S‐adenosylmethionine: A metabolite critical to the regulation of autophagy
S-аденозилметионин: метаболит, критически важный для регуляции аутофагии
2020-10-08
SCID: 54.1/h9c7tmp5
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S-adenosylmethionine (SAM)autophagy regulationcellular metabolic statusepigenetic methylationmethionine starvation
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Abstract (AI)
Autophagy is a mechanism that enables cells to maintain cellular homeostasis by removing damaged materials and mobilizing energy reserves in conditions of starvation. Although nutrient availability strongly impacts the process of autophagy, the specific metabolites that regulate autophagic responses have not yet been determined. Recent results indicate that S-adenosylmethionine (SAM) represents a critical inhibitor of methionine starvation-induced autophagy. SAM is primarily involved in four key metabolic pathways: transmethylation, transsulphuration, polyamine synthesis and 5'-deoxyadenosyl 5'-radical-mediated biochemical transformations. SAM is the sole methyl group donor involved in the methylation of DNA, RNA and histones, modulating the autophagic process by mediating epigenetic effects. Moreover, the metabolites of SAM, such as homocysteine, glutathione, decarboxylated SAM and spermidine, also exert important influences on the regulation of autophagy. From our perspective, nuclear-cytosolic SAM is a conserved metabolic inhibitor that connects cellular metabolic status and the regulation of autophagy. In the future, SAM might be a new target of autophagy regulators and be widely used in the treatment of various diseases.
Key Findings
1
Nuclear-cytosolic SAM links cellular metabolic status with autophagy regulation, functioning as a conserved metabolic inhibitor.
2
S-adenosylmethionine (SAM) is identified as a critical inhibitor of autophagy induced by methionine starvation.
3
SAM is proposed as a potential therapeutic target for developing autophagy regulators and treating diverse diseases.
4
SAM may regulate autophagy through epigenetic effects because it donates methyl groups for DNA, RNA, and histone methylation.
5
SAM-associated metabolites—including homocysteine, glutathione, decarboxylated SAM, and spermidine—also influence autophagy regulation.
Research Object
S-adenosylmethionine (SAM) in cellular autophagy
Research Subject
SAM-mediated regulation and inhibition of autophagic responses, including the effects of its metabolic derivatives and methylation pathways
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2020-10-08
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