Evidence mapPaperPMID 42429864Full record

ArticleMolecular biology reports2026

Nicotinamide mononucleotide ameliorates high glucose/high fat-induced cardiomyocyte metabolic dysfunction through SIRT1-mediated CPT1A stabilization.

Meinv Huang, Zhan Wang, Lishan Zeng, Lifan Zheng, Meifang Wu, Xi Chen

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Article in Molecular biology reports, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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6 authors.

Meinv Huang *Department of Cardiology, The Affiliated Hospital of Putian University, Putian, 351100, China.
Zhan Wang *The Graduate School of Fujian Medical University, Putian, 351100, China.
Lishan ZengDepartment of Cardiology, The Affiliated Hospital of Putian University, Putian, 351100, China.
Lifan ZhengDepartment of Cardiology, The Affiliated Hospital of Putian University, Putian, 351100, China.
Meifang WuDepartment of Cardiology, The Affiliated Hospital of Putian University, Putian, 351100, China. 646691205@qq.com.
Xi ChenDepartment of Cardiology, The Affiliated Hospital of Putian University, Putian, 351100, China. chenxi86513@163.com.

Funding

he Fujian Provincial Natural Science Foundation of China 2024J011466
6 · The paper itself

Abstract

objectiveTo investigate the mechanism of nicotinamide mononucleotide (NMN) in ameliorating high glucose/high fat (HG/HF)-induced metabolic dysfunction in diabetic cardiomyopathy (DCM) through SIRT1-mediated CPT1A stabilization.

methodsDCM cellular model was established using H9c2 cell. After screening optimal NMN concentration via cell counting kit-8 (CCK-8) assay and Western blot, cellular viability, apoptosis, total reactive oxygen species (ROS), mitochondrial function, ATP, and β-hydroxybutyrate (β-OHB) content were measured. The molecular interplay among NMN-SIRT1-CPT1A was further elucidated through co-immunoprecipitation (Co-IP), cycloheximide (CHX) chase assay, MG132 rescue, and CPT1A K675R mutation.

resultsHG/HF reduced H9c2 cells viability by 26.66% and SIRT1 protein expression by 79.30%, both of which were restored by 100 µM NMN. In vitro, NMN enhanced cell viability, suppressed apoptosis and total ROS, stabilized mitochondrial function, and increased ATP and β-OHB content, these protective effects were attenuated by SIRT1 knockdown. Western blot analysis demonstrated NMN upregulated CPT1A and CD36 expression by activating SIRT1. Co-IP revealed that HG/HF markedly elevated the acetylation and ubiquitination of CPT1A, both of which were weakened by NMN treatment. Moreover, SIRT1 directly interacted with CPT1A and deacetylated CPT1A via the proteasomal pathway, thereby blocking its ubiquitination. Additionally, the K675R point mutation further confirmed Lys675 as the specific deacetylation target of SIRT1 on CPT1A.

conclusionNMN activates SIRT1 to deacetylate CPT1A at Lys675, inhibiting its degradation and enhancing mitochondrial ATP and β-OHB generation, thereby mitigating HG/HF-induced injury. These findings provide SIRT1-mediated CPT1A stabilization as a potential therapeutic target for DCM.

Indexed as

Carnitine O-PalmitoyltransferaseDiabetic CardiomyopathiesMyocytes, CardiacNicotinamide MononucleotideSirtuin 1AnimalsApoptosisCell LineCell SurvivalGlucoseHumansMitochondriaRatsReactive Oxygen SpeciesCarnitine O-PalmitoyltransferaseGlucoseNicotinamide MononucleotideReactive Oxygen SpeciesSirt1 protein, ratSirtuin 1AcetylationCPT1ADiabetic cardiomyopathyNicotinamide mononucleotideSIRT1Ubiquitination

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.