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1.
FASEB J ; 38(9): e23654, 2024 May 15.
Article En | MEDLINE | ID: mdl-38717442

Heart failure and cardiac remodeling are both characterized by mitochondrial dysfunction. Healthy mitochondria are required for adequate contractile activity and appropriate regulation of cell survival. In the mammalian heart, enhancement of the mitochondrial unfolded protein response (UPRmt) is cardioprotective under pressure overload conditions. We explored the UPRmt and the underlying regulatory mechanism in terms of hypertension-induced cardiac remodeling and the cardioprotective effect of metformin. Male spontaneously hypertensive rats and angiotensin II-treated neonatal rat cardiomyocytes were used to induce cardiac hypertrophy. The results showed that hypertension induced the formation of aberrant mitochondria, characterized by a reduced mtDNA/nDNA ratio and swelling, as well as lower levels of mitochondrial complexes I to V and inhibition of the expression of one protein subunit of each of complexes I to IV. Such changes eventually enlarged cardiomyocytes and increased cardiac fibrosis. Metformin treatment increased the mtDNA/nDNA ratio and regulated the UPRmt, as indicated by increased expression of activating transcription factor 5, Lon protease 1, and heat shock protein 60, and decreased expression of C/EBP homologous protein. Thus, metformin improved mitochondrial ultrastructure and function in spontaneously hypertensive rats. In vitro analyses revealed that metformin reduced the high levels of angiotensin II-induced mitochondrial reactive oxygen species in such animals and stimulated nuclear translocation of heat shock factor 1 (HSF1). Moreover, HSF1 small-interfering RNA reduced the metformin-mediated improvements in mitochondrial morphology and the UPRmt by suppressing hypertrophic signals and cardiomyocyte apoptosis. These results suggest that HSF1/UPRmt signaling contributes to the beneficial effects of metformin. Metformin-mediated targeting of mitochondrial protein homeostasis and modulation of HSF1 levels have potential therapeutic implications in terms of cardiac remodeling.


Heat Shock Transcription Factors , Metformin , Myocytes, Cardiac , Rats, Inbred SHR , Unfolded Protein Response , Animals , Metformin/pharmacology , Unfolded Protein Response/drug effects , Male , Rats , Heat Shock Transcription Factors/metabolism , Heat Shock Transcription Factors/genetics , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/drug effects , Hypertension/metabolism , Hypertension/drug therapy , Ventricular Remodeling/drug effects , Mitochondria, Heart/metabolism , Mitochondria, Heart/drug effects , Angiotensin II/pharmacology , Cardiomegaly/metabolism , Cardiomegaly/drug therapy , Cardiomegaly/pathology , Transcription Factors/metabolism , Transcription Factors/genetics , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Rats, Inbred WKY
2.
Int J Med Sci ; 21(6): 983-993, 2024.
Article En | MEDLINE | ID: mdl-38774750

Previous studies have highlighted the protective effects of pyruvate kinase M2 (PKM2) overexpression in septic cardiomyopathy. In our study, we utilized cardiomyocyte-specific PKM2 knockout mice to further investigate the role of PKM2 in attenuating LPS-induced myocardial dysfunction, focusing on mitochondrial biogenesis and prohibitin 2 (PHB2). Our findings confirmed that the deletion of PKM2 in cardiomyocytes significantly exacerbated LPS-induced myocardial dysfunction, as evidenced by impaired contractile function and relaxation. Additionally, the deletion of PKM2 intensified LPS-induced myocardial inflammation. At the molecular level, LPS triggered mitochondrial dysfunction, characterized by reduced ATP production, compromised mitochondrial respiratory complex I/III activities, and increased ROS production. Intriguingly, the absence of PKM2 further worsened LPS-induced mitochondrial damage. Our molecular investigations revealed that LPS disrupted mitochondrial biogenesis in cardiomyocytes, a disruption that was exacerbated by the absence of PKM2. Given that PHB2 is known as a downstream effector of PKM2, we employed PHB2 adenovirus to restore PHB2 levels. The overexpression of PHB2 normalized mitochondrial biogenesis, restored mitochondrial integrity, and promoted mitochondrial function. Overall, our results underscore the critical role of PKM2 in regulating the progression of septic cardiomyopathy. PKM2 deficiency impeded mitochondrial biogenesis, leading to compromised mitochondrial integrity, increased myocardial inflammation, and impaired cardiac function. The overexpression of PHB2 mitigated the deleterious effects of PKM2 deletion. This discovery offers a novel insight into the molecular mechanisms underlying septic cardiomyopathy and suggests potential therapeutic targets for intervention.


