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1.
Int J Med Sci ; 21(7): 1194-1203, 2024.
Article En | MEDLINE | ID: mdl-38818468

This study aims to elucidate the roles of Phosphoglycerate Mutase Family Member 5 (Pgam5) and Prohibitin 2 (Phb2) in the context of hyperglycemia-induced myocardial dysfunction, a critical aspect of diabetic cardiomyopathy. The research employed primary cardiomyocytes, which were then subjected to hyperglycemia treatment to mimic diabetic conditions. We used siRNA transfection to knock down Pgam5 and overexpressed Phb2 using adenovirus transfection to assess their individual and combined effects on cardiomyocyte health. Mitochondrial function was evaluated through measurements of mitochondrial membrane potential using the JC-1 probe, and levels of mitochondrial reactive oxygen species (ROS) were assessed. Additionally, the study involved qPCR analysis to quantify the transcriptional changes in genes related to mitochondrial fission and mitophagy. Our findings indicate that hyperglycemia significantly reduces cardiomyocyte viability and impairs mitochondrial function, as evidenced by decreased mitochondrial membrane potential and increased ROS levels. Pgam5 knockdown was observed to mitigate these adverse effects, preserving mitochondrial function and cardiomyocyte viability. On the molecular level, Pgam5 was found to regulate genes associated with mitochondrial fission (such as Drp1, Mff, and Fis1) and mitophagy (including Parkin, Bnip3, and Fundc1). Furthermore, overexpression of Phb2 countered the hyperglycemia-induced mitochondrial dysfunction and normalized the levels of key mitochondrial antioxidant enzymes. The combined data suggest a protective role for both Pgam5 knockdown and Phb2 overexpression against hyperglycemia-induced cellular and mitochondrial damage. The study elucidates the critical roles of Pgam5 and Phb2 in regulating mitochondrial dynamics in the setting of hyperglycemia-induced myocardial dysfunction. By modulating mitochondrial fission and mitophagy, Pgam5 and Phb2 emerge as key players in preserving mitochondrial integrity and cardiomyocyte health under diabetic conditions. These findings contribute significantly to our understanding of the molecular mechanisms underlying diabetic cardiomyopathy and suggest potential therapeutic targets for mitigating myocardial dysfunction in diabetes.


Diabetic Cardiomyopathies , Hyperglycemia , Membrane Potential, Mitochondrial , Mitochondrial Dynamics , Myocytes, Cardiac , Prohibitins , Reactive Oxygen Species , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Mitochondrial Dynamics/genetics , Hyperglycemia/metabolism , Hyperglycemia/complications , Hyperglycemia/genetics , Humans , Diabetic Cardiomyopathies/genetics , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/etiology , Reactive Oxygen Species/metabolism , Animals , Mitophagy/genetics , Phosphoprotein Phosphatases/genetics , Phosphoprotein Phosphatases/metabolism , Repressor Proteins/genetics , Repressor Proteins/metabolism , Mitochondria, Heart/metabolism , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , Rats
2.
Front Immunol ; 15: 1393392, 2024.
Article En | MEDLINE | ID: mdl-38774880

This review provides a comprehensive analysis of the critical role played by macrophages and their underlying mechanisms in the progression of diabetic cardiomyopathy (DCM). It begins by discussing the origins and diverse subtypes of macrophages, elucidating their spatial distribution and modes of intercellular communication, thereby emphasizing their significance in the pathogenesis of DCM. The review then delves into the intricate relationship between macrophages and the onset of DCM, particularly focusing on the epigenetic regulatory mechanisms employed by macrophages in the context of DCM condition. Additionally, the review discusses various therapeutic strategies aimed at targeting macrophages to manage DCM. It specifically highlights the potential of natural food components in alleviating diabetic microvascular complications and examines the modulatory effects of existing hypoglycemic drugs on macrophage activity. These findings, summarized in this review, not only provide fresh insights into the role of macrophages in diabetic microvascular complications but also offer valuable guidance for future therapeutic research and interventions in this field.


Diabetic Cardiomyopathies , Macrophages , Diabetic Cardiomyopathies/immunology , Diabetic Cardiomyopathies/drug therapy , Diabetic Cardiomyopathies/etiology , Diabetic Cardiomyopathies/pathology , Humans , Macrophages/immunology , Macrophages/metabolism , Animals , Hypoglycemic Agents/therapeutic use , Epigenesis, Genetic
3.
Cardiovasc Diabetol ; 23(1): 164, 2024 May 09.
Article En | MEDLINE | ID: mdl-38724987

Dynamin-related protein 1 (Drp1) is a crucial regulator of mitochondrial dynamics, the overactivation of which can lead to cardiovascular disease. Multiple distinct posttranscriptional modifications of Drp1 have been reported, among which S-nitrosylation was recently introduced. However, the detailed regulatory mechanism of S-nitrosylation of Drp1 (SNO-Drp1) in cardiac microvascular dysfunction in diabetes remains elusive. The present study revealed that mitogen-activated protein kinase kinase kinase kinase 4 (MAP4K4) was consistently upregulated in diabetic cardiomyopathy (DCM) and promoted SNO-Drp1 in cardiac microvascular endothelial cells (CMECs), which in turn led to mitochondrial dysfunction and cardiac microvascular disorder. Further studies confirmed that MAP4K4 promoted SNO-Drp1 at human C644 (mouse C650) by inhibiting glutathione peroxidase 4 (GPX4) expression, through which MAP4K4 stimulated endothelial ferroptosis in diabetes. In contrast, inhibition of MAP4K4 via DMX-5804 significantly reduced endothelial ferroptosis, alleviated cardiac microvascular dysfunction and improved cardiac dysfunction in db/db mice by reducing SNO-Drp1. In parallel, the C650A mutation in mice abolished SNO-Drp1 and the role of Drp1 in promoting cardiac microvascular disorder and cardiac dysfunction. In conclusion, our findings demonstrate that MAP4K4 plays an important role in endothelial dysfunction in DCM and reveal that SNO-Drp1 and ferroptosis activation may act as downstream targets, representing potential therapeutic targets for DCM.


