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Myocardial Infarction in Neonatal Mice, A Model of Cardiac Regeneration
Published on: May 24, 2016
Nicotinamide mononucleotide protects septic hearts in mice via preventing cyclophilin F modification and lysosomal
Rui Ni1,2,3, Xiao-Yun Ji1,2,3, Ting Cao4
1International Genome Center, Jiangsu University, Zhenjiang, 212013, China.
Abstract:
Myocardial dysfunction is a decisive factor of death in septic patients. Cyclophilin F (PPIF) is a major component of the mitochondrial permeability transition pore (mPTP) and acts as a critical mPTP sensitizer triggering mPTP opening. In sepsis, decreased NAD+ impairs Sirtuin 3 function, which may prevent PPIF de-acetylation. Repletion of NAD+ with nicotinamide mononucleotide (NMN) reduces myocardial dysfunction in septic mice. In addition, administration of the mPTP inhibitor cyclosporine-A attenuated sepsis-induced myocardial dysfunction, and deletion of PPIF reduced lung and liver injuries in sepsis, leading to increased survival. It is plausible that NAD+ repletion with NMN may prevent mPTP opening in protecting septic hearts through PPIF de-acetylation and/or inhibition of mitochondrial ROS-mediated PPIF oxidation. In this study we investigated how NMN alleviated myocardial dysfunction in septic mice. Sepsis was induced in mice by injection of LPS (4 mg/kg, i.p.). Then mice received NMN (500 mg/kg, i.p.) or mito-TEMPO (0.7 mg/kg, i.p.) right after LPS injection, and subjected to echocardiography for assessing myocardial function. At the end of experiment, the heart tissues and sera were collected for analyses. In vitro experiments were conducted in neonatal mouse cardiomyocytes treated with LPS (1 µg/mL) in the presence of NMN (500 µmol/L) or mito-TEMPO (25 nmol/L). We showed that LPS treatment markedly increased mitochondrial ROS production and induced lysosomal dysfunction and aberrant autophagy in cardiomyocytes and mouse hearts, leading to inflammatory responses and myocardial injury and dysfunction in septic mice. NMN administration attenuated LPS-induced deteriorative effects. Selective inhibition of mitochondrial superoxide production with mito-TEMPO attenuated lysosomal dysfunction and aberrant autophagy in septic mouse hearts. Notably, LPS treatment significantly increased acetylation and oxidation of PPIF, which was prevented by NMN in mouse hearts. Knockdown of PPIF replicated the beneficial effects of NMN or mito-TEMPO on ROS production, lysosomal dysfunction, aberrant autophagy, and myocardial injury/dysfunction in sepsis. In addition, administration of NMN abrogated LPS-induced ATP5A1 acetylation and increased ATP5A1 protein levels and ATP production in septic mouse hearts. This study demonstrates that NMN modulates the interplay of mitochondrial ROS and PPIF in maintaining normal lysosomal function and autophagy and protecting ATP5A1 and ATP production during sepsis.
Insights
Nicotinamide mononucleotide (NMN) protects septic mice hearts by preventing mitochondrial damage and restoring cellular functions. NMN treatment reduces inflammation and improves heart function during sepsis.
Area of Science:
- Biochemistry
- Cardiovascular Biology
- Sepsis Research
Background:
- Myocardial dysfunction is a primary cause of death in septic patients.
- Cyclophilin F (PPIF) is a key component of the mitochondrial permeability transition pore (mPTP), and its opening contributes to sepsis-induced heart damage.
- NAD+ depletion in sepsis impairs Sirtuin 3, potentially leading to PPIF deacetylation and increased susceptibility to mPTP opening.
Purpose of the Study:
- To investigate the protective mechanisms of nicotinamide mononucleotide (NMN) against myocardial dysfunction in a mouse model of sepsis.
- To elucidate the role of mitochondrial reactive oxygen species (ROS) and PPIF in NMN's protective effects.
- To determine NMN's impact on lysosomal function, autophagy, and ATP production in septic hearts.
Main Methods:
- Sepsis was induced in mice using lipopolysaccharide (LPS).
- Mice were treated with NMN or mito-TEMPO (a ROS inhibitor). Myocardial function was assessed via echocardiography.
- In vitro studies used LPS-treated neonatal mouse cardiomyocytes with NMN or mito-TEMPO. Heart tissues and sera were analyzed for molecular changes.
Main Results:
- LPS-induced sepsis increased mitochondrial ROS, lysosomal dysfunction, and aberrant autophagy, leading to myocardial injury.
- NMN administration attenuated these LPS-induced effects, reducing ROS production and improving lysosomal and autophagic function.
- NMN prevented PPIF acetylation and oxidation, preserved ATP5A1 levels, and enhanced ATP production in septic hearts.
Conclusions:
- NMN protects against sepsis-induced myocardial dysfunction by modulating mitochondrial ROS and PPIF interactions.
- NMN maintains normal lysosomal function and autophagy, and protects ATP5A1 and ATP production during sepsis.
- NMN represents a potential therapeutic strategy for sepsis-related cardiac complications.

