2.1.1.5 Active-site-mutagenesis study of rat liver betaine-homocysteine S-methyltransferase Rattus norvegicus 2.1.1.5 All-trans-retinoic acid intensifies endoplasmic reticulum stress in N-acetylglucosaminyltransferase V repressed human hepatocarcinoma cells by perturbing homocysteine metabolism Homo sapiens 2.1.1.5 Alleviation of hepatic fat accumulation by betaine involves reduction of homocysteine via up-regulation of betaine-homocysteine methyltransferase (BHMT) Rattus norvegicus 2.1.1.5 An integrative genomic analysis identifies Bhmt2 as a diet-dependent genetic factor protecting against acetaminophen-induced liver toxicity Mus musculus 2.1.1.5 Betaine alleviates nonalcoholic fatty liver disease (NAFLD) via a manner involving BHMT/FTO/m6A/ PGC1? signaling Mus musculus 2.1.1.5 Betaine homocysteine methyl transferase 1, a novel auto-antigen associated with anti-Golgi immune reactivity Homo sapiens 2.1.1.5 Betaine homocysteine methyltransferase (BHMT) as a specific and sensitive blood marker for acute liver injury Homo sapiens 2.1.1.5 Betaine homocysteine methyltransferase is active in the mouse blastocyst and promotes inner cell mass development Mus musculus 2.1.1.5 Betaine homocysteine methyltransferase: gene cloning and expression analysis in rat liver cirrhosis Rattus norvegicus 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Sus scrofa 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Ovis aries 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Macaca mulatta 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Mesocricetus auratus 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Cavia porcellus 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Rattus norvegicus 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Homo sapiens 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Mus musculus 2.1.1.5 Betaine homocysteine S-methyltransferase: just a regulator of homocysteine metabolism? Mus musculus C57/BL6J 2.1.1.5 Betaine-homocysteine methyltransferase is a developmentally regulated enzyme crystallin in rhesus monkey lens Macaca mulatta 2.1.1.5 Betaine-homocysteine methyltransferase promotes adipocyte commitment and insulin resistance via p38 MAPK/Smad signaling Homo sapiens 2.1.1.5 Betaine-homocysteine methyltransferase promotes adipocyte commitment and insulin resistance via p38 MAPK/Smad signaling Mus musculus 2.1.1.5 Betaine-homocysteine S-methyltransferase (human) Homo sapiens 2.1.1.5 Betaine-homocysteine S-methyltransferase (human) Equus caballus 2.1.1.5 Betaine-homocysteine S-methyltransferase-2 is an S-methylmethionine-homocysteine methyltransferase Mus musculus 2.1.1.5 Betaine-homocysteine S-methyltransferase-2 is an S-methylmethionine-homocysteine methyltransferase Homo sapiens 2.1.1.5 Betaine:homocysteine methyltransferase - a new assay for the liver enzyme and its absence from human skin fibroblasts and peripheral blood lymphocytes Homo sapiens 2.1.1.5 Betaine:homocysteine methyltransferase - a new assay for the liver enzyme and its absence from human skin fibroblasts and peripheral blood lymphocytes Ovis aries 2.1.1.5 Betaine:homocysteine methyltransferase - a new assay for the liver enzyme and its absence from human skin fibroblasts and peripheral blood lymphocytes Gallus gallus 2.1.1.5 Betaine:homocysteine methyltransferase from rat liver: purification and inhibition by a boronic acid substrate analog Rattus norvegicus 2.1.1.5 Betaine:homocysteine methyltransferase from rat liver: purification and inhibition by a boronic acid substrate analog Rattus norvegicus Sprague-Dawley 2.1.1.5 Both the folate cycle and betaine-homocysteine methyltransferase contribute methyl groups for DNA methylation in mouse blastocysts Mus musculus 2.1.1.5 Combining combinatorial chemistry and affinity chromatography: highly selective inhibitors of human betaine: homocysteine S-methyltransferase Homo sapiens 2.1.1.5 Conformation-dependent inactivation of human betaine-homocysteine S-methyltransferase by hydrogen peroxide in vitro Homo sapiens 2.1.1.5 Corticoadrenal activity in rat regulates betaine-homocysteine S-methyltransferase expression with opposite effects in liver and kidney Rattus norvegicus 2.1.1.5 Creatine synthesis is a major metabolic process