Hypoxia-Induced Generation of Methane in Mitochondria and Eukaryotic Cells - An Alternative Approach to Methanogenesis

化学 磷脂酰胆碱 氧气 生物化学 羟基自由基 产甲烷 胆碱 代谢物 活性氧 甲烷 激进的 有机化学 磷脂
作者
Miklós Ghyczy,Csilla Torday,József Kaszaki,Andrea Szabó,Miklós Czóbel,Mihály Boros
出处
期刊:Cellular Physiology and Biochemistry [Karger Publishers]
卷期号:21 (1-3): 251-258 被引量:92
标识
DOI:10.1159/000113766
摘要

BACKGROUND/AIMS: Electrophilic methyl groups bound to positively charged nitrogen moieties may act as electron acceptors, and this mechanism could lead to the generation of methane from choline. The aims were to characterize the methanogenic potential of phosphatidylcholine metabolites, and to define the in vivo relevance of this pathway in hypoxia-induced cellular responses. METHODS: The postulated reaction was investigated (1) in model chemical experiments, (2) in rat mitochondrial subfractions and (3) in bovine endothelial cell cultures under hypoxic conditions and in the presence of hydroxyl radical generation. The rate of methane formation was determined by gas chromatography with flame-ionisation detectors. The lucigenin-enhanced chemiluminescence assay was used to determine the reactive oxygen species-scavenging capacity of the choline metabolites. RESULTS: Significant methane generation was demonstrated in all three series of experiments. Phosphatidylcholine metabolites with alcoholic moiety in the molecule (i.e. choline, N,N-dimethylethanolamine and N-methylethanolamine), inhibited oxygen radical production both in vitro and in vivo, and displayed an effectiveness proportional to the amount of methane generated and the number of methyl groups in the compounds. CONCLUSION: Methane generation occurs in aerobic systems. Phosphatidylcholine metabolites containing both electron donor and acceptor groups may have a function to counteract intracellular oxygen radical production.
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