1.Therapeutic potential of NADH: in neurodegenerative diseases characterizde by mitochondrial dysfunction.
Ziyi CHEN ; Hongyang WANG ; Qiuju WANG
Journal of Clinical Otorhinolaryngology Head and Neck Surgery 2024;38(1):57-62
Nicotinamide adenine dinucleotide(NADH) in its reduced form of is a key coenzyme in redox reactions, essential for maintaining energy homeostasis.NADH and its oxidized counterpart, NAD+, form a redox couple that regulates various biological processes, including calcium homeostasis, synaptic plasticity, anti-apoptosis, and gene expression. The reduction of NAD+/NADH levels is closely linked to mitochondrial dysfunction, which plays a pivotal role in the cascade of various neurodegenerative disorders, including Parkinson's disease and Alzheimer's disease.Auditory neuropathy(AN) is recognized as a clinical biomarker in neurodegenerative disorders. Furthermore, mitochondrial dysfunction has been identified in patients with mutations in genes like OPA1and AIFM1. However, effective treatments for these conditions are still lacking. Increasing evidence suggests that administratering NAD+ or its precursors endogenously may potentially prevent and slow disease progression by enhancing DNA repair and improving mitochondrial function. Therefore, this review concentrates on the metabolic pathways of NAD+/NADH production and their biological functions, and delves into the therapeutic potential and mechanisms of NADH in treating AN.
Humans
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NAD/metabolism*
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Neurodegenerative Diseases/metabolism*
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Mitochondria
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Oxidation-Reduction
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Mitochondrial Diseases
3.Distinct mononuclear diploid cardiac subpopulation with minimal cell-cell communications persists in embryonic and adult mammalian heart.
Miaomiao ZHU ; Huamin LIANG ; Zhe ZHANG ; Hao JIANG ; Jingwen PU ; Xiaoyi HANG ; Qian ZHOU ; Jiacheng XIANG ; Ximiao HE
Frontiers of Medicine 2023;17(5):939-956
A small proportion of mononuclear diploid cardiomyocytes (MNDCMs), with regeneration potential, could persist in adult mammalian heart. However, the heterogeneity of MNDCMs and changes during development remains to be illuminated. To this end, 12 645 cardiac cells were generated from embryonic day 17.5 and postnatal days 2 and 8 mice by single-cell RNA sequencing. Three cardiac developmental paths were identified: two switching to cardiomyocytes (CM) maturation with close CM-fibroblast (FB) communications and one maintaining MNDCM status with least CM-FB communications. Proliferative MNDCMs having interactions with macrophages and non-proliferative MNDCMs (non-pMNDCMs) with minimal cell-cell communications were identified in the third path. The non-pMNDCMs possessed distinct properties: the lowest mitochondrial metabolisms, the highest glycolysis, and high expression of Myl4 and Tnni1. Single-nucleus RNA sequencing and immunohistochemical staining further proved that the Myl4+Tnni1+ MNDCMs persisted in embryonic and adult hearts. These MNDCMs were mapped to the heart by integrating the spatial and single-cell transcriptomic data. In conclusion, a novel non-pMNDCM subpopulation with minimal cell-cell communications was unveiled, highlighting the importance of microenvironment contribution to CM fate during maturation. These findings could improve the understanding of MNDCM heterogeneity and cardiac development, thus providing new clues for approaches to effective cardiac regeneration.
Animals
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Mice
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Diploidy
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Heart
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Myocytes, Cardiac/metabolism*
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Cell Communication
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Gene Expression Profiling
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Mitochondria
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Regeneration
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Mammals/genetics*
4.Relationship between Notch signaling pathway and mitochondrial energy metabolism.
Qi SHEN ; Yufan YUAN ; Jinlan JIN
Chinese Critical Care Medicine 2023;35(12):1321-1326
Notch signaling pathway is a highly conserved signaling pathway in the process of evolution. It is composed of three parts: Notch receptor, ligand and effector molecules responsible for intracellular signal transduction. It plays an important role in cell proliferation, differentiation, development, migration, apoptosis and other processes, and has a regulatory effect on tissue homeostasis and homeostasis. Mitochondria are the sites of oxidative metabolism in eukaryotes, where sugars, fats and proteins are finally oxidized to release energy. In recent years, the regulation of Notch signaling pathway on mitochondrial energy metabolism has attracted more and more attention. A large number of data have shown that Notch signaling pathway has a significant effect on mitochondrial energy metabolism, but the relationship between Notch signaling pathway and mitochondrial energy metabolism needs to be specifically and systematically discussed. In this paper, the relationship between Notch signaling pathway and mitochondrial energy metabolism is reviewed, in order to improve the understanding of them and provide new ideas for the treatment of related diseases.
