactivation of thyroid hormone signaling reduces mouse cardiomyocyte polyploidization, delays cell-cycle exit, and retains cardiac regenerative potential in adults. Conversely, exogenous thyroid hormones inhibit zebrafish heart regeneration. Thus, our findings suggest that loss of heart regenerative capacity in adult mammals is triggered by increasing thyroid hormones and may be a trade-off for the acquisition of endothermy.
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Effects of Size and Temperature on Metabolic Rate
James F. Gillooly, James H. Brown, Geoffrey B. West et al. · Science · 2001 · 3.7K citations
Max Kleiber · Hilgardia · 1932 · 2.2K citations · Full text
Heart Regeneration in Zebrafish
Kenneth D. Poss, Lindsay G. Wilson, Mark T. Keating · Science · 2002 · 1.9K citations