Diabetic Cardiomyopathies , Dynamins , Endothelial Cells , Mice, Inbred C57BL , Signal Transduction , Animals , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/genetics , Diabetic Cardiomyopathies/physiopathology , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/enzymology , Diabetic Cardiomyopathies/etiology , Humans , Dynamins/metabolism , Dynamins/genetics , Male , Endothelial Cells/metabolism , Endothelial Cells/pathology , Endothelial Cells/enzymology , Endothelial Cells/drug effects , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Ferroptosis/drug effects , Disease Models, Animal , Cells, Cultured , Mitochondria, Heart/metabolism , Mitochondria, Heart/pathology , Mitochondria, Heart/enzymology , Mice , Protein Processing, Post-Translational , Coronary Circulation , Intracellular Signaling Peptides and Proteins
4.
J Transl Med ; 22(1): 494, 2024 May 24.
Article En | MEDLINE | ID: mdl-38790051

BACKGROUND: Diabetic cardiomyopathy (DCM), a serious complication of diabetes, leads to structural and functional abnormalities of the heart and ultimately evolves to heart failure. IL-37 exerts a substantial influence on the regulation of inflammation and metabolism. Whether IL-37 is involved in DCM is unknown. METHODS: The plasma samples were collected from healthy controls, diabetic patients and DCM patients, and the level of IL-37 and its relationship with heart function were observed. The changes in cardiac function, myocardial fibrosis and mitochondrial injury in DCM mice with or without IL-37 intervention were investigated in vivo. By an in vitro co-culture approach involving HG challenge of cardiomyocytes and fibroblasts, the interaction carried out by cardiomyocytes on fibroblast profibrotic activation was studied. Finally, the possible interactive mediator between cardiomyocytes and fibroblasts was explored, and the intervention role of IL-37 and its relevant molecular mechanisms. RESULTS: We showed that the level of plasma IL-37 in DCM patients was upregulated compared to that in healthy controls and diabetic patients. Both recombinant IL-37 administration or inducing IL-37 expression alleviated cardiac dysfunction and myocardial fibrosis in DCM mice. Mechanically, hyperglycemia impaired mitochondria through SIRT1/AMPK/PGC1α signaling, resulting in significant cardiomyocyte apoptosis and the release of extracellular vesicles containing mtDNA. Fibroblasts then engulfed these mtDNA-enriched vesicles, thereby activating TLR9 signaling and the cGAS-STING pathway to initiate pro-fibrotic process and adverse remodeling. However, the presence of IL-37 ameliorated mitochondrial injury by preserving the activity of SIRT1-AMPK-PGC1α axis, resulting in a reduction in release of mtDNA-enriched vesicle and ultimately attenuating the progression of DCM. CONCLUSIONS: Collectively, our study demonstrates a protective role of IL-37 in DCM, offering a promising therapeutic agent for this disease.


DNA, Mitochondrial , Diabetic Cardiomyopathies , Fibrosis , Interleukin-1 , Mice, Inbred C57BL , Myocytes, Cardiac , Animals , DNA, Mitochondrial/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/drug therapy , Humans , Interleukin-1/metabolism , Male , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/pathology , Myocardium/pathology , Myocardium/metabolism , Fibroblasts/metabolism , Fibroblasts/drug effects , Signal Transduction/drug effects , Middle Aged , Mice , Sirtuin 1/metabolism , Apoptosis/drug effects , Female
5.
Biomed Pharmacother ; 175: 116790, 2024 Jun.
Article En | MEDLINE | ID: mdl-38776677

Diabetic cardiomyopathy (DCM) is a cardiac microvascular complication caused by metabolic disorders. It is characterized by myocardial remodeling and dysfunction. The pathogenesis of DCM is associated with abnormal cellular metabolism and organelle accumulation. Autophagy is thought to play a key role in the diabetic heart, and a growing body of research suggests that modulating autophagy may be a potential therapeutic strategy for DCM. Here, we have summarized the major signaling pathways involved in the regulation of autophagy in DCM, including Adenosine 5'-monophosphate-activated protein kinase (AMPK), mechanistic target of rapamycin (mTOR), Forkhead box subfamily O proteins (FOXOs), Sirtuins (SIRTs), and PTEN-inducible kinase 1 (PINK1)/Parkin. Given the significant role of autophagy in DCM, we further identified natural products and chemical drugs as regulators of autophagy in the treatment of DCM. This review may help to better understand the autophagy mechanism of drugs for DCM and promote their clinical application.


Autophagy , Diabetic Cardiomyopathies , Signal Transduction , Diabetic Cardiomyopathies/drug therapy , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Humans , Autophagy/drug effects , Animals , Signal Transduction/drug effects
6.
Cardiovasc Diabetol ; 23(1): 160, 2024 May 07.
Article En | MEDLINE | ID: mdl-38715043

BACKGROUND: Diabetic cardiomyopathy (DCM) is a crucial complication of long-term chronic diabetes that can lead to myocardial hypertrophy, myocardial fibrosis, and heart failure. There is increasing evidence that DCM is associated with pyroptosis, a form of inflammation-related programmed cell death. Growth differentiation factor 11 (GDF11) is a member of the transforming growth factor ß superfamily, which regulates oxidative stress, inflammation, and cell survival to mitigate myocardial hypertrophy, myocardial infarction, and vascular injury. However, the role of GDF11 in regulating pyroptosis in DCM remains to be elucidated. This research aims to investigate the role of GDF11 in regulating pyroptosis in DCM and the related mechanism. METHODS AND RESULTS: Mice were injected with streptozotocin (STZ) to induce a diabetes model. H9c2 cardiomyocytes were cultured in high glucose (50 mM) to establish an in vitro model of diabetes. C57BL/6J mice were preinjected with adeno-associated virus 9 (AAV9) intravenously via the tail vein to specifically overexpress myocardial GDF11. GDF11 attenuated pyroptosis in H9c2 cardiomyocytes after high-glucose treatment. In diabetic mice, GDF11 alleviated cardiomyocyte pyroptosis, reduced myocardial fibrosis, and improved cardiac function. Mechanistically, GDF11 inhibited pyroptosis by preventing inflammasome activation. GDF11 achieved this by specifically binding to apoptosis-associated speck-like protein containing a CARD (ASC) and preventing the assembly and activation of the inflammasome. Additionally, the expression of GDF11 during pyroptosis was regulated by peroxisome proliferator-activated receptor α (PPARα). CONCLUSION: These findings demonstrate that GDF11 can treat diabetic cardiomyopathy by alleviating pyroptosis and reveal the role of the PPARα-GDF11-ASC pathway in DCM, providing ideas for new strategies for cardioprotection.