Cardiomyopathies , Mice, Knockout , Mitochondria, Heart , Myocytes, Cardiac , Prohibitins , Pyruvate Kinase , Sepsis , Animals , Cardiomyopathies/pathology , Cardiomyopathies/metabolism , Cardiomyopathies/genetics , Cardiomyopathies/etiology , Mice , Myocytes, Cardiac/pathology , Myocytes, Cardiac/metabolism , Sepsis/metabolism , Sepsis/pathology , Sepsis/genetics , Pyruvate Kinase/metabolism , Pyruvate Kinase/genetics , Mitochondria, Heart/metabolism , Mitochondria, Heart/pathology , Repressor Proteins/genetics , Repressor Proteins/metabolism , Humans , Organelle Biogenesis , Lipopolysaccharides/toxicity , Male , Disease Models, Animal
3.
Physiol Rep ; 12(10): e16056, 2024 May.
Article En | MEDLINE | ID: mdl-38777811

Permeability transition pore (PTP) opening dissipates ion and electron gradients across the internal mitochondrial membrane (IMM), including excess Ca2+ in the mitochondrial matrix. After opening, immediate PTP closure must follow to prevent outer membrane disruption, loss of cytochrome c, and eventual apoptosis. Flickering, defined as the rapid alternative opening/closing of PTP, has been reported in heart, which undergoes frequent, large variations in Ca2+. In contrast, in tissues that undergo depolarization events less often, such as the liver, PTP would not need to be as dynamic and thus these tissues would not be as resistant to stress. To evaluate this idea, it was decided to follow the reversibility of the permeability transition (PT) in isolated murine mitochondria from two different tissues: the very dynamic heart, and the liver, which suffers depolarizations less frequently. It was observed that in heart mitochondria PT remained reversible for longer periods and at higher Ca2+ loads than in liver mitochondria. In all cases, Ca2+ uptake was inhibited by ruthenium red and PT was delayed by Cyclosporine A. Characterization of this phenomenon included measuring the rate of oxygen consumption, organelle swelling and Ca2+ uptake and retention. Results strongly suggest that there are tissue-specific differences in PTP physiology, as it resists many more Ca2+ additions before opening in a highly active organ such as the heart than in an organ that seldom suffers Ca2+ loading, such as the liver.


Calcium , Mitochondria, Heart , Mitochondria, Liver , Mitochondrial Membrane Transport Proteins , Mitochondrial Permeability Transition Pore , Rats, Wistar , Animals , Mitochondrial Permeability Transition Pore/metabolism , Male , Calcium/metabolism , Mitochondria, Heart/metabolism , Mitochondria, Liver/metabolism , Mitochondrial Membrane Transport Proteins/metabolism , Rats , Oxygen Consumption , Liver/metabolism , Mitochondrial Swelling/drug effects , Cyclosporine/pharmacology
4.
J Transl Med ; 22(1): 489, 2024 May 22.
Article En | MEDLINE | ID: mdl-38778315

OBJECTIVE: Mild therapeutic hypothermia (MTH) is an important method for perioperative prevention and treatment of myocardial ischemia-reperfusion injury (MIRI). Modifying mitochondrial proteins after protein translation to regulate mitochondrial function is one of the mechanisms for improving myocardial ischemia-reperfusion injury. This study investigated the relationship between shallow hypothermia treatment improving myocardial ischemia-reperfusion injury and the O-GlcNAcylation level of COX10. METHODS: We used in vivo Langendorff model and in vitro hypoxia/reoxygenation (H/R) cell model to investigate the effects of MTH on myocardial ischemia-reperfusion injury. Histological changes, myocardial enzymes, oxidative stress, and mitochondrial structure/function were assessed. Mechanistic studies involved various molecular biology methods such as ELISA, immunoprecipitation (IP), WB, and immunofluorescence. RESULTS: Our research results indicate that MTH upregulates the O-GlcNACylation level of COX10, improves mitochondrial function, and inhibits the expression of ROS to improve myocardial ischemia-reperfusion injury. In vivo, MTH effectively alleviates ischemia-reperfusion induced cardiac dysfunction, myocardial injury, mitochondrial damage, and redox imbalance. In vitro, the OGT inhibitor ALX inhibits the OGT mediated O-GlcNA acylation signaling pathway, downregulates the O-Glc acylation level of COX10, promotes ROS release, and counteracts the protective effect of MTH. On the contrary, the OGA inhibitor ThG showed opposite effects to ALX, further confirming that MTH activated the OGT mediated O-GlcNAcylation signaling pathway to exert cardioprotective effects. CONCLUSIONS: In summary, MTH activates OGT mediated O-glycosylation modified COX10 to regulate mitochondrial function and improve myocardial ischemia-reperfusion injury, which provides important theoretical basis for the clinical application of MTH.


