TY - JOUR
T1 - Sequential changes in calcium transients during M phase regulate cardiomyocyte proliferation
AU - Liu, Honghai
AU - Ammanamanchi, Niyatie
AU - Mich-Basso, Jocelyn D.
AU - Panama, Brian K.
AU - Li, Yao
AU - Huang, Winston
AU - Almeida, Dena
AU - Lewarchik, Christopher M.
AU - Lo, Brendan
AU - Wu, Yijen
AU - Gotthardt, Michael
AU - Kotlikoff, Michael I.
AU - Baehr, Wolfgang
AU - Rasmusson, Randall
AU - Salama, Guy
AU - Kühn, Bernhard
N1 - Publisher Copyright:
© 2026 Liu et al.
PY - 2026/8/3
Y1 - 2026/8/3
N2 - Heart muscle growth and regeneration require the proliferation of cardiomyocytes. Rapid pulsatile increases in cytosolic Ca2+ concentration, called calcium transients (CaTs), trigger cardiomyocyte contractions, but how cardiomyocytes adapt Ca2+ signaling during proliferation is largely unknown. Here, we show that cardiomyocyte proliferation requires changes in Ca2+ signaling. Cardiomyocytes undergo a sequence of CaT changes during M phase: CaT amplitudes begin to decline in prometaphase, reach a minimum in metaphase, rise during anaphase, and return to the original state in daughter cardiomyocytes. Spindle poles show decreased Ca2+ levels during prometaphase and metaphase. Localized reduction of Ca2+ levels at spindle poles is mediated by dynein 1-dependent SERCA2a accumulation. Active cyclin-dependent kinase 1 (CDK1) induces both the decrease in CaT amplitudes and the accumulation of SERCA2a at the spindle poles, whereas CDK1 inhibition reverses these effects. Forcing an increase in cytosolic Ca2+ levels by blocking SERCA2a during prometaphase and metaphase disrupts mitosis and produces binucleated cardiomyocytes, underscoring the essential role of Ca2+ signaling changes for cardiomyocyte proliferation.
AB - Heart muscle growth and regeneration require the proliferation of cardiomyocytes. Rapid pulsatile increases in cytosolic Ca2+ concentration, called calcium transients (CaTs), trigger cardiomyocyte contractions, but how cardiomyocytes adapt Ca2+ signaling during proliferation is largely unknown. Here, we show that cardiomyocyte proliferation requires changes in Ca2+ signaling. Cardiomyocytes undergo a sequence of CaT changes during M phase: CaT amplitudes begin to decline in prometaphase, reach a minimum in metaphase, rise during anaphase, and return to the original state in daughter cardiomyocytes. Spindle poles show decreased Ca2+ levels during prometaphase and metaphase. Localized reduction of Ca2+ levels at spindle poles is mediated by dynein 1-dependent SERCA2a accumulation. Active cyclin-dependent kinase 1 (CDK1) induces both the decrease in CaT amplitudes and the accumulation of SERCA2a at the spindle poles, whereas CDK1 inhibition reverses these effects. Forcing an increase in cytosolic Ca2+ levels by blocking SERCA2a during prometaphase and metaphase disrupts mitosis and produces binucleated cardiomyocytes, underscoring the essential role of Ca2+ signaling changes for cardiomyocyte proliferation.
UR - https://www.scopus.com/pages/publications/105043668865
U2 - 10.1083/jcb.202505134
DO - 10.1083/jcb.202505134
M3 - Article
C2 - 42347846
AN - SCOPUS:105043668865
SN - 0021-9525
VL - 225
JO - Journal of Cell Biology
JF - Journal of Cell Biology
IS - 8
ER -