Diabetes Mellitus, Experimental , Diabetic Cardiomyopathies , Fibrosis , Growth Differentiation Factors , Inflammasomes , Mice, Inbred C57BL , Myocytes, Cardiac , Pyroptosis , Signal Transduction , Animals , Pyroptosis/drug effects , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/prevention & control , Diabetic Cardiomyopathies/etiology , Diabetic Cardiomyopathies/physiopathology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Myocytes, Cardiac/drug effects , Diabetes Mellitus, Experimental/metabolism , Cell Line , Inflammasomes/metabolism , Male , Growth Differentiation Factors/metabolism , Rats , Blood Glucose/metabolism , Mice , Glucose/metabolism , Glucose/toxicity , Bone Morphogenetic Proteins , PPAR alpha
7.
Cell Mol Life Sci ; 81(1): 228, 2024 May 22.
Article En | MEDLINE | ID: mdl-38777955

Diabetic cardiomyopathy (DCM) is a prevalent complication of type 2 diabetes (T2D). 6-phosphofructo-2-kinase/fructose-2,6-biphosphatase 3 (PFKFB3) is a glycolysis regulator. However, the potential effects of PFKFB3 in the DCM remain unclear. In comparison to db/m mice, PFKFB3 levels decreased in the hearts of db/db mice. Cardiac-specific PFKFB3 overexpression inhibited myocardial oxidative stress and cardiomyocyte apoptosis, suppressed mitochondrial fragmentation, and partly restored mitochondrial function in db/db mice. Moreover, PFKFB3 overexpression stimulated glycolysis. Interestingly, based on the inhibition of glycolysis, PFKFB3 overexpression still suppressed oxidative stress and apoptosis of cardiomyocytes in vitro, which indicated that PFKFB3 overexpression could alleviate DCM independent of glycolysis. Using mass spectrometry combined with co-immunoprecipitation, we identified optic atrophy 1 (OPA1) interacting with PFKFB3. In db/db mice, the knockdown of OPA1 receded the effects of PFKFB3 overexpression in alleviating cardiac remodeling and dysfunction. Mechanistically, PFKFB3 stabilized OPA1 expression by promoting E3 ligase NEDD4L-mediated atypical K6-linked polyubiquitination and thus prevented the degradation of OPA1 by the proteasomal pathway. Our study indicates that PFKFB3/OPA1 could be potential therapeutic targets for DCM.


Diabetic Cardiomyopathies , GTP Phosphohydrolases , Myocytes, Cardiac , Phosphofructokinase-2 , Ubiquitination , Phosphofructokinase-2/metabolism , Phosphofructokinase-2/genetics , Animals , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/genetics , Mice , GTP Phosphohydrolases/metabolism , GTP Phosphohydrolases/genetics , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Male , Oxidative Stress , Apoptosis/genetics , Myocardium/metabolism , Myocardium/pathology , Mice, Inbred C57BL , Diabetes Mellitus, Type 2/metabolism , Diabetes Mellitus, Type 2/genetics , Glycolysis , Humans , Protein Stability
8.
J Cell Mol Med ; 28(10): e18324, 2024 May.
Article En | MEDLINE | ID: mdl-38760897

Early research suggested that bone morphogenetic protein 10 (BMP10) is primarily involved in cardiac development and congenital heart disease processes. BMP10 is a newly identified cardiac-specific protein. In recent years, reports have emphasized the effects of BMP10 on myocardial apoptosis, fibrosis and immune response, as well as its synergistic effects with BMP9 in vascular endothelium and role in endothelial dysfunction. We believe that concentrating on this aspect of the study will enhance our knowledge of the pathogenesis of diabetes and the cardiovascular field. However, there have been no reports of any reviews discussing the role of BMP10 in diabetes and cardiovascular disease. In addition, the exact pathogenesis of diabetic cardiomyopathy is not fully understood, including myocardial energy metabolism disorders, microvascular changes, abnormal apoptosis of cardiomyocytes, collagen structural changes and myocardial fibrosis, all of which cause cardiac function impairment directly or indirectly and interact with one another. This review summarizes the research results of BMP10 in cardiac development, endothelial function and cardiovascular disease in an effort to generate new ideas for future research into diabetic cardiomyopathy.


Bone Morphogenetic Proteins , Cardiovascular Diseases , Diabetes Mellitus , Diabetic Cardiomyopathies , Humans , Animals , Bone Morphogenetic Proteins/metabolism , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/pathology , Diabetes Mellitus/metabolism , Diabetes Mellitus/pathology , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Myocardium/metabolism , Myocardium/pathology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Apoptosis
9.
Cardiovasc Diabetol ; 23(1): 139, 2024 Apr 25.
Article En | MEDLINE | ID: mdl-38664790