Hypothermia, Induced , Myocardial Reperfusion Injury , Up-Regulation , Animals , Myocardial Reperfusion Injury/pathology , Myocardial Reperfusion Injury/metabolism , Male , Oxidative Stress , Reactive Oxygen Species/metabolism , Rats, Sprague-Dawley , Mitochondria, Heart/metabolism , Mitochondria, Heart/pathology , Mitochondria/metabolism , Glycosylation , Acylation
5.
Signal Transduct Target Ther ; 9(1): 133, 2024 May 15.
Article En | MEDLINE | ID: mdl-38744811

Sirtuin 3 (SIRT3) is well known as a conserved nicotinamide adenine dinucleotide+ (NAD+)-dependent deacetylase located in the mitochondria that may regulate oxidative stress, catabolism and ATP production. Accumulating evidence has recently revealed that SIRT3 plays its critical roles in cardiac fibrosis, myocardial fibrosis and even heart failure (HF), through its deacetylation modifications. Accordingly, discovery of SIRT3 activators and elucidating their underlying mechanisms of HF should be urgently needed. Herein, we identified a new small-molecule activator of SIRT3 (named 2-APQC) by the structure-based drug designing strategy. 2-APQC was shown to alleviate isoproterenol (ISO)-induced cardiac hypertrophy and myocardial fibrosis in vitro and in vivo rat models. Importantly, in SIRT3 knockout mice, 2-APQC could not relieve HF, suggesting that 2-APQC is dependent on SIRT3 for its protective role. Mechanically, 2-APQC was found to inhibit the mammalian target of rapamycin (mTOR)-p70 ribosomal protein S6 kinase (p70S6K), c-jun N-terminal kinase (JNK) and transforming growth factor-ß (TGF-ß)/ small mother against decapentaplegic 3 (Smad3) pathways to improve ISO-induced cardiac hypertrophy and myocardial fibrosis. Based upon RNA-seq analyses, we demonstrated that SIRT3-pyrroline-5-carboxylate reductase 1 (PYCR1) axis was closely assoiated with HF. By activating PYCR1, 2-APQC was shown to enhance mitochondrial proline metabolism, inhibited reactive oxygen species (ROS)-p38 mitogen activated protein kinase (p38MAPK) pathway and thereby protecting against ISO-induced mitochondrialoxidative damage. Moreover, activation of SIRT3 by 2-APQC could facilitate AMP-activated protein kinase (AMPK)-Parkin axis to inhibit ISO-induced necrosis. Together, our results demonstrate that 2-APQC is a targeted SIRT3 activator that alleviates myocardial hypertrophy and fibrosis by regulating mitochondrial homeostasis, which may provide a new clue on exploiting a promising drug candidate for the future HF therapeutics.


Cardiomegaly , Fibrosis , Sirtuin 3 , Animals , Sirtuin 3/genetics , Sirtuin 3/metabolism , Cardiomegaly/genetics , Cardiomegaly/drug therapy , Cardiomegaly/pathology , Cardiomegaly/chemically induced , Cardiomegaly/metabolism , Fibrosis/genetics , Rats , Mice , Isoproterenol , Humans , Mice, Knockout , Homeostasis/drug effects , Mitochondria/drug effects , Mitochondria/genetics , Mitochondria/pathology , Mitochondria/metabolism , Mitochondria, Heart/drug effects , Mitochondria, Heart/genetics , Mitochondria, Heart/metabolism , Mitochondria, Heart/pathology , Myocardium/pathology , Myocardium/metabolism , Male
6.
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
7.
J Biochem Mol Toxicol ; 38(5): e23718, 2024 May.
Article En | MEDLINE | ID: mdl-38738849

According to the pathophysiological mechanisms linking particulate matter (PM2.5) exposure and cardiovascular diseases, PM2.5 may directly translocate into the blood stream and remote target organs and thereby induce cardiovascular effects. The toxicity of PM2.5 is known to induce oxidative stress in pulmonary tissue, but its impact on the redox state in heart (distant organ) is unknown and how it modulates the cardiac response to ischemia reperfusion (IR) remains unclear. In the present study, we evaluated the toxic effect of PM2.5 on cardiac physiology in the presence and absence of IR after introducing PM2.5 into the blood. Female Wistar rats were injected with diesel particulate matter (DPM) via i.p & i.v routes at a concentration of 10 µg/ml. The toxic impact of PM2.5 not only adversely affects the cardiac ultra-structure (leading to nuclear infiltration, edema, irregularities in heart muscle and nuclear infiltration), but also altered the cellular redox balance, elevated inflammation and promoted the upregulation of proapoptotic mediator genes at the basal level of myocardium. The results showed alterations in cardiac ultrastructure, elevated oxidative stress and significant redox imbalance, increased inflammation and proapoptotic mediators at the basal level of myocardium. Moreover, the cardioprotective pro survival signaling axis was declined along with an increased NF-kB activation at the basal level. IR inflicted further injury with deterioration of cardiac hemodynamic indices (Heart rate [HR], Left ventricular developed pressure [LVDP], Left ventricular end-diastolic pressure [LVEDP] and rate pressure product [RPP]) along with prominent inactivation of signaling pathways. Furthermore, the levels of GSH/GSSG, NADH/NAD, NADPH/NADP were significantly low along with increased lipid peroxidation in mitochondria of PM2.5 treated IR rat hearts. This observation was supported by downregulation of glutaredoxin and peroxiredoxin genes in the myocardium. Similarly the presence of oxidative stress inducing metals was found at a higher concentration in cardiac mitochondria. Thus, the toxic impact of PM2.5 in heart augment the IR associated pathological changes by altering the physiological response, initiating cellular metabolic alterations in mitochondria and modifying the signaling molecules.


