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
;
NAD/metabolism*
;
Neurodegenerative Diseases/metabolism*
;
Mitochondria
;
Oxidation-Reduction
;
Mitochondrial Diseases
2.Enhanced nitrogen removal by bioelectrochemical coupling anammox and characteristics of microbial communities.
Lai XIE ; Min YANG ; Enzhe YANG ; Zhihua LIU ; Xin GENG ; Hong CHEN
Chinese Journal of Biotechnology 2023;39(7):2719-2729
To investigate the bioelectrochemical enhanced anaerobic ammonia oxidation (anammox) nitrogen removal process, a bioelectrochemical system with coupled anammox cathode was constructed using a dual-chamber microbial electrolysis cell (MEC). Specifically, a dark incubation batch experiment was conducted at 30 ℃ with different influent total nitrogen concentrations under an applied voltage of 0.2 V, and the enhanced denitrification mechanism was investigated by combining various characterization methods such as cyclic voltammetry, electrochemical impedance spectroscopy and high-throughput sequencing methods. The results showed that the total nitrogen removal rates of 96.9%±0.3%, 97.3%±0.4% and 99.0%±0.3% were obtained when the initial total nitrogen concentration was 200, 300 and 400 mg/L, respectively. In addition, the cathode electrode biofilm showed good electrochemical activity. High-throughput sequencing results showed that the applied voltage enriched other denitrifying functional groups, including Denitratisoma, Limnobacter, and ammonia oxidizing bacteria SM1A02 and Anaerolineaceae, Nitrosomonas europaea and Nitrospira, besides the anammox bacteria. These electrochemically active microorganisms comprised of ammonium oxidizing exoelectrogens (AOE) and denitrifying electrotrophs (DNE). Together with anammox bacteria Candidatus Brocadia, they constituted the microbial community structure of denitrification system. Enhanced direct interspecies electron transfer between AOE and DNE was the fundamental reason for the further improvement of the total nitrogen removal rate of the system.
Denitrification
;
Wastewater
;
Anaerobic Ammonia Oxidation
;
Nitrogen
;
Oxidation-Reduction
;
Bioreactors/microbiology*
;
Ammonium Compounds
;
Bacteria/genetics*
;
Microbiota
;
Sewage
3.A key issue of national health in China: excess energy intake and oxidative inflammation.
China Journal of Chinese Materia Medica 2022;47(4):853-861
This study expounded the great impacts of excess energy intake and oxidative inflammation on national health in China and put forward the pathological mirror-image hypothesis of the relationship between obesity and oxidative inflammation. On this basis, an ideological framework was constructed to deal with oxidative stress and oxidative inflammation centered on the development of natural antioxidant products. The study contained the following four parts: the ways to improve national health in China; the promotion of cognition to oxidative inflammation to improve national health in China; prospects for the prevention and treatment of oxidative inflammation in China; the reason why Northwest Yunnan is a good place to develop high-quality natural antioxidants.
China
;
Energy Intake
;
Humans
;
Inflammation
;
Oxidation-Reduction
;
Oxidative Stress
4.Chemical synthesis of a synthetically useful L-galactosaminuronic acid building block.
Chun-Jun QIN ; Hong-Li HOU ; Mei-Ru DING ; Yi-Kuan QI ; Guang-Zong TIAN ; Xiao-Peng ZOU ; Jun-Jie FU ; Jing HU ; Jian YIN
Chinese Journal of Natural Medicines (English Ed.) 2022;20(5):387-392
Most bacterial cell surface glycans are structurally unique, and have been considered as ideal target molecules for the developments of detection and diagnosis techniques, as well as vaccines. Chemical synthesis has been a promising approach to prepare well-defined oligosaccharides, facilitating the structure-activity relationship exploration and biomedical applications of bacterial glycans. L-Galactosaminuronic acid is a rare sugar that has been only found in cell surface glycans of gram-negative bacteria. Here, an orthogonally protected L-galactosaminuronic acid building block was designed and chemically synthesized. A synthetic strategy based on glycal addition and TEMPO/BAIB-mediated C6 oxidation served well for the transformation of commercial L-galactose to the corresponding L-galactosaminuronic acid. Notably, the C6 oxidation of the allyl glycoside was more efficient than that of the selenoglycoside. In addition, a balance between the formation of allyl glycoside and the recovery of selenoglycoside was essential to improve efficiency of the NIS/TfOH-catalyzed allylation. This synthetically useful L-galactosaminuronic acid building block will provide a basis for the syntheses of complex bacterial glycans.
Carbohydrates
;
Glycosides
;
Oligosaccharides
;
Oxidation-Reduction
;
Polysaccharides/chemistry*
5.Direct Synthesis of Bienzyme-like Carbide-derived Carbons via Mild Electrochemical Oxidation of Ti 3AlC 2 MAX.