BACKGROUND: Diabetic cardiomyopathy (DCM) poses a growing health threat, elevating heart failure risk in diabetic individuals. Understanding DCM is crucial, with fibroblasts and endothelial cells playing pivotal roles in driving myocardial fibrosis and contributing to cardiac dysfunction. Advances in Multimodal single-cell profiling, such as scRNA-seq and scATAC-seq, provide deeper insights into DCM's unique cell states and molecular landscape for targeted therapeutic interventions. METHODS: Single-cell RNA and ATAC data from 10x Multiome libraries were processed using Cell Ranger ARC v2.0.1. Gene expression and ATAC data underwent Seurat and Signac filtration. Differential gene expression and accessible chromatin regions were identified. Transcription factor activity was estimated with chromVAR, and Cis-coaccessibility networks were calculated using Cicero. Coaccessibility connections were compared to the GeneHancer database. Gene Ontology analysis, biological process scoring, cell-cell communication analysis, and gene-motif correlation was performed to reveal intricate molecular changes. Immunofluorescent staining utilized various antibodies on paraffin-embedded tissues to verify the findings. RESULTS: This study integrated scRNA-seq and scATAC-seq data obtained from hearts of WT and DCM mice, elucidating molecular changes at the single-cell level throughout the diabetic cardiomyopathy progression. Robust and accurate clustering analysis of the integrated data revealed altered cell proportions, showcasing decreased endothelial cells and macrophages, coupled with increased fibroblasts and myocardial cells in the DCM group, indicating enhanced fibrosis and endothelial damage. Chromatin accessibility analysis unveiled unique patterns in cell types, with heightened transcriptional activity in myocardial cells. Subpopulation analysis highlighted distinct changes in cardiomyocytes and fibroblasts, emphasizing pathways related to fatty acid metabolism and cardiac contraction. Fibroblast-centered communication analysis identified interactions with endothelial cells, implicating VEGF receptors. Endothelial cell subpopulations exhibited altered gene expressions, emphasizing contraction and growth-related pathways. Candidate regulators, including Tcf21, Arnt, Stat5a, and Stat5b, were identified, suggesting their pivotal roles in DCM development. Immunofluorescence staining validated marker genes of cell subpopulations, confirming PDK4, PPARγ and Tpm1 as markers for metabolic pattern-altered cardiomyocytes, activated fibroblasts and endothelial cells with compromised proliferation. CONCLUSION: Our integrated scRNA-seq and scATAC-seq analysis unveils intricate cell states and molecular alterations in diabetic cardiomyopathy. Identified cell type-specific changes, transcription factors, and marker genes offer valuable insights. The study sheds light on potential therapeutic targets for DCM.


Diabetic Cardiomyopathies , Single-Cell Analysis , Transcriptome , Diabetic Cardiomyopathies/genetics , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/physiopathology , Animals , Gene Expression Profiling , Chromatin/metabolism , Chromatin/genetics , Mice, Inbred C57BL , Gene Regulatory Networks , Chromatin Assembly and Disassembly , Disease Models, Animal , Male , RNA-Seq , Gene Expression Regulation , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Fibroblasts/metabolism , Fibroblasts/pathology , Fibrosis , Mice , Endothelial Cells/metabolism , Endothelial Cells/pathology
10.
Stem Cell Res Ther ; 15(1): 120, 2024 Apr 24.
Article En | MEDLINE | ID: mdl-38659015

BACKGROUND: Diabetic cardiomyopathy (DCM) is a serious health-threatening complication of diabetes mellitus characterized by myocardial fibrosis and abnormal cardiac function. Human umbilical cord mesenchymal stromal cells (hUC-MSCs) are a potential therapeutic tool for DCM and myocardial fibrosis via mechanisms such as the regulation of microRNA (miRNA) expression and inflammation. It remains unclear, however, whether hUC-MSC therapy has beneficial effects on cardiac function following different durations of diabetes and which mechanistic aspects of DCM are modulated by hUC-MSC administration at different stages of its development. This study aimed to investigate the therapeutic effects of intravenous administration of hUC-MSCs on DCM following different durations of hyperglycemia in an experimental male model of diabetes and to determine the effects on expression of candidate miRNAs, target mRNA and inflammatory mediators. METHODS: A male mouse model of diabetes was induced by multiple low-dose streptozotocin injections. The effects on severity of DCM of intravenous injections of hUC-MSCs and saline two weeks previously were compared at 10 and 18 weeks after diabetes induction. At both time-points, biochemical assays, echocardiography, histopathology, polymerase chain reaction (PCR), immunohistochemistry and enzyme-linked immunosorbent assays (ELISA) were used to analyze blood glucose, body weight, cardiac structure and function, degree of myocardial fibrosis and expression of fibrosis-related mRNA, miRNA and inflammatory mediators. RESULTS: Saline-treated diabetic male mice had impaired cardiac function and increased cardiac fibrosis after 10 and 18 weeks of diabetes. At both time-points, cardiac dysfunction and fibrosis were improved in hUC-MSC-treated mice. Pro-fibrotic indicators (α-SMA, collagen I, collagen III, Smad3, Smad4) were reduced and anti-fibrotic mediators (FGF-1, miRNA-133a) were increased in hearts of diabetic animals receiving hUC-MSCs compared to saline. Increased blood levels of pro-inflammatory cytokines (IL-6, TNF, IL-1ß) and increased cardiac expression of IL-6 were also observed in saline-treated mice and were reduced by hUC-MSCs at both time-points, but to a lesser degree at 18 weeks. CONCLUSION: Intravenous injection of hUC-MSCs ameliorated key functional and structural features of DCM in male mice with diabetes of shorter and longer duration. Mechanistically, these effects were associated with restoration of intra-myocardial expression of miRNA-133a and its target mRNA COL1AI as well as suppression of systemic and localized inflammatory mediators.


Diabetes Mellitus, Experimental , Diabetic Cardiomyopathies , Fibrosis , Mesenchymal Stem Cell Transplantation , Mesenchymal Stem Cells , MicroRNAs , Myocardium , Umbilical Cord , Animals , Humans , Male , Mice , Diabetes Mellitus, Experimental/therapy , Diabetes Mellitus, Experimental/metabolism , Diabetic Cardiomyopathies/therapy , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/genetics , Fibrosis/therapy , Mesenchymal Stem Cell Transplantation/methods , Mesenchymal Stem Cells/metabolism , Mice, Inbred C57BL , MicroRNAs/genetics , MicroRNAs/metabolism , Myocardium/metabolism , Myocardium/pathology , Umbilical Cord/cytology , Umbilical Cord/metabolism
11.
J Transl Med ; 22(1): 390, 2024 Apr 26.
Article En | MEDLINE | ID: mdl-38671439

