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1.
Cell Death Dis ; 15(5): 364, 2024 May 27.
Article En | MEDLINE | ID: mdl-38802337

Mitochondrial dysfunction and oxidative stress are important mechanisms for secondary injury after traumatic brain injury (TBI), which result in progressive pathophysiological exacerbation. Although the Fibronectin type III domain-containing 5 (FNDC5) was reported to repress oxidative stress by retaining mitochondrial biogenesis and dynamics, its possible role in the secondary injury after TBI remain obscure. In present study, we observed that the level of serum irisin (the cleavage product of FNDC5) significantly correlated with the neurological outcomes of TBI patients. Knockout of FNDC5 increased the lesion volume and exacerbated apoptosis and neurological deficits after TBI in mice, while FNDC5 overexpression yielded a neuroprotective effect. Moreover, FNDC5 deficiency disrupted mitochondrial dynamics and function. Activation of Sirtuin 3 (SIRT3) alleviated FNDC5 deficiency-induced disruption of mitochondrial dynamics and bioenergetics. In neuron-specific SIRT3 knockout mice, FNDC5 failed to attenuate TBI-induced mitochondrial damage and brain injuries. Mechanically, FNDC5 deficiency led to reduced SIRT3 expression via enhanced ubiquitin degradation of transcription factor Nuclear factor erythroid 2-related factor 2 (NRF2), which contributed to the hyperacetylation and inactivation of key regulatory proteins of mitochondrial dynamics and function, including OPA1 and SOD2. Finally, engineered RVG29-conjugated nanoparticles were generated to selectively and efficiently deliver irisin to the brain of mice, which yielded a satisfactory curative effect against TBI. In conclusion, FNDC5/irisin exerts a protective role against acute brain injury by promoting SIRT3-dependent mitochondrial quality control and thus represents a potential target for neuroprotection after TBI.


Apoptosis , Brain Injuries, Traumatic , Fibronectins , Mice, Knockout , Mitochondria , Neurons , Oxidative Stress , Sirtuin 3 , Animals , Brain Injuries, Traumatic/metabolism , Brain Injuries, Traumatic/pathology , Brain Injuries, Traumatic/genetics , Sirtuin 3/metabolism , Sirtuin 3/genetics , Fibronectins/metabolism , Mitochondria/metabolism , Neurons/metabolism , Neurons/pathology , Mice , Humans , Male , Mice, Inbred C57BL , NF-E2-Related Factor 2/metabolism , Mitochondrial Dynamics
2.
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
3.
Int J Mol Sci ; 25(9)2024 Apr 24.
Article En | MEDLINE | ID: mdl-38731864

The human brain possesses three predominate phospholipids, phosphatidylcholine (PC), phosphatidylethanolamine (PE) and phosphatidylserine (PS), which account for approximately 35-40%, 35-40%, and 20% of the brain's phospholipids, respectively. Mitochondrial membranes are relatively diverse, containing the aforementioned PC, PE, and PS, as well as phosphatidylinositol (PI) and phosphatidic acid (PA); however, cardiolipin (CL) and phosphatidylglycerol (PG) are exclusively present in mitochondrial membranes. These phospholipid interactions play an essential role in mitochondrial fusion and fission dynamics, leading to the maintenance of mitochondrial structural and signaling pathways. The essential nature of these phospholipids is demonstrated through the inability of mitochondria to tolerate alteration in these specific phospholipids, with changes leading to mitochondrial damage resulting in neural degeneration. This review will emphasize how the structure of phospholipids relates to their physiologic function, how their metabolism facilitates signaling, and the role of organ- and mitochondria-specific phospholipid compositions. Finally, we will discuss the effects of global ischemia and reperfusion on organ- and mitochondria-specific phospholipids alongside the novel therapeutics that may protect against injury.


Brain , Heart Arrest , Mitochondria , Phospholipids , Humans , Phospholipids/metabolism , Mitochondria/metabolism , Animals , Brain/metabolism , Brain/pathology , Heart Arrest/metabolism , Signal Transduction , Mitochondrial Membranes/metabolism , Mitochondrial Dynamics
4.
Biochem Biophys Res Commun ; 716: 150002, 2024 Jul 05.
Article En | MEDLINE | ID: mdl-38697011

Type 2 diabetes mellitus (T2DM) significantly impairs the functionality and number of endothelial progenitor cells (EPCs) and resident endothelial cells, critical for vascular repair and regeneration, exacerbating the risk of vascular complications. GLP-1 receptor agonists, like dulaglutide, have emerged as promising therapeutic agents due to their multifaceted effects, including the enhancement of EPC activity and protection of endothelial cells. This study investigates dulaglutide's effects on peripheral blood levels of CD34+ and CD133+ cells in a mouse model of lower limb ischemia and its protective mechanisms against high-glucose-induced damage in endothelial cells. Results demonstrated that dulaglutide significantly improves blood flow, reduces tissue damage and inflammation in ischemic limbs, and enhances glycemic control. Furthermore, dulaglutide alleviated high-glucose-induced endothelial cell damage, evident from improved tube formation, reduced reactive oxygen species accumulation, and restored endothelial junction integrity. Mechanistically, dulaglutide mitigated mitochondrial fission in endothelial cells under high-glucose conditions, partly through maintaining SIRT1 expression, which is crucial for mitochondrial dynamics. This study reveals the potential of dulaglutide as a therapeutic option for vascular complications in T2DM patients, highlighting its role in improving endothelial function and mitochondrial integrity.