Yan Feng FANG ; Xiao Teng DING ; Geng Fang XU ; Shi Da GONG ; Yu Sheng NIU ; Zi Yu YAO ; Zhao Yong JIN ; Yao WANG ; Yuan Hong XU
Biomedical and Environmental Sciences 2022;35(3):215-224
Objective:
To develop effective alternatives to natural enzymes, it is crucial to develop nanozymes that are economical, resource efficient, and environmentally conscious. Carbon nanomaterials that have enzyme-like activities have been extensively developed as substitutes for traditional enzymes.
Methods:
Carbide-derived carbons (CDCs) were directly synthesized via a one-step electrochemical method from a MAX precursor using an ammonium bifluoride electrolyte at ambient conditions. The CDCs were characterized by systematic techniques.
Results:
CDCs showed bienzyme-like activities similar to that of peroxidase and superoxide dismutase. We systematically studied the dependence of CDC enzyme-like activity on different electrolytes and electrolysis times to confirm activity dependence on CDC content. Additionally, the synthesis mechanism and CDC applicability were elaborated and demonstrated, respectively.
Conclusion
The demonstrated synthesis strategy eliminates tedious intercalation and delamination centrifugation steps and avoids using high concentrations of HF, high temperatures, and halogen gases. This study paves the way for designing two-dimensional material-based nanocatalysts for nanoenzyme and other applications.
Ammonium Compounds/chemical synthesis*
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Carbon/chemistry*
;
Electrochemical Techniques
;
Enzymes
;
Fluorides/chemical synthesis*
;
Humans
;
Nanostructures
;
Oxidation-Reduction
6.The mechanism of microbial removal of Mn(Ⅱ) and its influencing factors: a review.
Wenzhou TIE ; Xiaofang NONG ; Yi ZHAO ; Kang LIANG ; Xuejiao HUANG
Chinese Journal of Biotechnology 2022;38(1):14-25
Manganese is an element essential for living organisms. Development of industrial technologies and exploitation of mineral resources have led to the release of large amount of Mn(Ⅱ) into the environment, posing a serious threat to human health. Bioremediation can remove the Mn(Ⅱ) from the environment rapidly and effectively without generating secondary pollution, thus received increasing attention. This review summarized the diversity and distribution of Mn(Ⅱ) removal microorganisms and the associated mechanisms, followed by discussing the effect of environmental factors on microbial Mn(Ⅱ) removal. Finally, the challenges and prospects for bioremediation of Mn(Ⅱ) polluted wastewater were proposed.
Biodegradation, Environmental
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Humans
;
Manganese
;
Oxidation-Reduction
;
Waste Water
7.Engineering application of aerobic methane oxidizing bacteria (methanotrophs): a review.
Cheng YAN ; Juan MEI ; Youcai ZHAO
Chinese Journal of Biotechnology 2022;38(4):1322-1338
Aerobic methane oxidizing bacteria (methanotrophs) can use methane as carbon source and energy source, eliminating 10%-20% of global methane. Methanotrophs can also effectively synthesize valuable methane-derived products. This article introduced the methane oxidizing mechanism of methanotrophs, and summarized the practical application and research hotspots of methanotrophs in the field of methane emission reduction in the landfill, ventilation air methane mitigation in coal mines, valuable chemicals biosynthesis, as well as oil and gas reservoir exploration. Main factors influencing the pollutant removal and the biosynthesis efficiency in various applications were also discussed. Based on the study of large-scale cultivation of methanotrophs, some measures to benefit the application and promotion of aerobic methane oxidizing biotechnology were proposed. This includes investigating the effect of intermediate metabolites on methanotrophs activity and population structure, and exploiting economical and efficient alternative culture media and culture techniques.
Biotechnology
;
Carbon
;
Culture Media/chemistry*
;
Methane/metabolism*
;
Methylococcaceae/metabolism*
;
Oxidation-Reduction
8.Research progress of combined anaerobic ammonium oxidation (ANAMMOX) process for nitrogen removal.
Jiaxiu WAN ; Jiaqi WANG ; Ping ZHENG ; Baolan HU ; Zhenhua SHI
Chinese Journal of Biotechnology 2022;38(4):1351-1359
Anaerobic ammonia oxidation (ANAMMOX) process is an efficient and low-cost biological nitrogen removal process. However, it still faces some challenges in mainstream applications due to the limitation of substrate types and nitrate accumulation. In recent years, the combined process of anammox has been widely studied to solve the above problems. In this paper, the combined processes of anammox developed in recent years are reviewed, and discussed from the process principle, advantages and disadvantages, influencing factors, process extensibility and the key bottlenecks existing in the promotion and application, as well as the relevant work of the subject group. Finally, we take an outlook on the development of the combined anaerobic ammonia oxidation process in municipal domestic wastewater treatment.