BACKGROUND: The progression of diabetic cardiomyopathy (DCM) is noticeably influenced by mitochondrial dysfunction. Variants of caveolin 3 (CAV3) play important roles in cardiovascular diseases. However, the potential roles of CAV3 in mitochondrial function in DCM and the related mechanisms have not yet been elucidated. METHODS: Cardiomyocytes were cultured under high-glucose and high-fat (HGHF) conditions in vitro, and db/db mice were employed as a diabetes model in vivo. To investigate the role of CAV3 in DCM and to elucidate the molecular mechanisms underlying its involvement in mitochondrial function, we conducted Liquid chromatography tandem mass spectrometry (LC-MS/MS) analysis and functional experiments. RESULTS: Our findings demonstrated significant downregulation of CAV3 in the cardiac tissue of db/db mice, which was found to be associated with cardiomyocyte apoptosis in DCM. Importantly, cardiac-specific overexpression of CAV3 effectively inhibited the progression of DCM, as it protected against cardiac dysfunction and cardiac remodeling associated by alleviating cardiomyocyte mitochondrial dysfunction. Furthermore, mass spectrometry analysis and immunoprecipitation assays indicated that CAV3 interacted with NDUFA10, a subunit of mitochondrial complex I. CAV3 overexpression reduced the degradation of lysosomal pathway in NDUFA10, restored the activity of mitochondrial complex I and improved mitochondrial function. Finally, our study demonstrated that CAV3 overexpression restored mitochondrial function and subsequently alleviated DCM partially through NDUFA10. CONCLUSIONS: The current study provides evidence that CAV3 expression is significantly downregulated in DCM. Upregulation of CAV3 interacts with NDUFA10, inhibits the degradation of lysosomal pathway in NDUFA10, a subunit of mitochondrial complex I, restores the activity of mitochondrial complex I, ameliorates mitochondrial dysfunction, and thereby protects against DCM. These findings indicate that targeting CAV3 may be a promising approach for the treatment of DCM.


Caveolin 3 , Diabetic Cardiomyopathies , Electron Transport Complex I , Mitochondria , Myocytes, Cardiac , Animals , Male , Mice , Apoptosis , Caveolin 3/metabolism , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Electron Transport Complex I/metabolism , Mice, Inbred C57BL , Mitochondria/metabolism , Mitochondria, Heart/metabolism , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology
12.
Biomed Pharmacother ; 175: 116613, 2024 Jun.
Article En | MEDLINE | ID: mdl-38657502

Diabetic cardiomyopathy (DCM) contributes significantly to the heightened mortality rate observed among diabetic patients, with myocardial fibrosis (MF) being a pivotal element in the disease's progression. Hydrogen sulfide (H2S) has been shown to mitigate MF, but the specific underlying mechanisms have yet to be thoroughly understood. A connection has been established between the evolution of DCM and the incidence of cardiomyocyte pyroptosis. Our research offers insights into H2S protective impact and its probable mode of action against DCM, analyzed through the lens of MF. In this study, a diabetic rat model was developed using intraperitoneal injections of streptozotocin (STZ), and hyperglycemia-stimulated cardiomyocytes were employed to replicate the cellular environment of DCM. There was a marked decline in the expression of cystathionine γ-lyase (CSE), a catalyst for H2S synthesis, in both the STZ-induced diabetic rats and hyperglycemia-stimulated cardiomyocytes. Experimental results in vivo indicated that H2S ameliorates MF and enhances cardiac functionality in diabetic rats by mitigating cardiomyocyte pyroptosis. In vitro assessments highlighted the induction of cardiomyocyte pyroptosis and the subsequent decline in cell viability under hyperglycemic conditions. However, the administration of sodium hydrosulfide (NaHS) curtailed cardiomyocyte pyroptosis and augmented cell viability. In contrast, propargylglycine (PAG), a CSE inhibitor, reversed the effects rendered by NaHS administration. Additional exploration indicated that the mitigating effect of H2S on cardiomyocyte pyroptosis is modulated through the ROS/NLRP3 pathway. In essence, our findings corroborate the potential of H2S in alleviating MF in diabetic subjects. This therapeutic effect is likely attributable to the regulation of cardiomyocyte pyroptosis via the ROS/NLRP3 pathway. This discovery furnishes a prospective therapeutic target for the amelioration and management of MF associated with diabetes.


Diabetes Mellitus, Experimental , Diabetic Cardiomyopathies , Fibrosis , Hydrogen Sulfide , Myocytes, Cardiac , Pyroptosis , Rats, Sprague-Dawley , Animals , Pyroptosis/drug effects , Hydrogen Sulfide/metabolism , Hydrogen Sulfide/pharmacology , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/drug therapy , Diabetic Cardiomyopathies/prevention & control , Diabetes Mellitus, Experimental/drug therapy , Diabetes Mellitus, Experimental/complications , Diabetes Mellitus, Experimental/metabolism , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Male , Rats , Cystathionine gamma-Lyase/metabolism , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Streptozocin , Myocardium/pathology , Myocardium/metabolism , Glycine/pharmacology , Glycine/analogs & derivatives , Cell Survival/drug effects
13.
Biomed Pharmacother ; 175: 116631, 2024 Jun.
Article En | MEDLINE | ID: mdl-38663105

Diabetes mellitus (DM) is a prevalent chronic disease in the 21st century due to increased lifespan and unhealthy lifestyle choices. Extensive research indicates that exercise can play a significant role in regulating systemic metabolism by improving energy metabolism and mitigating various metabolic disorders, including DM. Irisin, a well-known exerkine, was initially reported to enhance energy expenditure by indicating the browning of white adipose tissue (WAT) through peroxisome proliferator-activated receptor γ coactivator 1α (PGC-1α) signaling. In this review, we summarize the potential mechanisms underlying the beneficial effects of Irisin on glucose dysmetabolism, including reducing gluconeogenesis, enhancing insulin energy expenditure, and promoting glycogenesis. Additionally, we highlight Irisin's potential to improve diabetic vascular diseases by stimulating nitric oxide (NO) production, reducing oxidative and nitrosative stress, curbing inflammation, and attenuating endothelial cell aging. Furthermore, we discuss the potential of Irisin to improve diabetic cardiomyopathy by preventing cardiomyocyte loss and reducing myocardial hypertrophy and fibrosis. Given Irisin's promising functions in managing diabetic cardiomyopathy and vascular diseases, targeting Irisin for therapeutic purposes could be a fruitful avenue for future research and clinical interventions.