Diabetes Mellitus, Experimental , Endothelial Progenitor Cells , Glucagon-Like Peptides , Glucose , Immunoglobulin Fc Fragments , Mitochondrial Dynamics , Recombinant Fusion Proteins , Sirtuin 1 , Animals , Immunoglobulin Fc Fragments/pharmacology , Glucagon-Like Peptides/analogs & derivatives , Glucagon-Like Peptides/pharmacology , Glucagon-Like Peptides/therapeutic use , Sirtuin 1/metabolism , Mitochondrial Dynamics/drug effects , Endothelial Progenitor Cells/drug effects , Endothelial Progenitor Cells/metabolism , Recombinant Fusion Proteins/pharmacology , Male , Mice , Glucose/metabolism , Diabetes Mellitus, Experimental/metabolism , Diabetes Mellitus, Experimental/drug therapy , Diabetes Mellitus, Experimental/pathology , Mice, Inbred C57BL , Diabetes Mellitus, Type 2/drug therapy , Diabetes Mellitus, Type 2/metabolism , Diabetes Mellitus, Type 2/pathology , Hypoglycemic Agents/pharmacology , Humans , Ischemia/metabolism , Ischemia/drug therapy , Ischemia/pathology
5.
J Transl Med ; 22(1): 447, 2024 May 13.
Article En | MEDLINE | ID: mdl-38741132

BACKGROUND: Retinal ischemia/reperfusion (RIR) is implicated in various forms of optic neuropathies, yet effective treatments are lacking. RIR leads to the death of retinal ganglion cells (RGCs) and subsequent vision loss, posing detrimental effects on both physical and mental health. Apigenin (API), derived from a wide range of sources, has been reported to exert protective effects against ischemia/reperfusion injuries in various organs, such as the brain, kidney, myocardium, and liver. In this study, we investigated the protective effect of API and its underlying mechanisms on RGC degeneration induced by retinal ischemia/reperfusion (RIR). METHODS: An in vivo model was induced by anterior chamber perfusion following intravitreal injection of API one day prior to the procedure. Meanwhile, an in vitro model was established through 1% oxygen and glucose deprivation. The neuroprotective effects of API were evaluated using H&E staining, spectral-domain optical coherence tomography (SD-OCT), Fluoro-Gold retrograde labeling, and Photopic negative response (PhNR). Furthermore, transmission electron microscopy (TEM) was employed to observe mitochondrial crista morphology and integrity. To elucidate the underlying mechanisms of API, the terminal deoxynucleotidyl transferase dUTP nick end labeling (TUNEL) assay, flow cytometry assay, western blot, cell counting kit-8 (CCK-8) assay, lactate dehydrogenase (LDH) assay, JC-1 kit assay, dichlorofluorescein-diacetate (DCFH-DA) assay, as well as TMRE and Mito-tracker staining were conducted. RESULTS: API treatment protected retinal inner plexiform layer (IPL) and ganglion cell complex (GCC), and improved the function of retinal ganglion cells (RGCs). Additionally, API reduced RGC apoptosis and decreased lactate dehydrogenase (LDH) release by upregulating Bcl-2 and Bcl-xL expression, while downregulating Bax and cleaved caspase-3 expression. Furthermore, API increased mitochondrial membrane potential (MMP) and decreased extracellular reactive oxygen species (ROS) production. These effects were achieved by enhancing mitochondrial function, restoring mitochondrial cristae morphology and integrity, and regulating the expression of OPA1, MFN2, and DRP1, thereby regulating mitochondrial dynamics involving fusion and fission. CONCLUSION: API protects RGCs against RIR injury by modulating mitochondrial dynamics, promoting mitochondrial fusion and fission.


Apigenin , Mitochondrial Dynamics , Neuroprotective Agents , Reperfusion Injury , Retinal Ganglion Cells , Retinal Ganglion Cells/drug effects , Retinal Ganglion Cells/pathology , Retinal Ganglion Cells/metabolism , Apigenin/pharmacology , Apigenin/therapeutic use , Animals , Reperfusion Injury/drug therapy , Reperfusion Injury/pathology , Neuroprotective Agents/pharmacology , Neuroprotective Agents/therapeutic use , Mitochondrial Dynamics/drug effects , Male , Apoptosis/drug effects , Mitochondria/drug effects , Mitochondria/metabolism , Reactive Oxygen Species/metabolism , Models, Biological , Mice, Inbred C57BL
6.
Proc Natl Acad Sci U S A ; 121(20): e2402180121, 2024 May 14.
Article En | MEDLINE | ID: mdl-38717859

Membrane tubulation coupled with fission (MTCF) is a widespread phenomenon but mechanisms for their coordination remain unclear, partly because of the lack of assays to monitor dynamics of membrane tubulation and subsequent fission. Using polymer cushioned bilayer islands, we analyze the membrane tubulator Bridging Integrator 1 (BIN1) mixed with the fission catalyst dynamin2 (Dyn2). Our results reveal this mixture to constitute a minimal two-component module that demonstrates MTCF. MTCF is an emergent property and arises because BIN1 facilitates recruitment but inhibits membrane binding of Dyn2 in a dose-dependent manner. MTCF is therefore apparent only at high Dyn2 to BIN1 ratios. Because of their mutual involvement in T-tubules biogenesis, mutations in BIN1 and Dyn2 are associated with centronuclear myopathies and our analysis links the pathology with aberrant MTCF. Together, our results establish cushioned bilayer islands as a facile template for the analysis of membrane tubulation and inform of mechanisms that coordinate MTCF.