Signal Transduction/physiology*
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Mitochondria
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Receptors, Notch/metabolism*
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Cell Differentiation/physiology*
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Energy Metabolism
5.The role of mitochondria-associated endoplasmic reticulum membranes in age-related cardiovascular diseases.
Yu ZHANG ; Xin-Yi ZHAO ; Wen-Jun XIE ; Yi ZHANG
Acta Physiologica Sinica 2023;75(6):799-816
Mitochondria-associated endoplasmic reticulum membranes (MAMs) are the physical connection sites between mitochondria and endoplasmic reticulum (ER). As the compartments controlling substance and information communications between ER and mitochondria, MAMs were involved in the regulation of various pathophysiological processes, such as calcium homeostasis, mitochondrial morphology and function, lipid metabolism and autophagy. In the past decades, accumulating lines of evidence have revealed the pivotal role of MAMs in diverse cardiovascular diseases (CVD). Aging is one of the major independent risk factors for CVD, which causes progressive degeneration of the cardiovascular system, leading to increased morbidity and mortality of CVD. This review aims to summarize the research progress of MAMs in age-related CVD, and explore new targets for its prevention and treatment.
Humans
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Mitochondrial Membranes
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Cardiovascular Diseases/metabolism*
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Calcium Signaling/physiology*
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Mitochondria/physiology*
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Endoplasmic Reticulum/metabolism*
6.Effect of uridine on mitochondrial function.
Xueyi BAI ; Ding HUANG ; Pan XIE ; Ruiqiang SUN ; Hang ZHOU ; Yu LIU
Chinese Journal of Biotechnology 2023;39(9):3695-3709
Uridine is one of the essential nutrients in organisms. To maintain normal cell growth and intracellular metabolism, the uridine must be maintained at certain concentration. Recent studies have shown that uridine can reduce inflammatory response in organisms, participate in glycolysis, and regulate intracellular protein modification, such as glycosylation and acetylation. Furthermore, it can protect cells from hypoxic injury by reducing intracellular oxidative stress, promoting high-energy compounds synthesis. Previous studies have shown that the protective effects of uridine are closely related to its effect on mitochondria. This review summarizes the effect of uridine on mitochondrial function.
Uridine/metabolism*
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Mitochondria/metabolism*
7.Regulation of Neuro-Microenvironment on Mitochondrial Mass of Hematopoietic Stem and Progenitor Cells.
Hong-Lin DUAN ; Tao CHENG ; Hui CHENG
Journal of Experimental Hematology 2023;31(6):1838-1844
OBJECTIVE:
To study the effects of the neuro-microenvironment on the mass of mitochondria in hematopoietic stem and progenitor cells (HSPC), and to understand the potential mechanisms how nerve regulates HSPC.
METHODS:
6-hydroxydopamine (6-OHDA) and capsaicin were used to interfere with the function of sympathetic nerve and nociceptive nerve in mitochondria-GFP reporter mice, respectively. The fluorescence intensity of GFP in bone marrow and spleen was measured by flow cytometry. The GFP median fluorescence intensity (MFI) of HSPC in normal bone marrow and spleen was analyzed and compared. The changes of the mitochondrial mass in HSPCs in each group after denervation were compared.
RESULTS:
Hematopoietic stem cells (HSC) had the highest mito-GFP MFI in steady-state (49 793±1 877), and the mito-GFP MFI gradually decreased during the differentiation of HSCs. Compared with control group, pharmaceutical nociceptive denervation significantly increased the mito-GFP MFI of bone marrow multipotent progenitor-1 (MPP1, 50 751±420 vs 44 020±510) and LKS- cells (15 673±65 vs 13 979±103); pharmaceutical sympathetic denervation significantly reduced the mito-GFP MFI of bone marrow LKS+ cells (21 667±351 vs 29 249±973).
CONCLUSION
Sympathetic and nociceptive nerves can regulate the mass of mitochondria in HSPC and affect the function of HSPCs.