Diabetic Cardiomyopathies , Fibronectins , Humans , Fibronectins/metabolism , Animals , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Angiopathies/metabolism , Energy Metabolism , Vascular Diseases/metabolism , Vascular Diseases/drug therapy
14.
Biomed Pharmacother ; 174: 116589, 2024 May.
Article En | MEDLINE | ID: mdl-38636400

Diabetic cardiomyopathy (DCM) is a common severe complication of diabetes that occurs independently of hypertension, coronary artery disease, and valvular cardiomyopathy, eventually leading to heart failure. Previous studies have reported that Tectorigenin (TEC) possesses extensive anti-inflammatory and anti-oxidative stress properties. In this present study, the impact of TEC on diabetic cardiomyopathy was examined. The model of DCM in mice was established with the combination of a high-fat diet and STZ treatment. Remarkably, TEC treatment significantly attenuated cardiac fibrosis and improved cardiac dysfunction. Concurrently, TEC was also found to mitigate hyperglycemia and hyperlipidemia in the DCM mouse. At the molecular level, TEC is involved in the activation of AMPK, both in vitro and in vivo, by enhancing its phosphorylation. This is achieved through the regulation of endothelial-mesenchymal transition via the AMPK/TGFß/Smad3 pathway. Furthermore, it was demonstrated that the level of ubiquitination of the adiponectin receptor 1 (AdipoR1) protein is associated with TEC-mediated improvement of cardiac dysfunction in DCM mice. Notably the substantial reduction of myocardial fibrosis. In conclusion, TEC improves cardiac fibrosis in DCM mice by modulating the AdipoR1/AMPK signaling pathway. These findings suggest that TEC could be an effective therapeutic agent for the treatment of diabetic cardiomyopathy.


Diabetes Mellitus, Experimental , Diabetic Cardiomyopathies , Isoflavones , Animals , Mice , AMP-Activated Protein Kinases/drug effects , AMP-Activated Protein Kinases/metabolism , Diabetes Mellitus, Experimental/drug therapy , Diabetes Mellitus, Experimental/complications , Diabetic Cardiomyopathies/drug therapy , Diabetic Cardiomyopathies/prevention & control , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/etiology , Diet, High-Fat/adverse effects , Epithelial-Mesenchymal Transition/drug effects , Fibrosis/drug therapy , Isoflavones/pharmacology , Isoflavones/therapeutic use , Mice, Inbred C57BL , Myocardium/pathology , Myocardium/metabolism , Receptors, Adiponectin/drug effects , Receptors, Adiponectin/metabolism , Signal Transduction/drug effects , Smad3 Protein/metabolism , Streptozocin
15.
Free Radic Biol Med ; 218: 149-165, 2024 Jun.
Article En | MEDLINE | ID: mdl-38570171

Proper protein degradation is required for cellular protein homeostasis and organ function. Particularly, in post-mitotic cells, such as cardiomyocytes, unbalanced proteolysis due to inflammatory stimuli and oxidative stress contributes to organ dysfunction. To ensure appropriate protein turnover, eukaryotic cells exert two main degradation systems, the ubiquitin-proteasome-system and the autophagy-lysosome-pathway. It has been shown that proteasome activity affects the development of cardiac dysfunction differently, depending on the type of heart failure. Studies analyzing the inducible subtype of the proteasome, the immunoproteasome (i20S), demonstrated that the i20S plays a double role in diseased hearts. While i20S subunits are increased in cardiac hypertrophy, atrial fibrillation and partly in myocarditis, the opposite applies to diabetic cardiomyopathy and ischemia/reperfusion injury. In addition, the i20S appears to play a role in autophagy modulation depending on heart failure phenotype. This review summarizes the current literature on the i20S in different heart failure phenotypes, emphasizing the two faces of i20S in injured hearts. A selection of established i20S inhibitors is introduced and signaling pathways linking the i20S to autophagy are highlighted. Mapping the interplay of the i20S and autophagy in different types of heart failure offers potential approaches for developing treatment strategies against heart failure.


Autophagy , Heart Failure , Proteasome Endopeptidase Complex , Heart Failure/pathology , Heart Failure/metabolism , Heart Failure/genetics , Heart Failure/immunology , Humans , Proteasome Endopeptidase Complex/metabolism , Animals , Myocytes, Cardiac/pathology , Myocytes, Cardiac/metabolism , Phenotype , Signal Transduction , Proteolysis , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/genetics , Myocarditis/pathology , Myocarditis/metabolism , Myocarditis/immunology , Myocarditis/genetics , Cardiomegaly/pathology , Cardiomegaly/metabolism , Cardiomegaly/genetics
16.
Biochim Biophys Acta Mol Basis Dis ; 1870(5): 167158, 2024 Jun.
Article En | MEDLINE | ID: mdl-38588780