in neonatal piglets and has important implications for amino acid metabolism and methyl balance Sus scrofa 2.1.1.5 Crystal structure of rat liver betaine homocysteine S-methyltransferase reveals new oligomerization features and conformational changes upon substrate binding Rattus norvegicus 2.1.1.5 Crystallization and preliminary x-ray crystallographic studies of recombinant human betaine-homocysteine S-methyltransferase Homo sapiens 2.1.1.5 Crystallization and preliminary x-ray study of recombinant betaine-homocysteine S-methyltransferase from rat liver Rattus norvegicus 2.1.1.5 Degradation of glycinebetaine by betaine-homocysteine methyltransferase in Aphanothece halophytica: effect of salt downshock and starvation Aphanothece halophytica 2.1.1.5 Dietary egg protein prevents hyperhomocysteinemia via upregulation of hepatic betaine-homocysteine S-methyltransferase activity in folate-restricted rats Rattus norvegicus 2.1.1.5 Double-headed sulfur-linked amino acids as first inhibitors for betaine-homocysteine S-methyltransferase 2 Homo sapiens 2.1.1.5 Effect of transgenic extrahepatic expression of betaine-homocysteine methyltransferase on alcohol or homocysteine-induced fatty liver Homo sapiens 2.1.1.5 Effects of diabetes and insulin on betaine-homocysteine S-methyltransferase expression in rat liver Rattus norvegicus 2.1.1.5 Effects of hyperhomocysteinemia and betaine-homocysteine S-methyltransferase inhibition on hepatocyte metabolites and the proteome Homo sapiens 2.1.1.5 Evidence for direct methyl transfer in betaine: homocysteine S-methyl-transferase Homo sapiens 2.1.1.5 Expression of recombinant human betaine:homocysteine S-methyltransferase for x-ray crystallographic studies and further characterization of interaction with S-adenosylmethionine Homo sapiens 2.1.1.5 Folate status modulates the induction of hepatic glycine N-methyltransferase and homocysteine metabolism in diabetic rats Rattus norvegicus 2.1.1.5 Hepatic activity and transcription of betaine-homocysteine methyltransferase, methionine synthase, and cystathionine synthase in periparturient dairy cows are altered to different extents by supply of methionine and choline Bos taurus 2.1.1.5 Hepatic betaine-homocysteine methyltransferase activity in the chicken is influenced by dietary intake of sulfur amino acids, choline and betaine Gallus gallus 2.1.1.5 Hepatic betaine-homocysteine methyltransferase and methionine synthase activity and intermediates of the methionine cycle are altered by choline supply during negative energy balance in Holstein cows Bos taurus 2.1.1.5 Hepatic cystathionine beta-synthase activity does not increase in response to methionine supplementation in rats fed a low casein diet: association with plasma homocysteine concentrations Rattus norvegicus 2.1.1.5 Hepatic very-low-density lipoprotein and apolipoprotein B production are increased following in vivo induction of betaine-homocysteine S-methyltransferase Rattus norvegicus 2.1.1.5 High sodium chloride intake decreases betaine-homocysteine S-methyltransferase expression in guinea pig liver and kidney Sus scrofa 2.1.1.5 Homocysteine homeostasis and betaine-homocysteine S-methyltransferase expression in the brain of hibernating bats Myotis pilosus 2.1.1.5 Homocysteine remethylation in young broilers fed varying levels of methionine, choline, and betaine Gallus gallus 2.1.1.5 Human betaine-homocysteine methyltransferase (BHMT) and BHMT2: common gene sequence variation and functional characterization Homo sapiens 2.1.1.5 Human betaine-homocysteine methyltransferase is a zinc metalloenzyme Homo sapiens 2.1.1.5 Human hepatic methionine biosynthesis. Purification and characterization of betaine:homocysteine S-methyltransferase Homo sapiens 2.1.1.5 Identification of hepatic protein-protein interaction targets for betaine homocysteine S-methyltransferase Rattus norvegicus 2.1.1.5 Immunohistochemical detection of betaine-homocysteine S-methyltransferase in human, pig, and rat liver and kidney Homo sapiens 2.1.1.5 Immunohistochemical detection of betaine-homocysteine S-methyltransferase in human, pig, and rat liver and kidney Rattus norvegicus 2.1.1.5 Immunohistochemical detection of betaine-homocysteine S-methyltransferase in