Animals
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Mice
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Hematopoietic Stem Cells
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Bone Marrow/metabolism*
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Cell Differentiation
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Mitochondria
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Pharmaceutical Preparations/metabolism*
8.Pseudomonas aeruginosa-induced mitochondrial dysfunction inhibits proinflammatory cytokine secretion and enhances cytotoxicity in mouse macrophages in a reactive oxygen species (ROS)-dependent way.
Haitao YANG ; Yan WANG ; Hui FAN ; Feixue LIU ; Huimiao FENG ; Xueqing LI ; Mingyi CHU ; Enzhuang PAN ; Daoyang TENG ; Huizhen CHEN ; Jingquan DONG
Journal of Zhejiang University. Science. B 2023;24(11):1027-1036
随着铜绿假单胞菌(铜绿)的耐药性逐年增强,铜绿感染已经成为公共医疗卫生的重点关注问题。线粒体自噬及其介导的线粒体功能障碍在多种细菌感染中已被报道,但线粒体功能障碍在宿主调控铜绿感染中的作用尚不明确。因此,本研究建立铜绿刺激小鼠巨噬细胞感染模型和小鼠急性铜绿感染模型,探讨铜绿是否通过诱导线粒体自噬改变线粒体功能,进而影响宿主免疫炎症反应和细胞毒性,并通过监测生存率和肺组织病理学变化进一步确定线粒体自噬在小鼠铜绿体内感染模型中的作用。结果表明,铜绿引起小鼠腹腔巨噬细胞线粒体功能障碍,并通过线粒体自噬途径清除铜绿刺激引起的活性氧(ROS)累积,从而抑制铜绿引起的促炎性细胞因子分泌并增强细胞毒性。体内实验进一步确认线粒体自噬在铜绿体内感染中的作用。
Mice
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Animals
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Reactive Oxygen Species/metabolism*
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Pseudomonas aeruginosa
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Macrophages/metabolism*
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Mitochondria
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Cytokines/metabolism*
9.Research progress of the regulatory role of autophagy in metabolic liver diseases.
Yu Xian LI ; Feng REN ; Yu CHEN
Chinese Journal of Hepatology 2023;31(1):105-108
Autophagy is one of several hepatic metabolic processes in which starved cells are supplied with glucose, free fatty acids, and amino acids to produce energy and synthesize new macromolecules. Moreover, it regulates the quantity and quality of mitochondria and other organelles. As the liver is a vital metabolic organ, specific forms of autophagy are necessary for maintaining liver homeostasis. Protein, fat, and sugar are the three primary nutrients that can be altered by different metabolic liver diseases. Drugs that have an effect on autophagy can either promote or inhibit autophagy, and as a result, it can either increase or inhibit the three major nutritional metabolisms that are affected by liver disease. Thus, this opens up a novel therapeutic option for liver disease.
Humans
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Liver/metabolism*
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Liver Diseases
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Autophagy
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Metabolic Diseases
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Mitochondria
10.Role of Mitophagy in Myocardial Ischemia/Reperfusion Injury and Chinese Medicine Treatment.
Jun-Yan XIA ; Cong CHEN ; Qian LIN ; Jie CUI ; Jie WAN ; Yan LI ; Dong LI
Chinese journal of integrative medicine 2023;29(1):81-88
Mitophagy is one of the important targets for the prevention and treatment of myocardial ischemia/reperfusion injury (MIRI). Moderate mitophagy can remove damaged mitochondria, inhibit excessive reactive oxygen species accumulation, and protect mitochondria from damage. However, excessive enhancement of mitophagy greatly reduces adenosine triphosphate production and energy supply for cell survival, and aggravates cell death. How dysfunctional mitochondria are selectively recognized and engulfed is related to the interaction of adaptors on the mitochondrial membrane, which mainly include phosphatase and tensin homolog deleted on chromosome ten (PTEN)-induced kinase 1/Parkin, hypoxia-inducible factor-1 α/Bcl-2 and adenovirus e1b19k Da interacting protein 3, FUN-14 domain containing protein 1 receptor-mediated mitophagy pathway and so on. In this review, the authors briefly summarize the main pathways currently studied on mitophagy and the relationship between mitophagy and MIRI, and incorporate and analyze research data on prevention and treatment of MIRI with Chinese medicine, thereby provide relevant theoretical basis and treatment ideas for clinical prevention of MIRI.
Humans
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Mitochondria/metabolism*
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Mitophagy/genetics*
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Myocardial Reperfusion Injury
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Protein Kinases/metabolism*

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