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Analysis of Cardiac Contractile Dysfunction and Ca2+ Transients in Rodent Myocytes
Published on: May 25, 2022
Toll-like receptor 2 deficiency hyperactivates the FoxO1 transcription factor and induces aging-associated cardiac
Kondapalli Mrudula Spurthi1, Mohsen Sarikhani1, Sneha Mishra1
1From the Department of Microbiology and Cell Biology, Indian Institute of Science, Bengaluru, Karnataka 560012, India.
Abstract:
Toll-like receptors (TLRs) are a family of pattern-recognition receptors involved in innate immunity. Previous studies have shown that TLR2 inhibition protects the heart from acute stress, including myocardial infarction and doxorubicin-induced cardiotoxicity in animal models. However, the role of TLR2 in the development of aging-associated heart failure is not known. In this work, we studied aging-associated changes in structure and function of TLR2-deficient mice hearts. Whereas young TLR2-KO mice did not develop marked cardiac dysfunction, 8- and 12-month-old TLR2-KO mice exhibited spontaneous adverse cardiac remodeling and cardiac dysfunction in an age-dependent manner. The hearts of the 8-month-old TLR2-KO mice had increased fibrosis, cell death, and reactivation of fetal genes. Moreover, TLR2-KO hearts displayed reduced infiltration by macrophages, increased numbers of myofibroblasts and atrophic cardiomyocytes, and higher levels of the atrophy-related ubiquitin ligases MuRF-1 and atrogin-1. Mechanistically, TLR2 deficiency impaired the PI3K/Akt signaling pathway, leading to hyperactivation of the transcription factor Forkhead box protein O1 (FoxO1) and, in turn, to elevated expression of FoxO target genes involved in the regulation of muscle wasting and cell death. AS1842856-mediated chemical inhibition of FoxO1 reduced the expression of the atrophy-related ubiquitin ligases and significantly reversed the adverse cardiac remodeling while improving the contractile functions in the TLR2-KO mice. Interestingly, TLR2 levels decreased in hearts of older mice, and the activation of TLR1/2 signaling improved cardiac functions in these mice. These findings suggest that TLR2 signaling is essential for protecting the heart against aging-associated adverse remodeling and contractile dysfunction in mice.
Insights
Toll-like receptor 2 (TLR2) deficiency in mice leads to age-dependent heart failure, characterized by fibrosis and cell death. Restoring TLR2 signaling improves cardiac function, highlighting its protective role in aging hearts.
Area of Science:
- Immunology
- Cardiology
- Aging Research
Background:
- Toll-like receptors (TLRs) are key in innate immunity.
- TLR2 inhibition shows protective effects against acute cardiac stress.
- The role of TLR2 in aging-associated heart failure remains uncharacterized.
Purpose of the Study:
- To investigate the role of TLR2 in age-related cardiac remodeling and dysfunction.
- To elucidate the molecular mechanisms underlying TLR2 deficiency-induced cardiac pathology.
Main Methods:
- Studied aging-associated structural and functional changes in TLR2-deficient (TLR2-KO) mice hearts.
- Analyzed cardiac fibrosis, cell death, gene expression (fetal genes, MuRF-1, atrogin-1), and immune cell infiltration.
- Investigated the PI3K/Akt/FoxO1 signaling pathway and the effect of FoxO1 inhibition (AS1842856).
Main Results:
- TLR2-KO mice developed age-dependent cardiac dysfunction, fibrosis, and cell death starting at 8 months.
- TLR2 deficiency led to reduced macrophage infiltration, increased myofibroblasts, atrophic cardiomyocytes, and elevated atrophy markers (MuRF-1, atrogin-1).
- Impaired PI3K/Akt signaling and FoxO1 hyperactivation were observed; FoxO1 inhibition reversed cardiac remodeling and improved function.
- TLR2 levels decreased with age, and TLR1/2 activation enhanced cardiac function in older mice.
Conclusions:
- TLR2 signaling is crucial for protecting the heart against aging-associated adverse remodeling and dysfunction.
- TLR2 deficiency exacerbates cardiac aging through mechanisms involving fibrosis, cell death, and muscle atrophy.
- Targeting FoxO1 or activating TLR2 signaling may offer therapeutic strategies for age-related heart failure.
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