OBJECTIVES: Diabetic cardiomyopathy (DCM) is the leading cause of mortality in type 2 diabetes mellitus (T2DM) patients, with its underlying mechanisms still elusive. This study aims to investigate the role of cholesterol-25-monooxygenase (CH25H) in T2DM induced cardiomyopathy. METHODS: High fat diet combined with streptozotocin (HFD/STZ) were used to establish a T2DM model. CH25H and its product 25-hydroxycholesterol (25HC) were detected in the hearts of T2DM model. Gain- or loss-of-function of CH25H were performed by receiving AAV9-cTNT-CH25H or CH25H knockout (CH25H-/-) mice with HFD/STZ treatment. Cardiac function was evaluated using echocardiography, and cardiac tissues were collected for immunoblot analysis, histological assessment and quantitative polymerase chain reaction (qPCR). Mitochondrial morphology and function were evaluated using transmission electron microscopy (TEM) and Seahorse XF Cell Mito Stress Test Kit. RNA-sequence analysis was performed to determine the molecular changes associated with CH25H deletion. RESULTS: CH25H and 25HC were significantly decreased in the hearts of T2DM mice. CH25H-/- mice treated with HFD/STZ exhibited impaired mitochondrial function and structure, increased lipid accumulation, and aggregated cardiac dysfunction. Conversely, T2DM mice receiving AAV9-CH25H displayed cardioprotective effects. Mechanistically, RNA sequencing and qPCR analysis revealed that CH25H deficiency decreased peroxisome proliferator-activated receptor-γ coactivator-1α (PGC-1α) and its target gene expression. Additionally, administration of ZLN005, a potent PGC-1α activator, partially protected against high glucose and palmitic acid induced mitochondria dysfunction and lipid accumulation in vitro. CONCLUSION: Our study provides compelling evidence supporting the protective role of CH25H in T2DM-induced cardiomyopathy. Furthermore, the regulation of PGC-1α may be intricately involved in this cardioprotective process.


Diabetes Mellitus, Experimental , Diabetes Mellitus, Type 2 , Diabetic Cardiomyopathies , Mice, Knockout , Animals , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/prevention & control , Diabetic Cardiomyopathies/etiology , Diabetes Mellitus, Type 2/complications , Diabetes Mellitus, Type 2/metabolism , Mice , Male , Diabetes Mellitus, Experimental/complications , Diabetes Mellitus, Experimental/metabolism , Diabetes Mellitus, Experimental/pathology , Steroid Hydroxylases/metabolism , Steroid Hydroxylases/genetics , Diet, High-Fat/adverse effects , Mice, Inbred C57BL , Hydroxycholesterols/metabolism , Myocardium/metabolism , Myocardium/pathology , Mitochondria, Heart/metabolism , Mitochondria, Heart/pathology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/metabolism , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/genetics
17.
Eur J Pharmacol ; 974: 176609, 2024 Jul 05.
Article En | MEDLINE | ID: mdl-38677536

PURPOSE: Diabetic cardiomyopathy is a prevalent cardiovascular complication of diabetes mellitus. This study aimed to investigate the effects of ginsenoside Rb1 (GRb1) on the diabetic myocardium. METHODS: Leptin receptor-deficient db/db mice and palmitic acid (PA)-treated cardiomyocyte models were utilized. Cardiac systolic and diastolic function, mitochondrial morphology, and respiratory chain function were determined. The expression of mitochondrial dynamics proteins was measured. Mitofusin 2 (Mfn2) overexpression and inhibition were achieved by lentiviral infection and small interfering RNA (siRNA) transfection. RESULTS: In comparison to non-diabetic mice, db/db mice exhibited significant increases in body weight, blood glucose, blood lipids, and cardiac free fatty acid levels. This was accompanied by myocardial hypertrophy and left ventricular diastolic dysfunction, which were significantly ameliorated by GRb1 intervention. Stimulation with PA increased oxidative stress and apoptosis, and decreased viability in H9c2 cardiomyocytes. PA also reduced sarcomere contractility and relaxation in adult mice ventricular myocytes. PA-induced cellular and mitochondrial damage were reversed with GRb1 treatment. The cardiac tissue of db/db mice and PA-treated cardiomyocytes exhibited a decrease in Mfn2 expression, which was markedly improved by GRb1. Mfn2 overexpression reversed PA-induced mitochondrial fragmentation and functional damage in cardiomyocytes, while inhibition of Mfn2 expression by siRNA transfection blocked the protective effects of GRb1. CONCLUSION: GRb1 alleviated myocardial lipid accumulation and mitochondrial injury, and attenuated ventricular diastolic dysfunction in diabetic mice. The regulation of Mfn2 was involved in the protective effects of GRb1 against lipotoxic myocardial injury.


Diabetic Cardiomyopathies , GTP Phosphohydrolases , Ginsenosides , Myocytes, Cardiac , Animals , Ginsenosides/pharmacology , Ginsenosides/therapeutic use , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/drug therapy , Diabetic Cardiomyopathies/pathology , Mice , GTP Phosphohydrolases/metabolism , GTP Phosphohydrolases/genetics , Male , Palmitic Acid/pharmacology , Apoptosis/drug effects , Oxidative Stress/drug effects , Diabetes Mellitus, Experimental/complications , Diabetes Mellitus, Experimental/drug therapy , Diabetes Mellitus, Experimental/metabolism , Rats , Receptors, Leptin/genetics , Receptors, Leptin/metabolism , Receptors, Leptin/deficiency , Cell Line , Mice, Inbred C57BL , Myocardium/pathology , Myocardium/metabolism
18.
BMC Genomics ; 25(1): 312, 2024 Mar 26.
Article En | MEDLINE | ID: mdl-38532337

BACKGROUND: Diabetic cardiomyopathy (DCM) is becoming a very well-known clinical entity and leads to increased heart failure in diabetic patients. Long non-coding RNAs (LncRNAs) play an important role in the pathogenesis of DCM. In the present study, the expression profiles of lncRNAs and mRNAs were illuminated in myocardium from DCM mice, with purpose of exploring probable pathological processes of DCM involved by differentially expressed genes in order to provide a new direction for the future researches of DCM. RESULTS: The results showed that a total of 93 differentially expressed lncRNA transcripts and 881 mRNA transcripts were aberrantly expressed in db/db mice compared with the controls. The top 6 differentially expressed lncRNAs like up-regulated Hmga1b, Gm8909, Gm50252 and down-regulated Msantd4, 4933413J09Rik, Gm41414 have not yet been reported in DCM. The lncRNAs-mRNAs co-expression network analysis showed that LncRNA 2610507I01Rik, 2310015A16Rik, Gm10503, A930015D03Rik and Gm48483 were the most relevant to differentially expressed mRNAs. CONCLUSION: Our results showed that db/db DCM mice exist differentially expressed lncRNAs and mRNAs in hearts. These differentially expressed lncRNAs may be involved in the pathological process of cardiomyocyte apoptosis and fibrosis in DCM.