Adaptor Proteins, Signal Transducing , Dynamin II , Tumor Suppressor Proteins , Dynamin II/metabolism , Dynamin II/genetics , Humans , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Tumor Suppressor Proteins/metabolism , Tumor Suppressor Proteins/genetics , Cell Membrane/metabolism , Nuclear Proteins/metabolism , Nuclear Proteins/genetics , Mitochondrial Dynamics/physiology , Myopathies, Structural, Congenital/genetics , Myopathies, Structural, Congenital/metabolism
7.
Sci Rep ; 14(1): 10658, 2024 05 09.
Article En | MEDLINE | ID: mdl-38724553

This study aimed to investigate the effects of exercise on excessive mitochondrial fission, insulin resistance, and inflammation in the muscles of diabetic rats. The role of the irisin/AMPK pathway in regulating exercise effects was also determined. Thirty-two 8-week-old male Wistar rats were randomly divided into four groups (n = 8 per group): one control group (Con) and three experimental groups. Type 2 diabetes mellitus (T2DM) was induced in the experimental groups via a high-fat diet followed by a single intraperitoneal injection of streptozotocin (STZ) at a dosage of 30 mg/kg body weight. After T2DM induction, groups were assigned as sedentary (DM), subjected to 8 weeks of treadmill exercise training (Ex), or exercise training combined with 8-week cycloRGDyk treatment (ExRg). Upon completion of the last training session, all rats were euthanized and samples of fasting blood and soleus muscle were collected for analysis using ELISA, immunofluorescence, RT-qPCR, and Western blotting. Statistical differences between groups were analyzed using one-way ANOVA, and differences between two groups were assessed using t-tests. Our findings demonstrate that exercise training markedly ameliorated hyperglycaemia, hyperlipidaemia, and insulin resistance in diabetic rats (p < 0.05). It also mitigated the disarranged morphology and inflammation of skeletal muscle associated with T2DM (p < 0.05). Crucially, exercise training suppressed muscular excessive mitochondrial fission in the soleus muscle of diabetic rats (p < 0.05), and enhanced irisin and p-AMPK levels significantly (p < 0.05). However, exercise-induced irisin and p-AMPK expression were inhibited by cycloRGDyk treatment (p < 0.05). Furthermore, the administration of CycloRGDyk blocked the effects of exercise training in reducing excessive mitochondrial fission and inflammation in the soleus muscle of diabetic rats, as well as the positive effects of exercise training on improving hyperlipidemia and insulin sensitivity in diabetic rats (p < 0.05). These results indicate that regular exercise training effectively ameliorates insulin resistance and glucolipid metabolic dysfunction, and reduces inflammation in skeletal muscle. These benefits are partially mediated by reductions in mitochondrial fission through the irisin/AMPK signalling pathway.


AMP-Activated Protein Kinases , Diabetes Mellitus, Experimental , Fibronectins , Inflammation , Insulin Resistance , Mitochondrial Dynamics , Muscle, Skeletal , Physical Conditioning, Animal , Rats, Wistar , Animals , Fibronectins/metabolism , Male , Diabetes Mellitus, Experimental/metabolism , Diabetes Mellitus, Experimental/therapy , Rats , Muscle, Skeletal/metabolism , Inflammation/metabolism , AMP-Activated Protein Kinases/metabolism , Diabetes Mellitus, Type 2/metabolism , Diabetes Mellitus, Type 2/therapy , Signal Transduction , Streptozocin
8.
Methods Mol Biol ; 2800: 167-187, 2024.
Article En | MEDLINE | ID: mdl-38709484

Analyzing the dynamics of mitochondrial content in developing T cells is crucial for understanding the metabolic state during T cell development. However, monitoring mitochondrial content in real-time needs a balance of cell viability and image resolution. In this chapter, we present experimental protocols for measuring mitochondrial content in developing T cells using three modalities: bulk analysis via flow cytometry, volumetric imaging in laser scanning confocal microscopy, and dynamic live-cell monitoring in spinning disc confocal microscopy. Next, we provide an image segmentation and centroid tracking-based analysis pipeline for automated quantification of a large number of microscopy images. These protocols together offer comprehensive approaches to investigate mitochondrial dynamics in developing T cells, enabling a deeper understanding of their metabolic processes.


Flow Cytometry , Microscopy, Confocal , Mitochondria , Single-Cell Analysis , T-Lymphocytes , Flow Cytometry/methods , Mitochondria/metabolism , Single-Cell Analysis/methods , T-Lymphocytes/metabolism , T-Lymphocytes/cytology , Microscopy, Confocal/methods , Animals , Image Processing, Computer-Assisted/methods , Humans , Mice , Mitochondrial Dynamics
9.
Free Radic Biol Med ; 220: 312-323, 2024 Aug 01.
Article En | MEDLINE | ID: mdl-38740101