Ammonium Compounds
;
Anaerobiosis
;
Bioreactors
;
Denitrification
;
Nitrogen
;
Oxidation-Reduction
;
Sewage
;
Waste Water
9.Mstn knockdown promotes intramuscular fatty acid metabolism by β oxidation via the up-regulation of Cpt1b.
Yanan GUO ; Ruyan YANG ; Zhiyu ZHANG ; Dulan BAO ; Ying SUN ; Lei YANG ; Guangpeng LI ; Li GAO
Chinese Journal of Biotechnology 2022;38(8):3076-3089
Myostatin (Mstn) is known as growth/differentiation factor-8 (GDF-8). Knockout or knockdown of Mstn gene promotes muscle development and reduces fat content. Here we prepared Mstn knockdown mice by RNA interference, then the morphology of the skeletal muscle, the content of triglyceride (TG), the content and composition of fatty acids in the skeletal muscle were detected. The expression of Mstn reduced in muscle of Mstn knockdown mice compared to the controls. The cross sectional areas of the skeletal muscle myofibers were significantly larger while the content of TG was less than that of the controls, and the ratios of n-3/n-6 and unsat/sat in the knockdown mice increased significantly. Subsequently, we detected the expression of genes associated with fatty acid metabolism. The expression of the genes associated with lipolysis and fatty acid transportation were up-regulated, while the genes associated with fatty acid synthesis were down-regulated. Of these genes, the up-regulation of a gene associated with β oxidation, Cpt1b, was up-regulated remarkably. We further detected the enzyme activity of CPT1 in skeletal muscle and obtained the same results with gene expression. Moreover, chromatin immunoprecipitation assay was performed and we found that SMAD3, a transcription factor downstream of Mstn, directly binds to the promoter of Cpt1b gene. These results showed that knockdown of Mstn up-regulated the expression of Cpt1b through the binding of SMAD3 to the promoter of Cpt1b, then promoted the β oxidation metabolism of intramuscular fatty acids.
Animals
;
Carnitine O-Palmitoyltransferase/metabolism*
;
Fatty Acids
;
Lipid Metabolism
;
Mice
;
Mice, Knockout
;
Muscle, Skeletal/metabolism*
;
Myostatin/metabolism*
;
Oxidation-Reduction
;
Up-Regulation
10.MicroRNA-132 promotes atherosclerosis by inducing mitochondrial oxidative stressmediated ferroptosis.
Ze Xin LIU ; Sai CAO ; Qing CHEN ; Fang Yong FU ; Mei Rong CHENG ; Xian Ying HUANG
Journal of Southern Medical University 2022;42(1):143-149
OBJECTIVE:
To explore the expression of microRNA-132 (miR-132) and its potential role in the development of atherosclerosis (AS).
METHODS:
Thirty AS samples and 30 samples of normal peripheral vessels were collected from atherosclerotic patients undergoing peripheral angiostomy in our hospital for detecting the expression level of miR-132 using RT-qPCR. The expression of miR-132 in human umbilical vein endothelial cells (HUVEC) was up-regulated by liposome transfection, and intracellular reactive oxygen species (ROS), localization relationship between ROS and mitochondria, functional changes of mitochondrial reactive oxygen superoxide species (mtROS), mitochondrial membrane potential (MMP) and opening of mitochondrial permeability transition pore (mPTP) were analyzed by flow cytometry and laser confocal microscopy. The activity of mitochondrial redox respiratory chain complex (type I, II, III, IV and V) in HUVECs was detected using ELISA, and the expression levels of key iron death proteins were detected with Western blotting.
RESULTS:
RT-qPCR results showed that miR-132 was significantly up-regulated in atherosclerotic plaques compared with normal vascular samples (P < 0.001). Compared with control HUVECs, HUVECs overexpressing miR-132 showed a significantly increased level of intracellular ROS (P < 0.001), and most of ROS was colocalized with mitochondria. HUVECs overexpressing miR-132 also showed significantly decreased MMP (P < 0.001) and obviously increased mtROS (P < 0.001) and opening of mPTP (P < 0.001), which led to mitochondrial REDOX respiratory chain stress disorder. The key iron death protein GPX4 was significantly down-regulated and the oxidized protein NOX4 was significantly increased in miR-132-overexpressing HUVECs (P < 0.001).
CONCLUSION
MiR-132 promotes atherosclerosis by inducing mitochondrial oxidative stress-mediated ferroptosis, which may serve as a promising therapeutic target for AS.
Apoptosis
;
Atherosclerosis/genetics*
;
Ferroptosis
;
Human Umbilical Vein Endothelial Cells/metabolism*
;
Humans
;
Membrane Potential, Mitochondrial
;
MicroRNAs/metabolism*
;
Mitochondria/metabolism*
;
Oxidation-Reduction
;
Oxidative Stress
;
Reactive Oxygen Species/metabolism*

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