1.Synthesis and application of the methyl analogues of S-adenosyl-L-methionine.
Chinese Journal of Biotechnology 2023;39(11):4428-4444
Methylation plays a vital role in biological systems. SAM (S-adenosyl-L-methionine), an abundant cofactor in life, acts as a methyl donor in most biological methylation reactions. SAM-dependent methyltransferases (MTase) transfer a methyl group from SAM to substrates, thereby altering their physicochemical properties or biological activities. In recent years, many SAM analogues with alternative methyl substituents have been synthesized and applied to methyltransferases that specifically transfer different groups to the substrates. These include functional groups for labeling experiments and novel alkyl modifications. This review summarizes the recent progress in the synthesis and application of SAM methyl analogues and prospects for future research directions in this field.
S-Adenosylmethionine/metabolism*
;
Methionine
;
Methyltransferases/metabolism*
;
Methylation
;
Racemethionine
2.Microbial production of S-adenosyl-l-methionine: a review.
Meijing LI ; Zheyan MI ; Jinhao WANG ; Zhongce HU ; Haibin QIN ; Yuanshan WANG ; Yuguo ZHENG
Chinese Journal of Biotechnology 2023;39(6):2248-2264
S-adenosyl-l-methionine (SAM) is ubiquitous in living organisms and plays important roles in transmethylation, transsulfuration and transamination in organisms. Due to its important physiological functions, production of SAM has attracted increasing attentions. Currently, researches on SAM production mainly focus on microbial fermentation, which is more cost-effective than that of the chemical synthesis and the enzyme catalysis, thus easier to achieve commercial production. With the rapid growth in SAM demand, interests in improving SAM production by developing SAM hyper-producing microorganisms aroused. The main strategies for improving SAM productivity of microorganisms include conventional breeding and metabolic engineering. This review summarizes the recent research progress in improving microbial SAM productivity to facilitate further improving SAM productivity. The bottlenecks in SAM biosynthesis and the solutions were also addressed.
S-Adenosylmethionine/metabolism*
;
Plant Breeding
;
Fermentation
;
Metabolic Engineering
3.Sensors for the mTORC1 pathway regulated by amino acids.
Journal of Zhejiang University. Science. B 2019;20(9):699-712
The mechanistic target of rapamycin complex 1 (mTORC1) controls cell growth and metabolism in response to various environmental inputs, especially amino acids. In fact, the activity of mTORC1 is highly sensitive to changes in amino acid levels. Over past decades, a variety of proteins have been identified as participating in the mTORC1 pathway regulated by amino acids. Classically, the Rag guanosine triphosphatases (GTPases), which reside on the lysosome, transmit amino acid availability to the mTORC1 pathway and recruit mTORC1 to the lysosome upon amino acid sufficiency. Recently, several sensors of leucine, arginine, and S-adenosylmethionine for the amino acid-stimulated mTORC1 pathway have been coming to light. Characterization of these sensors is requisite for understanding how cells adjust amino acid sensing pathways to their different needs. In this review, we summarize recent advances in amino acid sensing mechanisms that regulate mTORC1 activity and highlight these identified sensors that accurately transmit specific amino acid signals to the mTORC1 pathway.
Amino Acids/chemistry*
;
Animals
;
Arginine/chemistry*
;
Cell Membrane/metabolism*
;
GTP Phosphohydrolases/metabolism*
;
Gene Expression Regulation
;
Golgi Apparatus/metabolism*
;
Humans
;
Leucine/chemistry*
;
Lysosomes/metabolism*
;
Mechanistic Target of Rapamycin Complex 1/metabolism*
;
Methionine/chemistry*
;
S-Adenosylmethionine/chemistry*
;
Signal Transduction
;
TOR Serine-Threonine Kinases/metabolism*
4.Age-Related Changes in Sulfur Amino Acid Metabolism in Male C57BL/6 Mice.
