Abstract 4365971: Estrogen receptor alpha inhibits right ventricle cardiomyocyte NLRP3 inflammasome activation and restores right ventricular contractile function in low estrogen states
Abstract
Background: The NLRP3 inflammasome is implicated in right ventricular (RV) dysfunction, particularly in low endogenous estrogen states found in males and postmenopausal females. We hypothesized that NLRP3 inhibition through estrogen receptor alpha (ERα) enhances RV contractility and improves RV-pulmonary artery (PA) coupling. Methods: RVs from male and pre- or postmenopausal female PH patients with RV failure (RVF) were assessed for NLRP3 activation by analyzing proteomics data and staining for NLRP3 and ASC. Male or female human induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) were treated with endothelin-1 (ET1) ± 17beta-estradiol (E2). RV cardiomyocytes (RVCMs) were isolated from male and intact or ovariectomized female rats treated with monocrotaline (MCT) or pulmonary artery banding (PAB). Male or female ERα loss-of-function mutant (ERαmut) rats were employed to study the effects of ERα. RV-PA coupling was assessed by pressure-volume loops (PV-loops) in the WT and ERαmut MCT-treated rats. NLRP3 activation in RVCMs and iPSC-CMs was assessed by NLRP3-ASC colocalization and downstream targets. RVCM contractility and cytosolic calcium (c-Ca2+) were evaluated via IONOPTIX system. P<0.05 was considered significant. Results: Proteomics and immunofluorescence studies revealed that upregulation of NLRP3 activity and signaling in human RVF are more pronounced in males and postmenopausal females (p<0.05). In ET-1-treated iPSC-CMs, NLRP3 was more activated in male than female iPSC-CMs (p<0.05). RVCMs from male, but not female, MCT- or PAB-rats demonstrated increased NLRP3-ASC colocalization (p<0.05). E2 treatment prevented MCT-induced impairment of RV-PA coupling and had beneficial effects on survival. E2 treatment of male and OVX female wildtype (WT) rat RVCMs reduced NLRP3-ASC co-localization and increased Ca2+-dependent contractility (p<0.05). Similarly, E2 treatment in male iPSC-CMs prevented ET-1-induced NLRP3 activation. E2’s inhibitory effects on NLRP3 activation, impairment of RV-PA coupling, improved survival, NLRP3-induced contractile dysfunction, and c-Ca2+ in male WT rat RVCMs were abrogated in ERαmut rat RVCMs (p<0.05). Conclusion: NLRP3 activation impairs RV contractile function in a sexually dimorphic manner. The E2-ERα pathway protects against this dysfunction. E2 enhances RV function and survival in both male and postmenopausal models of RVF, suggesting its potential as a therapeutic target in low estrogen states.
Article Details
Authors (20)
Rafael Sobrano Fais
National Jewish Health, Denver, Colorado, United States
Erica Das Neves Palotta
National Jewish Health, Denver, Colorado, United States
Katrina Kopf
National Jewish Health, Denver, Colorado, United States
Karina Mora Massad
National Jewish Health, Denver, Colorado, United States
Evandro Neto Neves
Universidade Federal do Espírito Santo, Vitória, Espirito Santo, Brazil
Christopher Hoffer
University of Colorado, Anschutz, Aurora, Colorado, United States
Avram Walts
University of Colorado at Denver, Denver, CO, USA.
Andrea Frump
IU School of Medicine, Indianapolis, Indiana, United States
Neil Goldenberg
University of Toronto, Toronto, Ontario, Canada
Sophie Givens
University of Minnesota, Minneapolis, Minnesota, United States
Alice Bourgeois
CRIUCPQ, Quebec, Quebec, Canada
Chen-Shan Woodcock
National Jewish Health, Denver, Colorado, United States
Irina Petrache
National Jewish Health, Denver, Colorado, United States
KC Woulfe
UNIVERSITY OF COLORADO, Aurora, Colorado, United States
Soni Savai Pullamsetti
Olivier Boucherat
Steeve Provencher
Brenda Ogle
UNIVERSITY OF MINNESOTA-TWIN CITIES, Minneapolis, Minnesota, United States
Sebastien Bonnet
Tim Lahm
National Jewish Health, Denver, Colorado, United States