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Updated: May 1, 2026

Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
Nrf2 enhances myocardial clearance of toxic ubiquitinated proteins
Wenjuan Wang1, Siying Li1, Hui Wang1
1Shandong University Qilu Hospital Research Center for Cell Therapy, Key Laboratory of Cardiovascular Remodeling and Function Research, Qilu Hospital of Shandong University, Jinan 250012, China; Department of Cell Biology and Anatomy, University of South Carolina, SC 29208, USA.
Abstract:
Nuclear factor erythroid-2 related factor 2 (Nrf2) is a master transcription factor that controls the basal and inducible expression of a battery of antioxidant genes and other cytoprotective phase II detoxifying enzymes. While knockout of Nrf2 exaggerates cardiac pathological remodeling and dysfunction in diverse pathological settings, pharmacological activation of Nrf2 protects against cardiomyocyte injury and cardiac dysfunction. In contrast, there is also a concern that the chronic activation of Nrf2 secondary to oxidative stress is a contributing mechanism for the reductive stress-mediated heart failure. However, a direct link between cardiac specific activation of Nrf2 and cardiac protection or dysfunction in vivo remains to be established. Therefore, we investigated the effect of cardiomyocyte-specific transgenic activation of Nrf2 (Nrf2(ctg)) on cardiac pathological remodeling and dysfunction. We found that the cardiomyocyte-specific activation of Nrf2 suppressed myocardial oxidative stress as well as cardiac apoptosis, fibrosis, hypertrophy, and dysfunction in a setting of sustained pressure overload induced by transverse aortic arch constriction (TAC) in mice. Notably, the constitutive activation of Nrf2 increased the steady level of autophagosomes while decreasing the ubiquitinated protein aggregates in the heart after TAC. Nrf2 gene gain- and loss-of-function approaches revealed that Nrf2 enhances autophagosome formation and autophagic flux in cardiomyocytes. Unexpectedly, while Nrf2 minimally regulated apoptosis, it suppressed significantly the proteotoxic necrosis in cardiomyocytes. In addition, Nrf2 attenuated the proteocytotoxicity presumably via enhancing autophagy-mediated clearance of ubiquitinated protein aggregates in cardiomyocytes. Taken together, we demonstrated for the first time that cardiac specific activation of Nrf2 suppresses cardiac maladaptive remodeling and dysfunction most likely by enhancing autophagic clearance of toxic protein aggregates in the heart.
Insights
Nuclear factor erythroid-2 related factor 2 (Nrf2) activation in heart cells protects against damage and dysfunction. This study shows Nrf2 enhances autophagy to clear toxic protein aggregates, preventing heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cellular Stress Response
Background:
- Nuclear factor erythroid-2 related factor 2 (Nrf2) regulates antioxidant and detoxifying enzymes.
- Nrf2's role in cardiac protection is debated, with potential benefits and risks from chronic activation.
- Direct in vivo evidence linking cardiomyocyte-specific Nrf2 activation to cardiac outcomes is lacking.
Purpose of the Study:
- To investigate the impact of cardiomyocyte-specific transgenic Nrf2 activation (Nrf2(ctg)) on cardiac remodeling and dysfunction.
- To elucidate the mechanisms underlying Nrf2's effects in the heart under pathological stress.
Main Methods:
- Generation of cardiomyocyte-specific Nrf2-activating transgenic mice (Nrf2(ctg)).
- Induction of cardiac pressure overload using transverse aortic arch constriction (TAC).
- Assessment of cardiac function, oxidative stress, apoptosis, fibrosis, hypertrophy, and protein aggregation.
- Utilized Nrf2 gene gain- and loss-of-function approaches to study autophagy and proteotoxicity.
Main Results:
- Cardiomyocyte-specific Nrf2 activation significantly suppressed TAC-induced oxidative stress, apoptosis, fibrosis, hypertrophy, and cardiac dysfunction.
- Nrf2 activation increased autophagosome levels and autophagic flux, enhancing the clearance of ubiquitinated protein aggregates.
- Nrf2 primarily suppressed proteotoxic necrosis, not apoptosis, and attenuated proteocytotoxicity via autophagy-mediated clearance.
Conclusions:
- Cardiac-specific Nrf2 activation confers protection against pathological cardiac remodeling and dysfunction.
- Nrf2 enhances autophagy-mediated clearance of toxic protein aggregates, a key mechanism for its cardioprotective effects.
- This study provides the first in vivo evidence for the protective role of cardiomyocyte-specific Nrf2 activation in heart failure.
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