NF-kappa B , Oxidation-Reduction , Particulate Matter , Phosphatidylinositol 3-Kinases , Proto-Oncogene Proteins c-akt , Rats, Wistar , Signal Transduction , TOR Serine-Threonine Kinases , Animals , Particulate Matter/toxicity , Rats , Female , Oxidation-Reduction/drug effects , Signal Transduction/drug effects , Proto-Oncogene Proteins c-akt/metabolism , Phosphatidylinositol 3-Kinases/metabolism , NF-kappa B/metabolism , TOR Serine-Threonine Kinases/metabolism , Myocardium/metabolism , Myocardium/pathology , Myocardial Reperfusion Injury/metabolism , Myocardial Reperfusion Injury/pathology , Oxidative Stress/drug effects , Mitochondria, Heart/metabolism , Mitochondria, Heart/drug effects
8.
Int J Mol Sci ; 25(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731929

Sepsis-induced cardiomyopathy (SICM) is one of the leading indicators for poor prognosis associated with sepsis. Despite its reversibility, prognosis varies widely among patients. Mitochondria play a key role in cellular energy production by generating adenosine triphosphate (ATP), which is vital for myocardial energy metabolism. Over recent years, mounting evidence suggests that severe sepsis not only triggers mitochondrial structural abnormalities such as apoptosis, incomplete autophagy, and mitophagy in cardiomyocytes but also compromises their function, leading to ATP depletion. This metabolic disruption is recognized as a significant contributor to SICM, yet effective treatment options remain elusive. Sepsis cannot be effectively treated with inotropic drugs in failing myocardium due to excessive inflammatory factors that blunt ß-adrenergic receptors. This review will share the recent knowledge on myocardial cell death in sepsis and its molecular mechanisms, focusing on the role of mitochondria as an important metabolic regulator of SICM, and discuss the potential for developing therapies for sepsis-induced myocardial injury.


Cardiomyopathies , Sepsis , Sepsis/complications , Sepsis/metabolism , Humans , Cardiomyopathies/etiology , Cardiomyopathies/metabolism , Cardiomyopathies/pathology , Animals , Mitochondria, Heart/metabolism , Mitochondria, Heart/pathology , Mitophagy , Energy Metabolism , Mitochondria/metabolism , Mitochondria/pathology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Apoptosis , Adenosine Triphosphate/metabolism
9.
Toxicol Appl Pharmacol ; 486: 116951, 2024 May.
Article En | MEDLINE | ID: mdl-38705401

Cardiac lipotoxicity is a prevalent consequence of lipid metabolism disorders occurring in cardiomyocytes, which in turn precipitates the onset of heart failure. Mimetics of brain-derived neurotrophic factor (BDNF), such as 7,8-dihydroxyflavone (DHF) and 7,8,3'-trihydroxyflavone (THF), have demonstrated significant cardioprotective effects. However, it remains unclear whether these mimetics can protect cardiomyocytes against lipotoxicity. The aim of this study was to examine the impact of DHF and THF on the lipotoxic effects induced by palmitic acid (PA), as well as the concurrent mitochondrial dysfunction. H9c2 cells were subjected to treatment with PA alone or in conjunction with DHF or THF. Various factors such as cell viability, lactate dehydrogenase (LDH) release, death ratio, and mitochondrial function including mitochondrial membrane potential (MMP), mitochondrial-derived reactive oxygen species (mito-SOX) production, and mitochondrial respiration were assessed. PA dose-dependently reduced cell viability, which was restored by DHF or THF. Additionally, both DHF and THF decreased LDH content, death ratio, and mito-SOX production, while increasing MMP and regulating mitochondrial oxidative phosphorylation in cardiomyocytes. Moreover, DHF and THF specifically activated Akt signaling. The protective effects of DHF and THF were abolished when an Akt inhibitor was used. In conclusion, BDNF mimetics attenuate PA-induced injury in cardiomyocytes by alleviating mitochondrial impairments through the activation of Akt signaling.


Brain-Derived Neurotrophic Factor , Flavones , Membrane Potential, Mitochondrial , Myocytes, Cardiac , Palmitic Acid , Proto-Oncogene Proteins c-akt , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Palmitic Acid/toxicity , Palmitic Acid/pharmacology , Animals , Proto-Oncogene Proteins c-akt/metabolism , Brain-Derived Neurotrophic Factor/metabolism , Rats , Cell Line , Membrane Potential, Mitochondrial/drug effects , Flavones/pharmacology , Cell Survival/drug effects , Signal Transduction/drug effects , Mitochondria, Heart/drug effects , Mitochondria, Heart/metabolism , Reactive Oxygen Species/metabolism
11.
Nat Commun ; 15(1): 4277, 2024 May 20.
Article En | MEDLINE | ID: mdl-38769288

Elevated intracellular sodium Nai adversely affects mitochondrial metabolism and is a common feature of heart failure. The reversibility of acute Na induced metabolic changes is evaluated in Langendorff perfused rat hearts using the Na/K ATPase inhibitor ouabain and the myosin-uncoupler para-aminoblebbistatin to maintain constant energetic demand. Elevated Nai decreases Gibb's free energy of ATP hydrolysis, increases the TCA cycle intermediates succinate and fumarate, decreases ETC activity at Complexes I, II and III, and causes a redox shift of CoQ to CoQH2, which are all reversed on lowering Nai to baseline levels. Pseudo hypoxia and stabilization of HIF-1α is observed despite normal tissue oxygenation. Inhibition of mitochondrial Na/Ca-exchange with CGP-37517 or treatment with the mitochondrial ROS scavenger MitoQ prevents the metabolic alterations during Nai elevation. Elevated Nai plays a reversible role in the metabolic and functional changes and is a novel therapeutic target to correct metabolic dysfunction in heart failure.