Podocytes are crucial for regulating glomerular permeability. They have foot processes that are integral to the renal filtration barrier. Understanding their energy metabolism could shed light on the pathogenesis of filtration barrier injury. Lactate has been increasingly recognized as more than a waste product and has emerged as a significant metabolic fuel and reserve. The recent identification of lactate transporters in podocytes, the expression of which is modulated by glucose levels and lactate, highlights lactate's relevance. The present study investigated the impact of lactate on podocyte respiratory efficiency and mitochondrial dynamics. We confirmed lactate oxidation in podocytes, suggesting its role in cellular energy production. Under conditions of glucose deprivation or lactate supplementation, a significant shift was seen toward oxidative phosphorylation, reflected by an increase in the oxygen consumption rate/extracellular acidification rate ratio. Notably, lactate dehydrogenase A (LDHA) and lactate dehydrogenase B (LDHB) isoforms, which are involved in lactate conversion to pyruvate, were detected in podocytes for the first time. The presence of lactate led to higher intracellular pyruvate levels, greater LDH activity, and higher LDHB expression. Furthermore, lactate exposure increased mitochondrial DNA-to-nuclear DNA ratios and resulted in upregulation of the mitochondrial biogenesis markers peroxisome proliferator-activated receptor coactivator-1α and transcription factor A mitochondrial, regardless of glucose availability. Changes in mitochondrial size and shape were observed in lactate-exposed podocytes. These findings suggest that lactate is a pivotal energy source for podocytes, especially during energy fluctuations. Understanding lactate's role in podocyte metabolism could offer insights into renal function and pathologies that involve podocyte injury.


L-Lactate Dehydrogenase , Lactic Acid , Mitochondrial Dynamics , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha , Podocytes , Podocytes/metabolism , Podocytes/pathology , Animals , Rats , Lactic Acid/metabolism , L-Lactate Dehydrogenase/metabolism , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/metabolism , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/genetics , Mitochondria/metabolism , Mitochondria/pathology , Glucose/metabolism , Energy Metabolism , Lactate Dehydrogenase 5/metabolism , Oxidative Phosphorylation/drug effects , DNA, Mitochondrial/metabolism , DNA, Mitochondrial/genetics , Oxygen Consumption , Cells, Cultured , Pyruvic Acid/metabolism , Isoenzymes
10.
J Nanobiotechnology ; 22(1): 281, 2024 May 24.
Article En | MEDLINE | ID: mdl-38790015

BACKGROUND: Cartilaginous endplate (CEP) degeneration, which is an important contributor to intervertebral disc degeneration (IVDD), is characterized by chondrocyte death. Accumulating evidence has revealed that dynamin-related protein 1 (Drp1)-mediated mitochondrial fission and dysfunction lead to apoptosis during CEP degeneration and IVDD. Exosomes are promising agents for the treatment of many diseases, including osteoporosis, osteosarcoma, osteoarthritis and IVDD. Despite their major success in drug delivery, the full potential of exosomes remains untapped. MATERIALS AND METHODS: In vitro and in vivo models of CEP degeneration were established by using lipopolysaccharide (LPS). We designed genetically engineered exosomes (CAP-Nrf2-Exos) expressing chondrocyte-affinity peptide (CAP) on the surface and carrying the antioxidant transcription factor nuclear factor E2-related factor 2 (Nrf2). The affinity between CAP-Nrf2-Exos and CEP was evaluated by in vitro internalization assays and in vivo imaging assays. qRT‒PCR, Western blotting and immunofluorescence assays were performed to examine the expression level of Nrf2 and the subcellular localization of Nrf2 and Drp1. Mitochondrial function was measured by the JC-1 probe and MitoSOX Red. Mitochondrial morphology was visualized by MitoTracker staining and transmission electron microscopy (TEM). After subendplate injection of the engineered exosomes, the degree of CEP degeneration and IVDD was validated radiologically and histologically. RESULTS: We found that the cargo delivery efficiency of exosomes after cargo packaging was increased by surface modification. CAP-Nrf2-Exos facilitated chondrocyte-targeted delivery of Nrf2 and activated the endogenous antioxidant defence system in CEP cells. The engineered exosomes inhibited Drp1 S616 phosphorylation and mitochondrial translocation, thereby preventing mitochondrial fragmentation and dysfunction. LPS-induced CEP cell apoptosis was alleviated by CAP-Nrf2-Exo treatment. In a rat model of CEP degeneration, the engineered exosomes successfully attenuated CEP degeneration and IVDD and exhibited better repair capacity than natural exosomes. CONCLUSION: Collectively, our findings showed that exosome-mediated chondrocyte-targeted delivery of Nrf2 was an effective strategy for treating CEP degeneration.


Chondrocytes , Exosomes , Intervertebral Disc Degeneration , Mitochondrial Dynamics , NF-E2-Related Factor 2 , Rats, Sprague-Dawley , Exosomes/metabolism , Animals , NF-E2-Related Factor 2/metabolism , Chondrocytes/metabolism , Rats , Intervertebral Disc Degeneration/metabolism , Intervertebral Disc Degeneration/pathology , Male , Mitochondria/metabolism , Dynamins/metabolism , Dynamins/genetics , Cartilage/metabolism , Cartilage/pathology , Drug Delivery Systems/methods , Apoptosis
11.
Int J Mol Sci ; 25(10)2024 May 17.
Article En | MEDLINE | ID: mdl-38791484

Lipid droplet (LD) accumulation in hepatocytes is one of the major symptoms associated with fatty liver disease. Mitochondria play a key role in catabolizing fatty acids for energy production through ß-oxidation. The interplay between mitochondria and LD assumes a crucial role in lipid metabolism, while it is obscure how mitochondrial morphology affects systemic lipid metabolism in the liver. We previously reported that cilnidipine, an already existing anti-hypertensive drug, can prevent pathological mitochondrial fission by inhibiting protein-protein interaction between dynamin-related protein 1 (Drp1) and filamin, an actin-binding protein. Here, we found that cilnidipine and its new dihydropyridine (DHP) derivative, 1,4-DHP, which lacks Ca2+ channel-blocking action of cilnidipine, prevent the palmitic acid-induced Drp1-filamin interaction, LD accumulation and cytotoxicity of human hepatic HepG2 cells. Cilnidipine and 1,4-DHP also suppressed the LD accumulation accompanied by reducing mitochondrial contact with LD in obese model and high-fat diet-fed mouse livers. These results propose that targeting the Drp1-filamin interaction become a new strategy for the prevention or treatment of fatty liver disease.