Jang Su JEON ; Jeong Ja OH ; Hui Chan KWAK ; Hwi yeol YUN ; Hyoung Chin KIM ; Young Mi KIM ; Soo Jin OH ; Sang Kyum KIM
Biomolecules & Therapeutics 2018;26(2):167-174
Alterations in sulfur amino acid metabolism are associated with an increased risk of a number of common late-life diseases, which raises the possibility that metabolism of sulfur amino acids may change with age. The present study was conducted to understand the age-related changes in hepatic metabolism of sulfur amino acids in 2-, 6-, 18- and 30-month-old male C57BL/6 mice. For this purpose, metabolite profiling of sulfur amino acids from methionine to taurine or glutathione (GSH) was performed. The levels of sulfur amino acids and their metabolites were not significantly different among 2-, 6- and 18-month-old mice, except for plasma GSH and hepatic homocysteine. Plasma total GSH and hepatic total homocysteine levels were significantly higher in 2-month-old mice than those in the other age groups. In contrast, 30-month-old mice exhibited increased hepatic methionine and cysteine, compared with all other groups, but decreased hepatic S-adenosylmethionine (SAM), S-adenosylhomocysteine and homocysteine, relative to 2-month-old mice. No differences in hepatic reduced GSH, GSH disulfide, or taurine were observed. The hepatic changes in homocysteine and cysteine may be attributed to upregulation of cystathionine β-synthase and down-regulation of γ-glutamylcysteine ligase in the aged mice. The elevation of hepatic cysteine levels may be involved in the maintenance of hepatic GSH levels. The opposite changes of methionine and SAM suggest that the regulatory role of SAM in hepatic sulfur amino acid metabolism may be impaired in 30-month-old mice.
Aging
;
Amino Acids, Sulfur
;
Animals
;
Child, Preschool
;
Cystathionine
;
Cysteine
;
Down-Regulation
;
Glutathione
;
Homocysteine
;
Humans
;
Infant
;
Male*
;
Metabolism*
;
Metabolomics
;
Methionine
;
Mice*
;
Plasma
;
S-Adenosylhomocysteine
;
S-Adenosylmethionine
;
Sulfur*
;
Taurine
;
Up-Regulation
5.Molecular and Functional Characterization of Choline Transporter-Like Proteins in Esophageal Cancer Cells and Potential Therapeutic Targets.
Fumiaki NAGASHIMA ; Ryohta NISHIYAMA ; Beniko IWAO ; Yuiko KAWAI ; Chikanao ISHII ; Tsuyoshi YAMANAKA ; Hiroyuki UCHINO ; Masato INAZU
Biomolecules & Therapeutics 2018;26(4):399-408
In this study, we examined the molecular and functional characterization of choline uptake in the human esophageal cancer cells. In addition, we examined the influence of various drugs on the transport of [3H]choline, and explored the possible correlation between the inhibition of choline uptake and apoptotic cell death. We found that both choline transporter-like protein 1 (CTL1) and CTL2 mRNAs and proteins were highly expressed in esophageal cancer cell lines (KYSE series). CTL1 and CTL2 were located in the plasma membrane and mitochondria, respectively. Choline uptake was saturable and mediated by a single transport system, which is both Na+-independent and pH-dependent. Choline uptake and cell viability were inhibited by various cationic drugs. Furthermore, a correlation analysis of the potencies of 47 drugs for the inhibition of choline uptake and cell viability showed a strong correlation. Choline uptake inhibitors and choline deficiency each inhibited cell viability and increased caspase-3/7 activity. We conclude that extracellular choline is mainly transported via a CTL1. The functional inhibition of CTL1 by cationic drugs could promote apoptotic cell death. Furthermore, CTL2 may be involved in choline uptake in mitochondria, which is the rate-limiting step in S-adenosylmethionine (SAM) synthesis and DNA methylation. Identification of this CTL1- and CTL2-mediated choline transport system provides a potential new target for esophageal cancer therapy.