Mitochondria, Heart , Sodium , Animals , Rats , Mitochondria, Heart/metabolism , Mitochondria, Heart/drug effects , Sodium/metabolism , Male , Myocardium/metabolism , Hypoxia-Inducible Factor 1, alpha Subunit/metabolism , Heart Failure/metabolism , Heart Failure/drug therapy , Adenosine Triphosphate/metabolism , Citric Acid Cycle/drug effects , Rats, Sprague-Dawley , Organophosphorus Compounds/pharmacology , Organophosphorus Compounds/metabolism , Sodium-Calcium Exchanger/metabolism , Ubiquinone/metabolism , Ubiquinone/analogs & derivatives , Sodium-Potassium-Exchanging ATPase/metabolism , Oxidation-Reduction , Succinic Acid/metabolism
13.
JCI Insight ; 9(9)2024 Apr 02.
Article En | MEDLINE | ID: mdl-38564291

Duchenne muscular dystrophy (DMD) is a progressive muscle-wasting disease associated with cardiomyopathy. DMD cardiomyopathy is characterized by abnormal intracellular Ca2+ homeostasis and mitochondrial dysfunction. We used dystrophin and utrophin double-knockout (mdx:utrn-/-) mice in a sarcolipin (SLN) heterozygous-knockout (sln+/-) background to examine the effect of SLN reduction on mitochondrial function in the dystrophic myocardium. Germline reduction of SLN expression in mdx:utrn-/- mice improved cardiac sarco/endoplasmic reticulum (SR) Ca2+ cycling, reduced cardiac fibrosis, and improved cardiac function. At the cellular level, reducing SLN expression prevented mitochondrial Ca2+ overload, reduced mitochondrial membrane potential loss, and improved mitochondrial function. Transmission electron microscopy of myocardial tissues and proteomic analysis of mitochondria-associated membranes showed that reducing SLN expression improved mitochondrial structure and SR-mitochondria interactions in dystrophic cardiomyocytes. These findings indicate that SLN upregulation plays a substantial role in the pathogenesis of cardiomyopathy and that reducing SLN expression has clinical implications in the treatment of DMD cardiomyopathy.


Cardiomyopathies , Dystrophin , Mice, Inbred mdx , Mice, Knockout , Muscle Proteins , Muscular Dystrophy, Duchenne , Proteolipids , Utrophin , Animals , Male , Mice , Calcium/metabolism , Cardiomyopathies/metabolism , Cardiomyopathies/genetics , Cardiomyopathies/pathology , Disease Models, Animal , Dystrophin/genetics , Dystrophin/metabolism , Mitochondria, Heart/metabolism , Mitochondria, Heart/ultrastructure , Mitochondria, Heart/genetics , Muscle Proteins/metabolism , Muscle Proteins/genetics , Muscular Dystrophy, Duchenne/genetics , Muscular Dystrophy, Duchenne/metabolism , Muscular Dystrophy, Duchenne/pathology , Myocardium/metabolism , Myocardium/pathology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Proteolipids/metabolism , Proteolipids/genetics , Utrophin/genetics , Utrophin/metabolism
14.
J Ethnopharmacol ; 330: 118152, 2024 Aug 10.
Article En | MEDLINE | ID: mdl-38614260