Diabetes Mellitus , Diabetic Cardiomyopathies , RNA, Long Noncoding , Humans , Mice , Animals , RNA, Long Noncoding/genetics , Diabetic Cardiomyopathies/genetics , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Gene Expression Profiling/methods , Myocardium/metabolism , Computational Biology , RNA, Messenger/genetics , Gene Regulatory Networks , Diabetes Mellitus/metabolism , Diabetes Mellitus/pathology
19.
Biochim Biophys Acta Mol Basis Dis ; 1870(5): 167140, 2024 Jun.
Article En | MEDLINE | ID: mdl-38548092

Heart failure (HF) is one of the major causes of death among diabetic patients. Although studies have shown that curcumin analog C66 can remarkably relieve diabetes-associated cardiovascular and kidney complications, the role of SJ-12, SJ-12, a novel curcumin analog, in diabetic cardiomyopathy and its molecular targets are unknown. 7-week-old male C57BL/6 mice were intraperitoneally injected with single streptozotocin (STZ) (160 mg/kg) to develop diabetic cardiomyopathy (DCM). The diabetic mice were then treated with SJ-12 via gavage for two months. Body weight, fast blood glucose, cardiac utrasonography, myocardial injury markers, pathological morphology of the heart, hypertrophic and fibrotic markers were assessed. The potential target of SJ-12 was evaluated via RNA-sequencing analysis. The O-GlcNAcylation levels of SP1 were detected via immunoprecipitation. SJ-12 effectively suppressed myocardial hypertrophy and fibrosis, thereby preventing heart dysfunction in mice with STZ-induced heart failure. RNA-sequencing analysis revealed that SJ-12 exerted its therapeutic effects through the modulation of the calcium signaling pathway. Furthermore, SJ-12 reduced the O-GlcNAcylation levels of SP1 by inhibiting O-linked N-acetylglucosamine transferase (OGT). Also, SJ-12 stabilized Sarcoplasmic/Endoplasmic Reticulum Calcium ATPase 2a (SERCA2a), a crucial regulator of calcium homeostasis, thus reducing hypertrophy and fibrosis in mouse hearts and cultured cardiomyocytes. However, the anti-fibrotic effects of SJ-12 were not detected in SERCA2a or OGT-silenced cardiomyocytes, indicating that SJ-12 can prevent DCM by targeting OGT-dependent O-GlcNAcylation of SP1.These findings indicate that SJ-12 can exert cardioprotective effects in STZ-induced mice by reducing the O-GlcNAcylation levels of SP1, thus stabilizing SERCA2a and reducing myocardial fibrosis and hypertrophy. Therefore, SJ-12 can be used for the treatment of diabetic cardiomyopathy.


Diabetes Mellitus, Experimental , Diabetic Cardiomyopathies , Mice, Inbred C57BL , Sarcoplasmic Reticulum Calcium-Transporting ATPases , Animals , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diabetic Cardiomyopathies/drug therapy , Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism , Sarcoplasmic Reticulum Calcium-Transporting ATPases/genetics , Male , Mice , Diabetes Mellitus, Experimental/complications , Diabetes Mellitus, Experimental/metabolism , Diabetes Mellitus, Experimental/pathology , Diabetes Mellitus, Experimental/drug therapy , Streptozocin , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/pathology , Fibrosis , Sp1 Transcription Factor/metabolism , Sp1 Transcription Factor/genetics , Calcium Signaling/drug effects
20.
Acta Pharmacol Sin ; 45(6): 1175-1188, 2024 Jun.
Article En | MEDLINE | ID: mdl-38459256

Diabetic cardiomyopathy (DCM), one of the most serious long-term consequences of diabetes, is closely associated with oxidative stress, inflammation and apoptosis in the heart. MACRO domain containing 1 (Macrod1) is an ADP-ribosylhydrolase 1 that is highly enriched in mitochondria, participating in the pathogenesis of cardiovascular diseases. In this study, we investigated the role of Macrod1 in DCM. A mice model was established by feeding a high-fat diet (HFD) and intraperitoneal injection of streptozotocin (STZ). We showed that Macrod1 expression levels were significantly downregulated in cardiac tissue of DCM mice. Reduced expression of Macrod1 was also observed in neonatal rat cardiomyocytes (NRCMs) treated with palmitic acid (PA, 400 µM) in vitro. Knockout of Macrod1 in DCM mice not only worsened glycemic control, but also aggravated cardiac remodeling, mitochondrial dysfunction, NAD+ consumption and oxidative stress, whereas cardiac-specific overexpression of Macrod1 partially reversed these pathological processes. In PA-treated NRCMs, overexpression of Macrod1 significantly inhibited PARP1 expression and restored NAD+ levels, activating SIRT3 to resist oxidative stress. Supplementation with the NAD+ precursor Niacin (50 µM) alleviated oxidative stress in PA-stimulated cardiomyocytes. We revealed that Macrod1 reduced NAD+ consumption by inhibiting PARP1 expression, thereby activating SIRT3 and anti-oxidative stress signaling. This study identifies Macrod1 as a novel target for DCM treatment. Targeting the PARP1-NAD+-SIRT3 axis may open a novel avenue to development of new intervention strategies in DCM. Schematic illustration of macrod1 ameliorating diabetic cardiomyopathy oxidative stress via PARP1-NAD+-SIRT3 axis.


Diabetes Mellitus, Experimental , Diabetic Cardiomyopathies , Mice, Inbred C57BL , Myocytes, Cardiac , NAD , Oxidative Stress , Poly (ADP-Ribose) Polymerase-1 , Sirtuin 3 , Animals , Male , Mice , Rats , Cells, Cultured , Diabetes Mellitus, Experimental/metabolism , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Diet, High-Fat , Mice, Knockout , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/pathology , NAD/metabolism , Oxidative Stress/drug effects , Palmitic Acid/pharmacology , Poly (ADP-Ribose) Polymerase-1/metabolism , Rats, Sprague-Dawley , Signal Transduction/drug effects , Sirtuin 3/metabolism , Sirtuin 3/genetics , Streptozocin
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