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Biology subjects

Nagesh, D.

Publications and source records attributed to Nagesh, D..

3 recordsLinked to original sources

PARP1 deficiency induces aging-associated cardiac failure via activation of Akt signalling

PARP1, a poly-ADP-ribose transferase, plays a critical role in maintaining genomic stability, transcription, cellular metabolism, and cell death. PARP1 inhibition protects cardiomyocytes against oxidative and genotoxic stress. However, the role of PARP1 in aging-associated heart failure remains poorly explored. In the current study, we report that PARP1 levels are downregulated in aging mouse hearts, and PARP1 deficiency induces aging-related cardiac remodelling and contractile dysfunction in mice. PARP1 deficient mice hearts exhibit spontaneous activation of the Akt signalling pathway, leading to the development of aging-related cardiac hypertrophy and fibrosis. Our findings reveal two distinct mechanisms by which PARP1 regulates Akt signalling, direct interaction of PARP1 with Akt and the transcriptional regulation of phosphatases like PTEN, a negative regulator of Akt signalling. PARP1 binds and inhibits Akt by poly-ADP-ribosylation at E40 and E49 residues, which impairs Akt membrane recruitment and subsequent activation. Inhibition of Akt reversed hypertrophy in PARP1-depleted cardiomyocytes and improved the contractile dysfunction in PARP1-deficient hearts. These findings reveal a previously unrecognized regulatory role for PARP1 in aging-associated cardiac failure.

physiology↗

SIRT2 attenuates stress-induced skeletal muscle atrophy by inhibiting glucocorticoid receptor signaling

Skeletal muscle atrophy occurs in several diseases and is associated with chronic stress. Studies indicate that glucocorticoid receptor signalling is the major signalling pathway that mediates stress-induced muscle degeneration. Although the glucocorticoid signalling pathway is relatively well characterized, there is a need to identify modulators of this pathway that may be useful for drug targeting to ameliorate muscle atrophy. SIRT2 is a mammalian Sirtuin isoform known to mediate the longevity benefits of calorie restriction and exercise. Currently, the role of SIRT2 in regulating stress-induced skeletal muscle atrophy is unclear. Our study found that SIRT2 is a critical regulator of muscle homeostasis and is required to protect against stress-induced muscle atrophy. Interestingly, SIRT2 levels are reduced during glucocorticoid-induced muscle atrophy in mice. SIRT2 depletion exacerbates glucocorticoid-induced reduction in myotube diameter and atrophy gene expression. In contrast, SIRT2 overexpression ameliorates myotube atrophy in primary myotubes. Our findings indicate that SIRT2 knockout mice are susceptible to glucocorticoid-induced muscle atrophy, while muscle-specific SIRT2-transgenic mice exhibit improved muscle function and are protected from glucocorticoid-induced atrophy. Mechanistically, SIRT2 binds to the glucocorticoid receptor to negatively regulate its activity, possibly via deacetylation of critical residues in its DNA-binding domain. Our findings suggest that SIRT2 activation may protect against glucocorticoid-induced skeletal muscle atrophy and serve as a potential therapeutic target for treating muscle atrophy.

pathology↗

Sirtuin 2 controls global protein synthesis by regulating Rheb-GTPase

Upregulated global protein synthesis is associated with the development and progression of several diseases and disorders. Strategies like calorie restriction and pharmacological inhibition of protein synthesis, have exhibited health-promoting effects. However, the complex molecular events that regulate global protein synthesis are not completely understood. Here, we report that SIRT2, a histone deacylase, negatively regulates global protein synthesis by inhibiting the mTORC1 pathway via deacetylating Rheb and promoting Rheb degradation. Our in vitro results suggest that SIRT2 deficiency increases protein synthesis, whereas SIRT2 overexpression suppresses protein synthesis. SIRT2-deficient mice exhibit age-associated and neurohormone-induced cardiac hypertrophy. Here, we report increased global protein synthesis in the hearts of young SIRT2-deficient mice, which may contribute to the development of cardiac hypertrophy. Conversely, cardiac-specific overexpression of SIRT2 reduces global protein synthesis in mice hearts. Mechanistically, SIRT2 binds to and deacetylates Rheb at K151 residue to enhance ubiquitin-proteosome-mediated degradation of Rheb. Depletion of Rheb rescues the increased protein synthesis in SIRT2-inhibited conditions. Our findings suggest that SIRT2 activation can be a potential therapeutic for treating diseases associated with increased protein synthesis.

cell biology↗