Cell Death
;
Cell Line
;
Cell Membrane
;
Cell Survival
;
Choline Deficiency
;
Choline*
;
DNA Methylation
;
Esophageal Neoplasms*
;
Humans
;
Mitochondria
;
RNA, Messenger
;
S-Adenosylmethionine
6.Effects of S-Adenosylmethionine and Its Combinations With Taurine and/or Betaine on Glutathione Homeostasis in Ethanol-induced Acute Hepatotoxicity.
Journal of Cancer Prevention 2016;21(3):164-172
BACKGROUND: Exposure to ethanol abuse and severe oxidative stress are risk factors for hepatocarcinoma. The aim of this study was to evaluate the effects of S-adenosylmethionine (SAMe) and its combinations with taurine and/or betaine on the level of glutathione (GSH), a powerful antioxidant in the liver, in acute hepatotoxicity induced by ethanol. METHODS: To examine the effects of SAMe and its combinations with taurine and/or betaine on ethanol-induced hepatotoxicity, AML12 cells and C57BL/6 mice were pretreated with SAMe, taurine, and/or betaine, followed by ethanol challenge. Cell viability was detected with an MTT assay. GSH concentration and mRNA levels of GSH synthetic enzymes were measured using GSH reductase and quantitative real-time reverse transcriptase-PCR. Alanine aminotransferase (ALT) and aspartate aminotransferase (AST) activities were measured with commercially available kits. RESULTS: Pretreatment of SAMe, with or without taurine and/or betaine, attenuated decreases in GSH levels and mRNA expression of the catalytic subunit of glutamate-cysteine ligase (GCL), the rate-limiting enzyme for GSH synthesis, in ethanol-treated cells and mice. mRNA levels of the modifier subunit of GCL and glutathione synthetase were increased in mice treated with SAMe combinations. SAMe, taurine, and/or betaine pretreatment restored serum ALT and AST levels to control levels in the ethanol-treated group. CONCLUSIONS: Combinations of SAMe with taurine and/or betaine have a hepatoprotective effect against ethanol-induced liver injury by maintaining GSH homeostasis.
Alanine Transaminase
;
Animals
;
Aspartate Aminotransferases
;
Betaine*
;
Catalytic Domain
;
Cell Survival
;
Ethanol
;
Glutamate-Cysteine Ligase
;
Glutathione Synthase
;
Glutathione*
;
Homeostasis*
;
Liver
;
Mice
;
Oxidative Stress
;
Oxidoreductases
;
Risk Factors
;
RNA, Messenger
;
S-Adenosylmethionine*
;
Taurine*
7.Protective Effects of S-Adenosylmethionine and Its Combinations With Taurine and/or Betaine Against Lipopolysaccharide or Polyinosinic-polycytidylic Acid-induced Acute Hepatotoxicity.
Journal of Cancer Prevention 2016;21(3):152-163
BACKGROUND: Several mechanisms for the pathogenesis of many liver diseases are related with oxidative stress, endotoxins, and infections by many microorganisms. These can lead to chronic hepatitis, cirrhosis, and even liver cancer. The aim of this study was to evaluate the effects of S-adenosylmethionine (SAMe) and its combinations with taurine and/or betaine against hepatotoxicites induced by lipopolysaccharide (LPS) or polyinosinic-polycytidylic acid (polyI:C). METHODS: RAW 264.7 macrophage cells and seven-week-old male C57BL/6 mice were pretreated with SAMe (SAM or AdoMet), taurine, and/or betaine. In order to mimic hepatic injury like endotoxemia or viral infection, cells and mice were treated with LPS or polyI:C. Concentrations of glutathione (GSH), mRNA expressions of GSH synthesizing enzymes, and inflammatory markers were measured by biochemical assays and quantitative real-time PCR. RESULTS: In RAW 264.7 cells and mice, pretreatment of SAMe alone or SAMe with taurine and/or betaine attenuated the decrease in GSH levels and mRNA expressions of GSH synthesizing enzymes. In addition, pretreatment of SAMe with taurine and/or betaine prevented the excessive increase in inflammatory mediators produced by LPS or polyI:C treatment. CONCLUSIONS: Treatment with SAMe in combination with taurine and betaine, would have anti-oxidant functions in addition to anti-inflammatory action against bacterial and/or viral inflammation.