ETHNOPHARMACOLOGICAL RELEVANCE: Xinyang tablet (XYT) has been used for heart failure (HF) for over twenty years in clinical practice, but the underlying molecular mechanism remains poorly understood. AIMS OF THE STUDY: In the present study, we aimed to explore the protective effects of XYT in HF in vivo and in vitro. MATERIALS AND METHODS: Transverse aortic constriction was performed in vivo to establish a mouse model of cardiac pressure overload. Echocardiography, tissue staining, and real-time quantitative PCR (qPCR) were examined to evaluate the protective effects of XYT on cardiac function and structure. Adenosine 5'-triphosphate production, reactive oxygen species staining, and measurement of malondialdehyde and superoxide dismutase was used to detect mitochondrial damage. Mitochondrial ultrastructure was observed by transmission electron microscope. Immunofluorescence staining, qPCR, and Western blotting were performed to evaluate the effect of XYT on the mitochondrial unfolded protein response and mitophagy, and to identify its potential pharmacological mechanism. In vitro, HL-1 cells and neonatal mouse cardiomyocytes were stimulated with Angiotensin II to establish the cell model. Western blotting, qPCR, immunofluorescence staining, and flow cytometry were utilized to determine the effects of XYT on cardiomyocytes. HL-1 cells overexpressing receptor-interacting serum/three-protein kinase 3 (RIPK3) were generated by transfection of RIPK3-overexpressing lentiviral vectors. Cells were then co-treated with XYT to determine the molecular mechanisms. RESULTS: In the present study, XYT was found to exerta protective effect on cardiac function and structure in the pressure overload mice. And it was also found XYT reduced mitochondrial damage by enhancing mitochondrial unfolded protein response and restoring mitophagy. Further studies showed that XYT achieved its cardioprotective role through regulating the RIPK3/FUN14 domain containing 1 (FUNDC1) signaling. Moreover, the overexpression of RIPK3 successfully reversed the XYT-induced protective effects and significantly attenuated the positive effects on the mitochondrial unfolded protein response and mitophagy. CONCLUSIONS: Our findings indicated that XYT prevented pressure overload-induced HF through regulating the RIPK3/FUNDC1-mediated mitochondrial unfolded protein response and mitophagy. The information gained from this study provides a potential strategy for attenuating mitochondrial damage in the context of pressure overload-induced heart failure using XYT.


Disease Models, Animal , Drugs, Chinese Herbal , Mice, Inbred C57BL , Mitophagy , Myocytes, Cardiac , Unfolded Protein Response , Animals , Mitophagy/drug effects , Unfolded Protein Response/drug effects , Mice , Male , Drugs, Chinese Herbal/pharmacology , Drugs, Chinese Herbal/therapeutic use , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/metabolism , Heart Failure/drug therapy , Heart Failure/metabolism , Heart Failure/physiopathology , Mitochondria, Heart/drug effects , Mitochondria, Heart/metabolism , Mitochondria, Heart/ultrastructure , Tablets , Cell Line , Receptor-Interacting Protein Serine-Threonine Kinases/metabolism
15.
Circ Res ; 134(10): 1292-1305, 2024 May 10.
Article En | MEDLINE | ID: mdl-38618716

BACKGROUND: During myocardial ischemia/reperfusion (I/R) injury, high levels of matrix Ca2+ and reactive oxygen species (ROS) induce the opening of the mitochondrial permeability transition pore (mPTP), which causes mitochondrial dysfunction and ultimately necrotic death. However, the mechanisms of how these triggers individually or cooperatively open the pore have yet to be determined. METHODS: Here, we use a combination of isolated mitochondrial assays and in vivo I/R surgery in mice. We challenged isolated liver and heart mitochondria with Ca2+, ROS, and Fe2+ to induce mitochondrial swelling. Using inhibitors of the mPTP (cyclosporine A or ADP) lipid peroxidation (ferrostatin-1, MitoQ), we determined how the triggers elicit mitochondrial damage. Additionally, we used the combination of inhibitors during I/R injury in mice to determine if dual inhibition of these pathways is additivity protective. RESULTS: In the absence of Ca2+, we determined that ROS fails to trigger mPTP opening. Instead, high levels of ROS induce mitochondrial dysfunction and rupture independently of the mPTP through lipid peroxidation. As expected, Ca2+ in the absence of ROS induces mPTP-dependent mitochondrial swelling. Subtoxic levels of ROS and Ca2+ synergize to induce mPTP opening. Furthermore, this synergistic form of Ca2+- and ROS-induced mPTP opening persists in the absence of CypD (cyclophilin D), suggesting the existence of a CypD-independent mechanism for ROS sensitization of the mPTP. These ex vivo findings suggest that mitochondrial dysfunction may be achieved by multiple means during I/R injury. We determined that dual inhibition of the mPTP and lipid peroxidation is significantly more protective against I/R injury than individually targeting either pathway alone. CONCLUSIONS: In the present study, we have investigated the relationship between Ca2+ and ROS, and how they individually or synergistically induce mitochondrial swelling. Our findings suggest that Ca2+ mediates mitochondrial damage through the opening of the mPTP, although ROS mediates its damaging effects through lipid peroxidation. However, subtoxic levels both Ca2+ and ROS can induce mPTP-mediated mitochondrial damage. Targeting both of these triggers to preserve mitochondria viability unveils a highly effective therapeutic approach for mitigating I/R injury.


Lipid Peroxidation , Mice, Inbred C57BL , Mitochondria, Heart , Mitochondria, Liver , Mitochondrial Membrane Transport Proteins , Mitochondrial Permeability Transition Pore , Myocardial Reperfusion Injury , Reactive Oxygen Species , Animals , Lipid Peroxidation/drug effects , Mitochondrial Permeability Transition Pore/metabolism , Reactive Oxygen Species/metabolism , Mice , Mitochondria, Heart/metabolism , Mitochondria, Heart/drug effects , Mitochondria, Heart/pathology , Male , Myocardial Reperfusion Injury/metabolism , Myocardial Reperfusion Injury/prevention & control , Myocardial Reperfusion Injury/pathology , Mitochondrial Membrane Transport Proteins/metabolism , Mitochondria, Liver/metabolism , Mitochondria, Liver/pathology , Mitochondria, Liver/drug effects , Calcium/metabolism , Mitochondrial Swelling/drug effects
16.
Acta Physiol (Oxf) ; 240(6): e14151, 2024 Jun.
Article En | MEDLINE | ID: mdl-38676357

