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Updated: May 27, 2025

Induction of Right Ventricular Failure by Pulmonary Artery Constriction and Evaluation of Right Ventricular Function in Mice
Published on: May 13, 2019
ROR2 drives right ventricular heart failure via disruption of proteostasis
Background:
No therapies exist to reverse right ventricular failure (RVF), and the molecular mechanisms that drive RVF remain poorly studied. We recently reported that the developmentally restricted noncanonical WNT receptor ROR2 is upregulated in human RVF in proportion to severity of disease. Here we test mechanistic role of ROR2 in RVF pathogenesis.
Methods:
ROR2 was overexpressed or knocked down in neonatal rat ventricular myocytes (NRVMs). ROR2-modified NRVMs were characterized using confocal microscopy, RNAseq, proteomics, proteostatic functional assays, and contractile properties with pacing. The impact of cardiac ROR2 expression was evaluated in mice by AAV9-mediated overexpression and by AAV9-mediated delivery of shRNA to knockdown ROR2 in a pulmonary artery banded pressure overload RVF model. ROR2-modified mice were evaluated by echocardiography, RV protein synthetic rates and proteasome activity.
Results:
In NRVMs, we find that ROR2 profoundly dysregulates the coordination between protein translation and folding. This imbalance leads to excess protein clearance by the ubiquitin proteasome system (UPS) with dramatic impacts on sarcomere and cytoskeletal structure and function. In mice, forced cardiac ROR2 expression is sufficient to disrupt proteostasis and drive RVF, while conversely ROR2 knockdown partially rescues proteostasis and cardiac function in a pressure overload model of RVF.
Conclusions:
In sum, ROR2 is a key driver of RVF pathogenesis through proteostatic disruption and, thus, provides a promising target to treat RVF.
Insights
Right ventricular failure (RVF) lacks treatments. This study reveals receptor ROR2 disrupts protein homeostasis, driving RVF and offering a potential therapeutic target for this condition.
Area of Science:
- Cardiology
- Molecular Biology
- Proteostasis
Background:
- Right ventricular failure (RVF) is a severe condition with no effective therapies.
- The molecular underpinnings of RVF remain largely unknown.
- Receptor ROR2 expression correlates with RVF severity in humans.
Purpose of the Study:
- To investigate the mechanistic role of ROR2 in the pathogenesis of RVF.
- To determine if ROR2 is a viable therapeutic target for RVF.
Main Methods:
- ROR2 was manipulated in neonatal rat ventricular myocytes (NRVMs) and characterized using molecular and functional assays.
- In vivo studies involved AAV9-mediated ROR2 manipulation in a mouse model of RVF.
- Cardiac function and proteostasis were assessed in both in vitro and in vivo models.
Main Results:
- ROR2 dysregulates protein translation and folding, leading to increased protein degradation via the ubiquitin proteasome system (UPS).
- This proteostatic imbalance impairs sarcomere and cytoskeletal function in NRVMs.
- Cardiac ROR2 overexpression induced RVF in mice, while ROR2 knockdown partially restored function in a pressure overload RVF model.
Conclusions:
- ROR2 is a critical mediator of RVF pathogenesis by disrupting cellular proteostasis.
- Targeting ROR2 presents a promising therapeutic strategy for treating RVF.
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