Dihydropyridines , Dynamins , Lipid Droplets , Liver , Animals , Dynamins/metabolism , Humans , Lipid Droplets/metabolism , Lipid Droplets/drug effects , Mice , Hep G2 Cells , Liver/metabolism , Liver/drug effects , Liver/pathology , Dihydropyridines/pharmacology , Mitochondria/metabolism , Mitochondria/drug effects , Lipid Metabolism/drug effects , Male , Mitochondrial Dynamics/drug effects , Mice, Inbred C57BL , Diet, High-Fat/adverse effects , Hepatocytes/metabolism , Hepatocytes/drug effects
12.
J Transl Med ; 22(1): 499, 2024 May 25.
Article En | MEDLINE | ID: mdl-38796415

BACKGROUND: Myocardial ischemia-reperfusion injury (MIRI) is caused by reperfusion after ischemic heart disease. LncRNA Snhg1 regulates the progression of various diseases. N6-methyladenosine (m6A) is the frequent RNA modification and plays a critical role in MIRI. However, it is unclear whether lncRNA Snhg1 regulates MIRI progression and whether the lncRNA Snhg1 was modified by m6A methylation. METHODS: Mouse cardiomyocytes HL-1 cells were utilized to construct the hypoxia/reoxygenation (H/R) injury model. HL-1 cell viability was evaluated utilizing CCK-8 method. Cell apoptosis, mitochondrial reactive oxygen species (ROS), and mitochondrial membrane potential (MMP) were quantitated utilizing flow cytometry. RNA immunoprecipitation and dual-luciferase reporter assays were applied to measure the m6A methylation and the interactions between lncRNA Snhg1 and targeted miRNA or target miRNAs and its target gene. The I/R mouse model was constructed with adenovirus expressing lncRNA Snhg1. HE and TUNEL staining were used to evaluate myocardial tissue damage and apoptosis. RESULTS: LncRNA Snhg1 was down-regulated after H/R injury, and overexpressed lncRNA Snhg1 suppressed H/R-stimulated cell apoptosis, mitochondrial ROS level and polarization. Besides, lncRNA Snhg1 could target miR-361-5p, and miR-361-5p targeted OPA1. Overexpressed lncRNA Snhg1 suppressed H/R-stimulated cell apoptosis, mitochondrial ROS level and polarization though the miR-361-5p/OPA1 axis. Furthermore, WTAP induced lncRNA Snhg1 m6A modification in H/R-stimulated HL-1 cells. Moreover, enforced lncRNA Snhg1 repressed I/R-stimulated myocardial tissue damage and apoptosis and regulated the miR-361-5p and OPA1 levels. CONCLUSION: WTAP-mediated m6A modification of lncRNA Snhg1 regulated MIRI progression through modulating myocardial apoptosis, mitochondrial ROS production, and mitochondrial polarization via miR-361-5p/OPA1 axis, providing the evidence for lncRNA as the prospective target for alleviating MIRI progression.


Apoptosis , MicroRNAs , Mitochondrial Dynamics , Myocardial Reperfusion Injury , Myocytes, Cardiac , RNA, Long Noncoding , Animals , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , MicroRNAs/metabolism , MicroRNAs/genetics , Myocardial Reperfusion Injury/metabolism , Myocardial Reperfusion Injury/genetics , Myocardial Reperfusion Injury/pathology , Mice , Apoptosis/genetics , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Cell Line , Male , Mice, Inbred C57BL , GTP Phosphohydrolases/metabolism , GTP Phosphohydrolases/genetics , Reactive Oxygen Species/metabolism , Adenosine/analogs & derivatives , Adenosine/metabolism , Base Sequence , Methylation , Membrane Potential, Mitochondrial
13.
Free Radic Biol Med ; 220: 249-261, 2024 Aug 01.
Article En | MEDLINE | ID: mdl-38697491

Carbon black nanoparticles (CBNPs) are widely distributed in the environment and are increasingly recognized as a contributor in the development of cardiovascular disease. A variety of cardiac injuries and diseases result from structural and functional damage to cardiomyocytes. This study explored the mechanisms of CBNPs-mediated myocardial toxicity. CBNPs were given to mice through intra-tracheal instillation and it was demonstrated that the particles can be taken up into the cardiac tissue. Exposure to CBNPs induced cardiomyocyte inflammation and apoptosis. In combination with in vitro experiments, we showed that CBNPs increased the ROS and induced mitochondria fragmentation. Functionally, CBNPs-exposed cardiomyocyte exhibited depolarization of the mitochondrial membrane potential, release of cytochrome c, and activation of pro-apoptotic BAX, thereby initiating programmed cell death. On the other hand, CBNPs impaired autophagy, leading to the inadequate removal of dysfunctional mitochondria. The excess accumulation of damaged mitochondria further stimulated NF-κB activation and triggered the NLRP3 inflammasome pathway. Both the antioxidant N-acetylcysteine and the autophagy activator rapamycin were effective to attenuate the damage of CBNPs on cardiomyocytes. Taken together, this study elucidated the potential mechanism underlying CBNPs-induced myocardial injury and provided a scientific reference for the evaluation and prevention of the CBNPs-related heart risk.