AIMS: Ischaemic heart disease remains a significant cause of mortality globally. A pharmacological agent that protects cardiac mitochondria against oxygen deprivation injuries is welcome in therapy against acute myocardial infarction. Here, we evaluate the effect of large-conductance Ca2+-activated K+ channels (BKCa) activator, Compound Z, in isolated mitochondria under hypoxia and reoxygenation. METHODS: Mitochondria from mice hearts were obtained by differential centrifugation. The isolated mitochondria were incubated with a BKCa channel activator, Compound Z, and subjected to normoxia or hypoxia/reoxygenation. Mitochondrial function was evaluated by measurement of O2 consumption in the complexes I, II, and IV in the respiratory states 1, 2, 3, and by maximal uncoupled O2 uptake, ATP production, ROS production, transmembrane potential, and calcium retention capacity. RESULTS: Incubation of isolated mitochondria with Compound Z under normoxia conditions reduced the mitochondrial functions and induced the production of a significant amount of ROS. However, under hypoxia/reoxygenation, the Compound Z prevented a profound reduction in mitochondrial functions, including reducing ROS production over the hypoxia/reoxygenation group. Furthermore, hypoxia/reoxygenation induced a large mitochondria depolarization, which Compound Z incubation prevented, but, even so, Compound Z created a small depolarization. The mitochondrial calcium uptake was prevented by the BKCa activator, extruding the mitochondrial calcium present before Compound Z incubation. CONCLUSION: The Compound Z acts as a mitochondrial BKCa channel activator and can protect mitochondria function against hypoxia/reoxygenation injury, by handling mitochondrial calcium and transmembrane potential.


Calcium , Mitochondria, Heart , Animals , Mice , Calcium/metabolism , Mitochondria, Heart/metabolism , Mitochondria, Heart/drug effects , Male , Large-Conductance Calcium-Activated Potassium Channels/metabolism , Membrane Potential, Mitochondrial/drug effects , Reactive Oxygen Species/metabolism , Mice, Inbred C57BL , Hypoxia/metabolism , Membrane Potentials/drug effects , Oxygen Consumption/drug effects , Oxygen/metabolism
17.
Cardiovasc Toxicol ; 24(6): 598-621, 2024 Jun.
Article En | MEDLINE | ID: mdl-38689163

Cardiovascular diseases (CVDs) can be described as a global health emergency imploring possible prevention strategies. Although the pathogenesis of CVDs has been extensively studied, the role of mitochondrial dysfunction in CVD development has yet to be investigated. Diabetic cardiomyopathy, ischemic-reperfusion injury, and heart failure are some of the CVDs resulting from mitochondrial dysfunction Recent evidence from the research states that any dysfunction of mitochondria has an impact on metabolic alteration, eventually causes the death of a healthy cell and therefore, progressively directing to the predisposition of disease. Cardiovascular research investigating the targets that both protect and treat mitochondrial damage will help reduce the risk and increase the quality of life of patients suffering from various CVDs. One such target, i.e., nuclear sirtuin SIRT6 is strongly associated with cardiac function. However, the link between mitochondrial dysfunction and SIRT6 concerning cardiovascular pathologies remains poorly understood. Although the Role of SIRT6 in skeletal muscles and cardiomyocytes through mitochondrial regulation has been well understood, its specific role in mitochondrial maintenance in cardiomyocytes is poorly determined. The review aims to explore the domain-specific function of SIRT6 in cardiomyocytes and is an effort to know how SIRT6, mitochondria, and CVDs are related.


Cardiovascular Diseases , Mitochondria, Heart , Myocytes, Cardiac , Sirtuins , Sirtuins/metabolism , Humans , Mitochondria, Heart/pathology , Mitochondria, Heart/metabolism , Mitochondria, Heart/enzymology , Mitochondria, Heart/drug effects , Animals , Myocytes, Cardiac/pathology , Myocytes, Cardiac/enzymology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/drug effects , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/physiopathology , Cardiovascular Diseases/enzymology , Cardiovascular Diseases/pathology , Signal Transduction , Energy Metabolism/drug effects
18.
Biochem Pharmacol ; 224: 116185, 2024 Jun.
Article En | MEDLINE | ID: mdl-38561091

