Javascript must be enabled to continue!
SIRT3 diminishes inflammation and mitigates endotoxin-induced acute lung injury
View through CrossRef
Acute lung injury (ALI) is characterized by exuberant proinflammatory responses and mitochondrial dysfunction. However, the link between mitochondrial dysfunction and inflammation in ALI is not well understood. In this report, we demonstrate a critical role for the mitochondrial NAD
+
-dependent deacetylase, sirtuin-3 (SIRT3), in regulating macrophage mitochondrial bioenergetics, ROS formation, and proinflammatory responses. We found that SIRT3 expression was significantly diminished in lungs of mice subjected to LPS-induced ALI. SIRT3-deficient mice (
SIRT3
–/–
) develop more severe ALI compared with wild-type controls (
SIRT3
+/+
). Macrophages obtained from
SIRT3
–/–
mice show significant alterations in mitochondrial bioenergetic and redox homeostasis, in association with a proinflammatory phenotype characterized by NLRP3 inflammasome activation. The SIRT3 activator viniferin restored macrophage bioenergetic function in LPS-treated macrophages. Viniferin also reduced NLRP3 activation and the production of proinflammatory cytokines, effects that were absent in
SIRT3
–/–
macrophages. In-vivo administration of viniferin reduced production of inflammatory mediators TNF-α, MIP-2, IL-6, IL-1β, and HMGB1, and diminished neutrophil influx and severity of endotoxin-mediated ALI; this protective effect of vinferin was abolished in
SIRT3
–/–
mice. Taken together, our results show that the induction/activation of SIRT3 may serve as a new therapeutic strategy in ALI by modulating cellular bioenergetics, controlling inflammatory responses, and reducing the severity of lung injury.
American Society for Clinical Investigation
Title: SIRT3 diminishes inflammation and mitigates endotoxin-induced acute lung injury
Description:
Acute lung injury (ALI) is characterized by exuberant proinflammatory responses and mitochondrial dysfunction.
However, the link between mitochondrial dysfunction and inflammation in ALI is not well understood.
In this report, we demonstrate a critical role for the mitochondrial NAD
+
-dependent deacetylase, sirtuin-3 (SIRT3), in regulating macrophage mitochondrial bioenergetics, ROS formation, and proinflammatory responses.
We found that SIRT3 expression was significantly diminished in lungs of mice subjected to LPS-induced ALI.
SIRT3-deficient mice (
SIRT3
–/–
) develop more severe ALI compared with wild-type controls (
SIRT3
+/+
).
Macrophages obtained from
SIRT3
–/–
mice show significant alterations in mitochondrial bioenergetic and redox homeostasis, in association with a proinflammatory phenotype characterized by NLRP3 inflammasome activation.
The SIRT3 activator viniferin restored macrophage bioenergetic function in LPS-treated macrophages.
Viniferin also reduced NLRP3 activation and the production of proinflammatory cytokines, effects that were absent in
SIRT3
–/–
macrophages.
In-vivo administration of viniferin reduced production of inflammatory mediators TNF-α, MIP-2, IL-6, IL-1β, and HMGB1, and diminished neutrophil influx and severity of endotoxin-mediated ALI; this protective effect of vinferin was abolished in
SIRT3
–/–
mice.
Taken together, our results show that the induction/activation of SIRT3 may serve as a new therapeutic strategy in ALI by modulating cellular bioenergetics, controlling inflammatory responses, and reducing the severity of lung injury.
Related Results
Abstract 1372: Sirt3 Promotes Survival of Cardiac Myocytes under oxidative stress and Upregulates Mitochondrial Genes Through Nuclear Respiratory Factor
Abstract 1372: Sirt3 Promotes Survival of Cardiac Myocytes under oxidative stress and Upregulates Mitochondrial Genes Through Nuclear Respiratory Factor
Silent information regulator 1 (Sirt1), the prototype member of the sirtuin family, has been implicated in longevity and stress resistance. Sirt3, another member of the sirtuin fam...
Abstract 1143: Pro-proliferative function of SIRT3 in a human melanoma xenograft mouse model
Abstract 1143: Pro-proliferative function of SIRT3 in a human melanoma xenograft mouse model
Abstract
Melanoma is one of the most aggressive forms of skin cancer and is often lethal, if not treated early. Therefore, it is necessary to try to develop novel ta...
Role of sumoylation modification of sirtuin 3 in hypertension-associated
Role of sumoylation modification of sirtuin 3 in hypertension-associated
Abstract
Objective
The present study was designed to investigate whether mitochondrial dysfunction and oxidative stress in HTN-i...
Recent advances in endotoxin tolerance
Recent advances in endotoxin tolerance
AbstractEndotoxin tolerance is defined as a reduced capacity of a cell to respond endotoxin (lipopolysaccharide, LPS) challenge after an initial encounter with endotoxin in advance...
Sirt3 Regulates Radioresistance of Non-small Cell Lung Cancer through ATM-Chk2 Pathway
Sirt3 Regulates Radioresistance of Non-small Cell Lung Cancer through ATM-Chk2 Pathway
Abstract
With high incidence and mortality, non-small cell lung cancer (NSCLC) represent 85-90% in all lung cancer patients. In addition to surgery and chemotherapy, radiot...
A Novel Protective Mechanism for Melatonin Against Acute Lung Injury: Preserving Mitochondrial Dynamic Equilibrium of Lung Epithelial Cells Through SIRT3-Dependent Deacetylation of SOD2
A Novel Protective Mechanism for Melatonin Against Acute Lung Injury: Preserving Mitochondrial Dynamic Equilibrium of Lung Epithelial Cells Through SIRT3-Dependent Deacetylation of SOD2
Abstract
Mitochondrial dynamic equilibrium of lung epithelial cells is disturbed during sepsis, which contributes to abnormal mitochondrial function and acute lung injury (...
Abstract 283: SGK1-Dependent Sirt3 Phosphorylation Regulates Mitochondrial Dynamics
Abstract 283: SGK1-Dependent Sirt3 Phosphorylation Regulates Mitochondrial Dynamics
Mitochondrial dynamics (i.e. fusion and fission) is impaired in models of obesity and can result in target organ dysfunction. However, the mechanisms that regulate mitochondrial dy...
Inhibition of BRD4 activates the AKT-SIRT3 signaling pathway to suppress apoptosis and attenuate hyperoxia-induced lung injury
Inhibition of BRD4 activates the AKT-SIRT3 signaling pathway to suppress apoptosis and attenuate hyperoxia-induced lung injury
As a critical pulmonary complication in oxygen therapy, hyperoxia-induced lung injury (HILI) is featured with edema, alveolar wall thickening, and inflammatory cell infiltration. B...

