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Published on: September 27, 2024
High Mobility Group Box 1 and Cardiovascular Diseases: Study of Act and Connect
Rufaida Wasim1,2, Aditya Singh3, Anas Islam3
1Department of Pharmacy, Integral University, Lucknow, 226026, India. rufaidaw@iul.ac.in.
Insights
High mobility group box 1 (HMGB1) plays a dual role in cardiovascular disease, contributing to inflammation and tissue damage, yet also promoting regeneration. Understanding HMGB1
Area of Science:
- Cardiology
- Molecular Biology
- Immunology
Background:
- Cardiovascular disease (CVD) is a leading cause of mortality, with inflammation being a key factor in its development.
- High mobility group box 1 (HMGB1) is a nuclear protein released during cellular stress and necrosis.
- Extracellular HMGB1 acts as a damage-associated molecular pattern, influencing inflammation and tissue repair.
Purpose of the Study:
- To review recent findings on High mobility group box 1 (HMGB1) biology in the context of cardiac dysfunction.
- To explore the dual role of HMGB1 in cardiovascular disease, encompassing both detrimental and beneficial effects.
- To highlight the significance of HMGB1 redox forms in mediating cellular responses within the heart.
Main Methods:
- Literature review of studies investigating HMGB1's role in cardiovascular conditions.
- Analysis of experimental models of cardiac injury, including ischemia/reperfusion, myocarditis, and drug-induced cardiomyopathies.
- Examination of HMGB1's impact on cardiomyocytes, cardiac fibroblasts, and cardiac stem cells.
Main Results:
- Extracellular HMGB1 inhibition demonstrates protective effects in various experimental cardiac injury models.
- HMGB1 administration post-myocardial infarction can improve cardiac function through tissue regeneration.
- Nuclear HMGB1 protects cardiomyocytes from apoptosis by mitigating oxidative stress, while extracellular HMGB1 can induce negative effects like hypertrophy.
Conclusions:
- HMGB1 exhibits context-dependent roles in cardiovascular disease, eliciting both harmful and helpful responses.
- The diverse functions of HMGB1 may be attributed to its various redox forms and receptor interactions.
- Further research into HMGB1 redox biology is crucial for understanding and potentially treating cardiac dysfunction.
Abstract:
Cardiovascular disease is the deadly disease that can result in sudden death, and inflammation plays an important role in its onset and progression. High mobility group box 1 (HMGB1) is a nuclear protein that regulates transcription, DNA replication, repair, and nucleosome assembly. HMGB1 is released passively by necrotic tissues and actively secreted by stressed cells. Extracellular HMGB1 functions as a damage associated molecular patterns molecule, producing numerous redox forms that induce a range of cellular responses by binding to distinct receptors and interactors, including tissue inflammation and regeneration. Extracellular HMGB1 inhibition reduces inflammation and is protective in experimental models of myocardial ischemia/reperfusion damage, myocarditis, cardiomyopathies caused by mechanical stress, diabetes, bacterial infection, or chemotherapeutic drugs. HMGB1 administration following a myocardial infarction followed by permanent coronary artery ligation improves cardiac function by stimulating tissue regeneration. HMGB1 inhibits contractility and produces hypertrophy and death in cardiomyocytes, while also stimulating cardiac fibroblast activity and promoting cardiac stem cell proliferation and differentiation. Maintaining normal nuclear HMGB1 levels, interestingly, protects cardiomyocytes from apoptosis by limiting DNA oxidative stress, and mice with HMGB1cardiomyocyte-specific overexpression are partially protected from cardiac injury. Finally, elevated levels of circulating HMGB1 have been linked to human heart disease. As a result, following cardiac damage, HMGB1 elicits both detrimental and helpful responses, which may be due to the formation and stability of the various redox forms, the particular activities of which in this context are mostly unknown. This review covers recent findings in HMGB1 biology and cardiac dysfunction.
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