Animals
;
Betaine*
;
Endotoxemia
;
Endotoxins
;
Fibrosis
;
Glutathione
;
Hepatitis, Chronic
;
Humans
;
Inflammation
;
Lipopolysaccharides
;
Liver Diseases
;
Liver Neoplasms
;
Macrophages
;
Male
;
Mice
;
Oxidative Stress
;
Poly I-C
;
RAW 264.7 Cells
;
Real-Time Polymerase Chain Reaction
;
RNA, Messenger
;
S-Adenosylmethionine*
;
Taurine*
8.S-adenosylmethionine reduces airway inflammation and fibrosis in a murine model of chronic severe asthma via suppression of oxidative stress.
Sun Young YOON ; Gyong Hwa HONG ; Hyouk Soo KWON ; Sunjoo PARK ; So Young PARK ; Bomi SHIN ; Tae Bum KIM ; Hee Bom MOON ; You Sook CHO
Experimental & Molecular Medicine 2016;48(6):e236-
Increased oxidative stress has an important role in asthmatic airway inflammation and remodeling. A potent methyl donor, S-adenosylmethionine (SAMe), is known to protect against tissue injury and fibrosis through modulation of oxidative stress. The aim of this study was to evaluate the effect of SAMe on airway inflammation and remodeling in a murine model of chronic asthma. A mouse model was generated by repeated intranasal challenge with ovalbumin and Aspergillus fungal protease twice a week for 8 weeks. SAMe was orally administered every 24 h for 8 weeks. We performed bronchoalveolar lavage (BAL) fluid analysis and histopathological examination. The levels of various cytokines and 4-hydroxy-2-nonenal (HNE) were measured in the lung tissue. Cultured macrophages and fibroblasts were employed to evaluate the underlying anti-inflammatory and antifibrotic mechanisms of SAMe. The magnitude of airway inflammation and fibrosis, as well as the total BAL cell counts, were significantly suppressed in the SAMe-treated groups. A reduction in T helper type 2 pro-inflammatory cytokines and HNE levels was observed in mouse lung tissue after SAMe administration. Macrophages cultured with SAMe also showed reduced cellular oxidative stress and pro-inflammatory cytokine production. Moreover, SAMe treatment attenuated transforming growth factor-β (TGF-β)-induced fibronectin expression in cultured fibroblasts. SAMe had a suppressive effect on airway inflammation and fibrosis in a mouse model of chronic asthma, at least partially through the attenuation of oxidative stress and TGF-β-induced fibronectin expression. The results of this study suggest a potential role for SAMe as a novel therapeutic agent in chronic asthma.
Animals
;
Aspergillus
;
Asthma*
;
Bronchoalveolar Lavage
;
Cell Count
;
Cytokines
;
Fibroblasts
;
Fibronectins
;
Fibrosis*
;
Humans
;
Inflammation*
;
Lung
;
Macrophages
;
Mice
;
Ovalbumin
;
Oxidative Stress*
;
S-Adenosylmethionine*
;
Tissue Donors
9.Effects of excessive dietary methionine on oxidative stress and dyslipidemia in chronic ethanol-treated rats.
