J. J. Ferreira, L. N. Kent, A. Gonzalez-Cota, N. Peramsetty, G. C. Whitter, E. Li, S. Spivak, X. J. Ma, S. K. England, C. M. Santi
Arginine vasopressin (AVP) increases excitability of myometrial smooth muscle cells (MSMCs) through Gq-coupled AVP receptors. Although excitability requires membrane depolarization, the mechanisms linking AVP receptor activation to membrane depolarization and Ca2+ signaling are incompletely understood. Here, we show that AVPR1 is the predominant AVP receptor in primary MSMCs. In Xenopus oocytes, AVP signals through AVPR1 to inhibit SLO2.1-mediated potassium currents, reducing current amplitude to approximately 60% of control currents. Consistent with suppression of a hyperpolarizing conductance, AVP depolarized a myometrial cell line (hTERT-HM) and increased intracellular Ca2+ signaling. Analysis of Ca2+ dynamics revealed that the initial Ca2+ peak was largely preserved under conditions limiting extracellular Ca2+ entry, consistent with intracellular store release. Conversely, the oscillatory phase depended on extracellular Ca2+ influx and was reduced by SLO2.1 knockdown. Together, these findings support a model in which AVP preferentially signals through AVPR1A to inhibit SLO2.1, depolarize myometrial cells, enhance VDCC-dependent Ca2+ entry, and promote excitability, enhancing conditions for uterine contraction.