Apoptosis , Autophagy , Membrane Potential, Mitochondrial , Mitochondrial Dynamics , Myocytes, Cardiac , Nanoparticles , Reactive Oxygen Species , Soot , Animals , Soot/toxicity , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/pathology , Reactive Oxygen Species/metabolism , Autophagy/drug effects , Mice , Apoptosis/drug effects , Membrane Potential, Mitochondrial/drug effects , Mitochondrial Dynamics/drug effects , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , NLR Family, Pyrin Domain-Containing 3 Protein/genetics , Inflammasomes/metabolism , NF-kappa B/metabolism , NF-kappa B/genetics , Acetylcysteine/pharmacology , Male , Sirolimus/pharmacology , Mitochondria/metabolism , Mitochondria/pathology , Mitochondria/drug effects , Oxidative Stress/drug effects
14.
J Cell Biol ; 223(9)2024 Sep 02.
Article En | MEDLINE | ID: mdl-38781029

The mitochondria-ER-cortex anchor (MECA) forms a tripartite membrane contact site between mitochondria, the endoplasmic reticulum (ER), and the plasma membrane (PM). The core component of MECA, Num1, interacts with the PM and mitochondria via two distinct lipid-binding domains; however, the molecular mechanism by which Num1 interacts with the ER is unclear. Here, we demonstrate that Num1 contains a FFAT motif in its C-terminus that interacts with the integral ER membrane protein Scs2. While dispensable for Num1's functions in mitochondrial tethering and dynein anchoring, the FFAT motif is required for Num1's role in promoting mitochondrial division. Unexpectedly, we also reveal a novel function of MECA in regulating the distribution of phosphatidylinositol-4-phosphate (PI(4)P). Breaking Num1 association with any of the three membranes it tethers results in an accumulation of PI(4)P on the PM, likely via disrupting Sac1-mediated PI(4)P turnover. This work establishes MECA as an important regulatory hub that spatially organizes mitochondria, ER, and PM to coordinate crucial cellular functions.


Endoplasmic Reticulum , Mitochondria , Phosphatidylinositol Phosphates , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Cell Membrane/metabolism , Cytoskeletal Proteins/genetics , Cytoskeletal Proteins/metabolism , Endoplasmic Reticulum/metabolism , Endoplasmic Reticulum/genetics , Membrane Proteins/metabolism , Membrane Proteins/genetics , Mitochondria/metabolism , Mitochondria/genetics , Mitochondrial Dynamics , Phosphatidylinositol Phosphates/metabolism , Protein Binding , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics
15.
Circ Res ; 134(11): 1581-1606, 2024 May 24.
Article En | MEDLINE | ID: mdl-38781302

HIV infection and antiretroviral therapy alter mitochondrial function, which can progressively lead to mitochondrial damage and accelerated aging. The interaction between persistent HIV reservoirs and mitochondria may provide insight into the relatively high rates of cardiovascular disease and mortality in persons living with HIV. In this review, we explore the intricate relationship between HIV and mitochondrial function, highlighting the potential for novel therapeutic strategies in the context of cardiovascular diseases. We reflect on mitochondrial dynamics, mitochondrial DNA, and mitochondrial antiviral signaling protein in the context of HIV. Furthermore, we summarize how toxicities related to early antiretroviral therapy and current highly active antiretroviral therapy can contribute to mitochondrial dysregulation, chronic inflammation, and poor clinical outcomes. There is a need to understand the mechanisms and develop new targeted therapies. We further consider current and potential future therapies for HIV and their interplay with mitochondria. We reflect on the next-generation antiretroviral therapies and HIV cure due to the direct and indirect effects of HIV persistence, associated comorbidities, coinfections, and the advancement of interdisciplinary research fields. This includes exploring novel and creative approaches to target mitochondria for therapeutic intervention.


Cardiovascular Diseases , HIV Infections , Mitochondria , Humans , HIV Infections/drug therapy , HIV Infections/metabolism , HIV Infections/complications , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/virology , Mitochondria/metabolism , DNA, Mitochondrial/metabolism , DNA, Mitochondrial/genetics , Animals , Antiretroviral Therapy, Highly Active/adverse effects , Mitochondrial Dynamics/drug effects , Anti-HIV Agents/therapeutic use , Anti-HIV Agents/adverse effects
16.
J Transl Med ; 22(1): 479, 2024 May 21.
Article En | MEDLINE | ID: mdl-38773615

Idiopathic pulmonary fibrosis (IPF) is a chronic, progressive, fibrotic interstitial lung diseases, which mainly existed in middle-aged and elderly people. The accumulation of reactive oxygen species (ROS) is a common characteristic of IPF. Previous research also shown that lactate levels can be abnormally elevated in IPF patients. Emerging evidence suggested a relationship between lactate and ROS in IPF which needs further elucidation. In this article, we utilized a mouse model of BLM-induced pulmonary fibrosis to detect alterations in ROS levels and other indicators associated with fibrosis. Lactate could induce mitochondrial fragmentation by modulating expression and activity of DRP1 and ERK. Moreover, Increased ROS promoted P65 translocation into nucleus, leading to expression of lung fibrotic markers. Finally, Ulixertinib, Mdivi-1 and Mito-TEMPO, which were inhibitor activity of ERK, DRP1 and mtROS, respectively, could effectively prevented mitochondrial damage and production of ROS and eventually alleviate pulmonary fibrosis. Taken together, these findings suggested that lactate could promote lung fibrosis by increasing mitochondrial fission-derived ROS via ERK/DRP1 signaling, which may provide novel therapeutic solutions for IPF.


