TY - JOUR
T1 - Myometrial smooth muscle KATPchannel activity is attenuated in a mouse model of diet-induced obesity during pregnancy
AU - Murata, Tsuyoshi
AU - Prifti, Kevin K.
AU - Ma, Xiaofeng
AU - Kent, Lindsey N.
AU - Frolova, Antonina I.
AU - England, Sarah K.
N1 - Publisher Copyright:
© 2025 The Author(s). Published by Oxford University Press on behalf of the Society for the Study of Reproduction. All rights reserved. For commercial re-use, please contact [email protected] for reprints and translation rights for reprints. All other permissions can be obtained through our RightsLink service via the Permissions link on the article page on our site - for further information please contact [email protected].
PY - 2025/9/1
Y1 - 2025/9/1
N2 - Labor dystocia occurs in 21% of deliveries, increasing the risk of adverse maternal and neonatal outcomes. Pregnant women with obesity have an increased prevalence of labor dystocia due to reduced myometrial contractility. Similarly, in a mouse model, diet-induced obesity (DIO) led to reduced uterine contractility and dystocia, although the underlying mechanisms are not fully understood. Here, we focused on the KATP channel, which links metabolic changes to cellular excitability. KATP channels are activated by a decrease in intracellular adenosine triphosphate/adenosine diphosphate (ATP/ADP) ratio, resulting in cell membrane hyperpolarization and cytoprotection. We show that myometrial smooth muscle cells (MSMCs) isolated from DIO mice had lower mean KATP currents than MSMCs from control-diet (CON) mice. KATP channel blockade by glibenclamide significantly reduced the ex vivo frequency of contractility in uterine tissue from CON mice but not in tissue from DIO mice, suggesting reduced KATP channel activity in DIO mice. Expression of the KATP subunits Kir6.1 and Sur2 was similar between uterine tissues from CON and DIO mice. Analysis of metabolomics data revealed that uterine tissue from DIO mice had a higher ATP/ADP ratio and lower quantities of several phosphatidylinositols than tissue from CON mice. Finally, MSMCs from DIO mice had fewer caveolae and less colocalization of Kir6.1 and caveolin 1 than MSMCs from CON mice. Our results suggest that reduced myometrial KATP channel activity contributes to dampened uterine contractility in obese pregnant mice.
AB - Labor dystocia occurs in 21% of deliveries, increasing the risk of adverse maternal and neonatal outcomes. Pregnant women with obesity have an increased prevalence of labor dystocia due to reduced myometrial contractility. Similarly, in a mouse model, diet-induced obesity (DIO) led to reduced uterine contractility and dystocia, although the underlying mechanisms are not fully understood. Here, we focused on the KATP channel, which links metabolic changes to cellular excitability. KATP channels are activated by a decrease in intracellular adenosine triphosphate/adenosine diphosphate (ATP/ADP) ratio, resulting in cell membrane hyperpolarization and cytoprotection. We show that myometrial smooth muscle cells (MSMCs) isolated from DIO mice had lower mean KATP currents than MSMCs from control-diet (CON) mice. KATP channel blockade by glibenclamide significantly reduced the ex vivo frequency of contractility in uterine tissue from CON mice but not in tissue from DIO mice, suggesting reduced KATP channel activity in DIO mice. Expression of the KATP subunits Kir6.1 and Sur2 was similar between uterine tissues from CON and DIO mice. Analysis of metabolomics data revealed that uterine tissue from DIO mice had a higher ATP/ADP ratio and lower quantities of several phosphatidylinositols than tissue from CON mice. Finally, MSMCs from DIO mice had fewer caveolae and less colocalization of Kir6.1 and caveolin 1 than MSMCs from CON mice. Our results suggest that reduced myometrial KATP channel activity contributes to dampened uterine contractility in obese pregnant mice.
KW - adenosine triphosphate
KW - caveolae
KW - dystocia
KW - obesity
KW - potassium channel
UR - https://www.scopus.com/pages/publications/105016371720
U2 - 10.1093/biolre/ioaf130
DO - 10.1093/biolre/ioaf130
M3 - Article
C2 - 40511862
AN - SCOPUS:105016371720
SN - 0006-3363
VL - 113
SP - 615
EP - 625
JO - Biology of reproduction
JF - Biology of reproduction
IS - 3
ER -