human, pig, and rat liver and kidney Sus scrofa 2.1.1.5 Improved Sp1 and betaine homocysteine-S-methyltransferase expression and homocysteine clearance are involved in the effects of zinc on oxidative stress in high-fat-diet-pretreated mice Mus musculus 2.1.1.5 In vitro modification of betaine-homocysteine S-methyltransferase by tissue-type transglutaminase Sus scrofa 2.1.1.5 Inactivation of betaine-homocysteine methyltransferase by adenosylmethionine and adenosylethionine Rattus norvegicus 2.1.1.5 Inhibition of betaine-homocysteine S-methyltransferase causes hyperhomocysteinemia in mice Mus musculus 2.1.1.5 Inhibition of human betaine-homocysteine methyltransferase expression by S-adenosylmethionine and methylthioadenosine Homo sapiens 2.1.1.5 Liver betaine-homocysteine S-methyltransferase activity undergoes a redox switch at the active site zinc Homo sapiens 2.1.1.5 Liver betaine-homocysteine S-methyltransferase activity undergoes a redox switch at the active site zinc Mus musculus 2.1.1.5 Liver choline dehydrogenase and kidney betaine-homocysteine methyltransferase expression are not affected by methionine or choline intake in growing rats Rattus norvegicus 2.1.1.5 Macroautophagy-dependent, intralysosomal cleavage of a betaine homocysteine methyltransferase fusion protein requires stable multimerization Homo sapiens 2.1.1.5 Mechanisms of protection by the betaine-homocysteine methyltransferase/betaine system in HepG2 cells and primary mouse hepatocytes Homo sapiens 2.1.1.5 Methionine metabolism in mammals: kinetic study of betaine-homocysteine methyltransferase Rattus norvegicus 2.1.1.5 Methionine metabolism in mammals: regulatory effects of S-adenosylhomocysteine Rattus norvegicus 2.1.1.5 Oligomerization is required for betaine-homocysteine S-methyltransferase function Homo sapiens 2.1.1.5 Osmotic regulation of betaine homocysteine-S-methyltransferase expression in H4IIE rat hepatoma cells Rattus norvegicus 2.1.1.5 Osmotic regulation of betaine homocysteine-S-methyltransferase expression in H4IIE rat hepatoma cells Mus musculus 2.1.1.5 Polymorphisms in methionine synthase reductase and betaine-homocysteine S-methyltransferase genes: risk of placental abruption Homo sapiens 2.1.1.5 Proteomics reveal a concerted upregulation of methionine metabolic pathway enzymes, and downregulation of carbonic anhydrase-III, in betaine supplemented ethanol-fed rats Rattus norvegicus 2.1.1.5 Purification and kinetic properties of betaine-homocysteine methyltransferase from Aphanothece halophytica Aphanothece halophytica 2.1.1.5 Purification, kinetic properties, and cDNA cloning of mammalian betaine-homocysteine methyltransferase Homo sapiens 2.1.1.5 Purification, kinetic properties, and cDNA cloning of mammalian betaine-homocysteine methyltransferase Sus scrofa 2.1.1.5 Quantification of homocysteine-related metabolites and the role of betaine-homocysteine S-methyltransferase in HepG2 cells Homo sapiens 2.1.1.5 Random mutagenesis of the zinc-binding motif of betaine-homocysteine methyltransferase reveals that Gly214 Is essential Homo sapiens 2.1.1.5 Rat liver betaine homocysteine S-methyltransferase equilibrium unfolding: insights into intermediate structure through tryptophan substitutions Rattus norvegicus 2.1.1.5 Recombinant human liver betaine-homocysteine S-methyltransferase: Identification of three cysteine residues critical for zinc binding Homo sapiens 2.1.1.5 S-alkylated homocysteine derivatives: new inhibitors of human betaine-homocysteine S-methyltransferase Homo sapiens 2.1.1.5 Specific potassium ion interactions facilitate homocysteine binding to betaine-homocysteine S-methyltransferase Homo sapiens 2.1.1.5 Splicing variants of the porcine betaine-homocysteine S-methyltransferase gene: implications for mammalian metabolism Sus scrofa 2.1.1.5 Structure-activity study of new inhibitors of human betaine-homocysteine S-methyltransferase Homo sapiens 2.1.1.5 The BHMT-betaine methylation pathway epigenetically modulates oligodendrocyte maturation Homo sapiens 2.1.1.5 The BHMT-betaine methylation pathway epigenetically modulates oligodendrocyte maturation Rattus norvegicus 2.1.1.5 The development of a new class of inhibitors for betaine-homocysteine S-methyltransferase Homo sapiens