Dynamins , Mice, Inbred C57BL , Mitochondrial Dynamics , Reactive Oxygen Species , Animals , Reactive Oxygen Species/metabolism , Mitochondrial Dynamics/drug effects , Dynamins/metabolism , Bleomycin , Signal Transduction , Lactic Acid/metabolism , Extracellular Signal-Regulated MAP Kinases/metabolism , Mitochondria/metabolism , Male , MAP Kinase Signaling System/drug effects , Pulmonary Fibrosis/metabolism , Pulmonary Fibrosis/pathology , Mice , Humans
17.
J Transl Med ; 22(1): 465, 2024 May 16.
Article En | MEDLINE | ID: mdl-38755664

Disturbance in mitochondrial homeostasis within proximal tubules is a critical characteristic associated with diabetic kidney disease (DKD). CaMKKß/AMPK signaling plays an important role in regulating mitochondrial homeostasis. Despite the downregulation of CaMKKß in DKD pathology, the underlying mechanism remains elusive. The expression of NEDD4L, which is primarily localized to renal proximal tubules, is significantly upregulated in the renal tubules of mice with DKD. Coimmunoprecipitation (Co-IP) assays revealed a physical interaction between NEDD4L and CaMKKß. Moreover, deletion of NEDD4L under high glucose conditions prevented rapid CaMKKß protein degradation. In vitro studies revealed that the aberrant expression of NEDD4L negatively influences the protein stability of CaMKKß. This study also explored the role of NEDD4L in DKD by using AAV-shNedd4L in db/db mice. These findings confirmed that NEDD4L inhibition leads to a decrease in urine protein excretion, tubulointerstitial fibrosis, and oxidative stress, and mitochondrial dysfunction. Further in vitro studies demonstrated that si-Nedd4L suppressed mitochondrial fission and reactive oxygen species (ROS) production, effects antagonized by si-CaMKKß. In summary, the findings provided herein provide strong evidence that dysregulated NEDD4L disturbs mitochondrial homeostasis by negatively modulating CaMKKß in the context of DKD. This evidence underscores the potential of therapeutic interventions targeting NEDD4L and CaMKKß to safeguard renal tubular function in the management of DKD.


Calcium-Calmodulin-Dependent Protein Kinase Kinase , Diabetic Nephropathies , Down-Regulation , Homeostasis , Mitochondria , Nedd4 Ubiquitin Protein Ligases , Animals , Nedd4 Ubiquitin Protein Ligases/metabolism , Nedd4 Ubiquitin Protein Ligases/genetics , Diabetic Nephropathies/metabolism , Diabetic Nephropathies/pathology , Mitochondria/metabolism , Calcium-Calmodulin-Dependent Protein Kinase Kinase/metabolism , Mice, Inbred C57BL , Mice , Humans , Reactive Oxygen Species/metabolism , Male , Oxidative Stress , Mitochondrial Dynamics , Protein Stability , Proteolysis
18.
Biochem Biophys Res Commun ; 717: 150021, 2024 Jul 12.
Article En | MEDLINE | ID: mdl-38718565

Mesenchymal stem cells (MSCs) are ubiquitous multipotent cells exhibiting significant therapeutic potential for various diseases. It is generally accepted that clinical application requires massive expansion of MSCs, which is often accompanied by the occurrence of replicative senescence. Additionally, senescent MSCs exhibit significantly reduced proliferation, differentiation, and therapeutic potential. The scale-up of MSCs production and cellular senescence are major challenges for translational applications. This study first collected extracellular vesicles (EVs) from gingival MSCs (GMSCs) under hypoxia preconditioning combined with 3D dynamic culture (obtained EVs designed as H-3D-EVs). Subsequently, we further explored the effects and mechanisms of H-3D-EVs on aging-GMSCs. The results showed that H-3D-EVs improved the proliferation ability and cell activity of aging-GMSCs, and ameliorated their senescence. mRNA sequencing reveals transcriptomic changes in aging-GMSCs. It was found that H-3D-EVs up-regulated genes related to mitochondrial dynamics, cell cycle, and DNA repair, while down-regulated aging-related genes. Furthermore, we verified that H-3D-EVs corrected the mitochondrial dysfunction of aging-GMSCs by improving mitochondrial dynamics. In summary, this study provides a promising strategy for improving the culture methods of GMSCs and avoiding its senescence in large-scale production.