Seon Young KIM ; Hyewon KIM ; Hyesun MIN
Nutrition Research and Practice 2015;9(2):144-149
BACKGROUND/OBJECTIVE: The aim of this study was to examine the effect of high dietary methionine (Met) consumption on plasma and hepatic oxidative stress and dyslipidemia in chronic ethanol fed rats. MATERIALS/METHODS: Male Wistar rats were fed control or ethanol-containing liquid diets supplemented without (E group) or with DL-Met at 0.6% (EM1 group) or 0.8% (EM2 group) for five weeks. Plasma aminothiols, lipids, malondialdehyde (MDA), alanine aminotransferase (ALT), and aspartate aminotransferase were measured. Hepatic folate, S-adenosylmethionine (SAM), and S-adenosylhomocysteine (SAH) were measured. RESULTS: DL-Met supplementation was found to increase plasma levels of homocysteine (Hcy), triglyceride (TG), total cholesterol (TC), and MDA compared to rats fed ethanol alone and decrease plasma ALT. However, DL-Met supplementation did not significantly change plasma levels of HDL-cholesterol, cysteine, cysteinylglycine, and glutathione. In addition, DL-Met supplementation increased hepatic levels of folate, SAM, SAH, and SAM:SAH ratio. Our data showed that DL-Met supplementation can increase plasma oxidative stress and atherogenic effects by elevating plasma Hcy, TG, and TC in ethanol-fed rats. CONCLUSION: The present results demonstrate that Met supplementation increases plasma oxidative stress and atherogenic effects by inducing dyslipidemia and hyperhomocysteinemia in ethanol-fed rats.
Alanine Transaminase
;
Animals
;
Aspartate Aminotransferases
;
Cholesterol
;
Cysteine
;
Diet
;
Dyslipidemias*
;
Ethanol
;
Folic Acid
;
Glutathione
;
Homocysteine
;
Humans
;
Hyperhomocysteinemia
;
Male
;
Malondialdehyde
;
Methionine*
;
Oxidative Stress*
;
Plasma
;
Rats*
;
Rats, Wistar
;
S-Adenosylhomocysteine
;
S-Adenosylmethionine
;
Triglycerides
10.Effects of excessive dietary methionine on oxidative stress and dyslipidemia in chronic ethanol-treated rats.
Seon Young KIM ; Hyewon KIM ; Hyesun MIN
Nutrition Research and Practice 2015;9(2):144-149
BACKGROUND/OBJECTIVE: The aim of this study was to examine the effect of high dietary methionine (Met) consumption on plasma and hepatic oxidative stress and dyslipidemia in chronic ethanol fed rats. MATERIALS/METHODS: Male Wistar rats were fed control or ethanol-containing liquid diets supplemented without (E group) or with DL-Met at 0.6% (EM1 group) or 0.8% (EM2 group) for five weeks. Plasma aminothiols, lipids, malondialdehyde (MDA), alanine aminotransferase (ALT), and aspartate aminotransferase were measured. Hepatic folate, S-adenosylmethionine (SAM), and S-adenosylhomocysteine (SAH) were measured. RESULTS: DL-Met supplementation was found to increase plasma levels of homocysteine (Hcy), triglyceride (TG), total cholesterol (TC), and MDA compared to rats fed ethanol alone and decrease plasma ALT. However, DL-Met supplementation did not significantly change plasma levels of HDL-cholesterol, cysteine, cysteinylglycine, and glutathione. In addition, DL-Met supplementation increased hepatic levels of folate, SAM, SAH, and SAM:SAH ratio. Our data showed that DL-Met supplementation can increase plasma oxidative stress and atherogenic effects by elevating plasma Hcy, TG, and TC in ethanol-fed rats. CONCLUSION: The present results demonstrate that Met supplementation increases plasma oxidative stress and atherogenic effects by inducing dyslipidemia and hyperhomocysteinemia in ethanol-fed rats.
Alanine Transaminase
;
Animals
;
Aspartate Aminotransferases
;
Cholesterol
;
Cysteine
;
Diet
;
Dyslipidemias*
;
Ethanol
;
Folic Acid
;
Glutathione
;
Homocysteine
;
Humans
;
Hyperhomocysteinemia
;
Male
;
Malondialdehyde
;
Methionine*
;
Oxidative Stress*
;
Plasma
;
Rats*
;
Rats, Wistar
;
S-Adenosylhomocysteine
;
S-Adenosylmethionine
;
Triglycerides

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