Cardiac ATP production is tightly regulated in order to satisfy the evolving energetic requirements imposed by different cues during health and pathological conditions. In order to sustain high ATP production rates, cardiac cells are endowed with a vast mitochondrial network that is essentially acquired during the perinatal period. Nevertheless, adult cardiac cells also adapt their mitochondrial mass and oxidative function to changes in energy demand and substrate availability by fine-tuning the pathways and mitochondrial machinery involved in energy production. The reliance of cardiac cells on mitochondrial metabolism makes them particularly sensitive to alterations in proper mitochondrial function, so that deficiency in energy production underlies or precipitates the development of heart diseases. Mitochondrial biogenesis is a complex process fundamentally controlled at the transcriptional level by a network of transcription factors and co-regulators, sometimes with partially redundant functions, that ensure adequate energy supply to the working heart. Novel uncovered regulators, such as RIP140, PERM1, MED1 or BRD4 have been recently shown to modulate or facilitate the transcriptional activity of the PGC-1s/ERRs/PPARs regulatory axis, allowing cardiomyocytes to adapt to a variety of physiological or pathological situations requiring different energy provision. In this review, we summarize the current knowledge on the mechanisms that regulate cardiac mitochondrial biogenesis, highlighting the recent discoveries of new transcriptional regulators and describing the experimental models that have provided solid evidence of the relevant contribution of these factors to cardiac function in health and disease.


Energy Metabolism , Animals , Energy Metabolism/physiology , Energy Metabolism/genetics , Humans , Transcription, Genetic/physiology , Mitochondria, Heart/metabolism , Mitochondria, Heart/genetics , Heart Diseases/metabolism , Heart Diseases/genetics , Myocardium/metabolism , Gene Expression Regulation , Transcription Factors/metabolism , Transcription Factors/genetics , Disease Models, Animal , Myocytes, Cardiac/metabolism
19.
Methods Mol Biol ; 2803: 75-86, 2024.
Article En | MEDLINE | ID: mdl-38676886

Mitochondria within a cardiomyocyte form a highly dynamic network that undergoes fusion and fission events in response to acute and chronic stressors, such as hyperglycemia and diabetes mellitus. Changes in mitochondrial architecture and morphology not only reflect their capacity for oxidative phosphorylation and ATP synthesis but also impact their subcellular localization and interaction with other organelles. The role of these ultrastructural abnormalities in modulating electrophysiological properties and excitation-contraction coupling remains largely unknown and warrants direct investigation considering the growing appreciation of the functional and structural coupling between the mitochondrial network, the calcium cycling machinery, and sarcolemmal ion channels in the cardiac myocyte. In this Methods in Molecular Biology chapter, we provide a protocol that allows for a quantitative assessment of mitochondrial shape and morphology in control and diabetic hearts that had undergone detailed electrophysiological measurements using high resolution optical action potential (AP) mapping.


Action Potentials , Mitochondria, Heart , Myocytes, Cardiac , Animals , Mitochondria, Heart/metabolism , Mitochondria, Heart/ultrastructure , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Action Potentials/physiology , Diabetes Mellitus, Experimental/physiopathology , Diabetes Mellitus, Experimental/pathology , Rats , Electrophysiological Phenomena , Myocardium/pathology , Myocardium/metabolism
20.
Biosci Rep ; 44(5)2024 May 29.
Article En | MEDLINE | ID: mdl-38655715

Heart function is highly dependent on mitochondria, which not only produce energy but also regulate many cellular functions. Therefore, mitochondria are important therapeutic targets in heart failure. Abcb10 is a member of the ABC transporter superfamily located in the inner mitochondrial membrane and plays an important role in haemoglobin synthesis, biliverdin transport, antioxidant stress, and stabilization of the iron transporter mitoferrin-1. However, the mechanisms underlying the impairment of mitochondrial transporters in the heart remain poorly understood. Here, we generated mice with cardiomyocyte-specific loss of Abcb10. The Abcb10 knockouts exhibited progressive worsening of cardiac fibrosis, increased cardiovascular risk markers and mitochondrial structural abnormalities, suggesting that the pathology of heart failure is related to mitochondrial dysfunction. As the mitochondrial dysfunction was observed early but mildly, other factors were considered. We then observed increased Hif1α expression, decreased NAD synthase expression, and reduced NAD+ levels, leading to lysosomal dysfunction. Analysis of ABCB10 knockdown HeLa cells revealed accumulation of Fe2+ and lipid peroxides in lysosomes, leading to ferroptosis. Lipid peroxidation was suppressed by treatment with iron chelators, suggesting that lysosomal iron accumulation is involved in ferroptosis. We also observed that Abcb10 knockout cardiomyocytes exhibited increased ROS production, iron accumulation, and lysosomal hypertrophy. Our findings suggest that Abcb10 is required for the maintenance of cardiac function and reveal a novel pathophysiology of chronic heart failure related to lysosomal function and ferroptosis.


ATP-Binding Cassette Transporters , Ferroptosis , Lysosomes , Mice, Knockout , Myocytes, Cardiac , Animals , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Ferroptosis/genetics , Humans , Lysosomes/metabolism , ATP-Binding Cassette Transporters/genetics , ATP-Binding Cassette Transporters/metabolism , Mice , Mitochondria, Heart/metabolism , Mitochondria, Heart/pathology , Mitochondria, Heart/genetics , Heart Failure/genetics , Heart Failure/metabolism , Heart Failure/pathology , HeLa Cells , Iron/metabolism , Reactive Oxygen Species/metabolism , Lipid Peroxidation , Male
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