Cellular Senescence , Extracellular Vesicles , Mesenchymal Stem Cells , Mitochondria , Extracellular Vesicles/metabolism , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Mitochondria/metabolism , Humans , Cell Hypoxia , Cells, Cultured , Cell Proliferation , Aging/metabolism , Aging/genetics , Mitochondrial Dynamics
19.
J Transl Med ; 22(1): 441, 2024 May 10.
Article En | MEDLINE | ID: mdl-38730481

Microtubule targeting agents (MTAs) are commonly prescribed to treat cancers and predominantly kill cancer cells in mitosis. Significantly, some MTA-treated cancer cells escape death in mitosis, exit mitosis and become malignant polyploid giant cancer cells (PGCC). Considering the low number of cancer cells undergoing mitosis in tumor tissues, killing them in interphase may represent a favored antitumor approach. We discovered that ST-401, a mild inhibitor of microtubule (MT) assembly, preferentially kills cancer cells in interphase as opposed to mitosis, a cell death mechanism that avoids the development of PGCC. Single cell RNA sequencing identified mRNA transcripts regulated by ST-401, including mRNAs involved in ribosome and mitochondrial functions. Accordingly, ST-401 induces a transient integrated stress response, reduces energy metabolism, and promotes mitochondria fission. This cell response may underly death in interphase and avoid the development of PGCC. Considering that ST-401 is a brain-penetrant MTA, we validated these results in glioblastoma cell lines and found that ST-401 also reduces energy metabolism and promotes mitochondria fission in GBM sensitive lines. Thus, brain-penetrant mild inhibitors of MT assembly, such as ST-401, that induce death in interphase through a previously unanticipated antitumor mechanism represent a potentially transformative new class of therapeutics for the treatment of GBM.


Cell Death , Giant Cells , Interphase , Microtubules , Polyploidy , Humans , Interphase/drug effects , Microtubules/metabolism , Microtubules/drug effects , Cell Line, Tumor , Cell Death/drug effects , Giant Cells/drug effects , Giant Cells/metabolism , Giant Cells/pathology , Mitochondrial Dynamics/drug effects , Energy Metabolism/drug effects , Glioblastoma/pathology , Glioblastoma/drug therapy , Glioblastoma/metabolism , Glioblastoma/genetics , Neoplasms/pathology , Neoplasms/drug therapy , Neoplasms/metabolism , Neoplasms/genetics , Mitochondria/metabolism , Mitochondria/drug effects , Gene Expression Regulation, Neoplastic/drug effects
20.
Cell Mol Biol Lett ; 29(1): 72, 2024 May 14.
Article En | MEDLINE | ID: mdl-38745296

BACKGROUND: Aberrant mitochondrial fission, a critical pathological event underlying myocardial ischemia/reperfusion (MI/R) injury, has emerged as a potential therapeutic target. The long non-coding RNA (lncRNA) Oip5-as1 is increasingly recognized for its regulatory roles, particularly in MI/R injury. However, its precise mechanistic role in modulating mitochondrial dynamics remains elusive. This study aims to elucidate the mechanistic role of Oip5-as1 in regulating mitochondrial fission and evaluate its therapeutic potential against MI/R injury. METHODS: To simulate in vitro MI/R injury, HL-1 cardiomyocytes were subjected to hypoxia/reoxygenation (H/R). Lentiviral vectors were employed to achieve overexpression or knockdown of Oip5-as1 in HL-1 cells by expressing Oip5-as1 or shRNA targeting Oip5-as1, respectively. The impact of Oip5-as1 on mitochondrial dynamics in HL-1 cells was assessed using CCK-8 assay, flow cytometry, immunofluorescence staining, and biochemical assays. MI/R injury was induced in mice by ligating the left anterior descending coronary artery. Conditional knockout mice for Oip5-as1 were generated using the CRISPR/Cas9 genome editing technology, while overexpression of Oip5-as1 in mice was achieved via intramyocardial administration of AAV9 vectors. In mice, the role of Oip5-as1 was evaluated through echocardiographic assessment, histopathological staining, and transmission electron microscopy. Furthermore, Western blotting, RNA pull-down, RNA immunoprecipitation, and co-immunoprecipitation assays were conducted to investigate Oip5-as1's underlying mechanisms. RESULTS: The expression levels of Oip5-as1 are significantly decreased in MI/R-injured HL-1 cells and myocardium. In HL-1 cells undergoing H/R injury, overexpression of Oip5-as1 attenuated excessive mitochondrial fission, preserved mitochondrial functionality, and reduced cellular apoptosis, while knockdown of Oip5-as1 exhibited the opposite effects. Furthermore, in a mouse model of MI/R injury, overexpression of Oip5-as1 diminished mitochondrial fission, myocardial infarct size and improved cardiac function. However, knockout of Oip5-as1 exacerbated myocardial injury and cardiac dysfunction, which were significantly reversed by treatment with a mitochondrial division inhibitor-1 (Mdivi-1). Mechanistically, Oip5-as1 selectively interacts with AKAP1 and CaN proteins, inhibiting CaN activation and subsequent DRP1 dephosphorylation at Ser637, thereby constraining DRP1's translocation to the mitochondria and its involvement in mitochondrial fission. CONCLUSIONS: Our study underscores the pivotal role of Oip5-as1 in mitigating excessive mitochondrial fission during MI/R injury. The findings not only enhance our comprehension of the molecular mechanisms underlying MI/R injury but also identify Oip5-as1 as a potential therapeutic target for ameliorating MI/R injury.


Dynamins , Mitochondrial Dynamics , Myocardial Reperfusion Injury , Myocytes, Cardiac , RNA, Long Noncoding , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Animals , Mitochondrial Dynamics/genetics , Myocardial Reperfusion Injury/metabolism , Myocardial Reperfusion Injury/genetics , Myocardial Reperfusion Injury/pathology , Dynamins/metabolism , Dynamins/genetics , Mice , Phosphorylation , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Cell Line , Mice, Knockout , Male , Mice, Inbred C57BL
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