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1
Folic acid and the methylation of homocysteine by Bacillus subtilis.叶酸与枯草芽孢杆菌对同型半胱氨酸的甲基化作用
Biochem J. 1972 Feb;126(4):993-1004. doi: 10.1042/bj1260993.
2
The microbial biosynthesis of methionine.蛋氨酸的微生物合成。
Biochem J. 1972 May;127(5):845-53. doi: 10.1042/bj1270845.
3
Methionine synthesis by extracts of Salmonella typhimurium.鼠伤寒沙门氏菌提取物合成甲硫氨酸的过程。
Biochem J. 1966 Feb;98(2):630-5. doi: 10.1042/bj0980630.
4
Combined marginal folate and riboflavin status affect homocysteine methylation in cultured immortalized lymphocytes from persons homozygous for the MTHFR C677T mutation.叶酸和核黄素联合状态影响来自MTHFR C677T突变纯合子个体的永生化淋巴细胞培养物中的同型半胱氨酸甲基化。
J Nutr. 2003 Sep;133(9):2716-20. doi: 10.1093/jn/133.9.2716.
5
The interaction of folic acid derivatives in the methylation of homocysteine.叶酸衍生物在同型半胱氨酸甲基化过程中的相互作用。
Biochem J. 1965 Nov;97(2):500-12. doi: 10.1042/bj0970500.
6
Cobalamin-dependent methionine synthase is a modular protein with distinct regions for binding homocysteine, methyltetrahydrofolate, cobalamin, and adenosylmethionine.钴胺素依赖性甲硫氨酸合酶是一种模块化蛋白质,具有用于结合同型半胱氨酸、甲基四氢叶酸、钴胺素和腺苷甲硫氨酸的不同区域。
Biochemistry. 1997 Jul 1;36(26):8082-91. doi: 10.1021/bi9705164.
7
Methionine auxotrophy in inborn errors of cobalamin metabolism.钴胺素代谢先天性缺陷中的甲硫氨酸营养缺陷
Clin Invest Med. 1992 Aug;15(4):395-400.
8
Nutritional regulation of homocysteine: effects of drugs.同型半胱氨酸的营养调节:药物的作用
Biomed Pharmacother. 2001 Oct;55(8):448-53. doi: 10.1016/s0753-3322(01)00126-3.
9
Escherichia coli B N5-methyltetrahydrofolate-homocysteine cobalamin methyltransferase: activation with S-adenosyl-L-methionine and the mechanism for methyl group transfer.大肠杆菌B N5-甲基四氢叶酸-高半胱氨酸钴胺素甲基转移酶:S-腺苷-L-甲硫氨酸激活及甲基转移机制
Arch Biochem Biophys. 1969 Feb;129(2):745-66. doi: 10.1016/0003-9861(69)90235-5.
10
Neural-tube defects are associated with low concentrations of cobalamin (vitamin B12) in amniotic fluid.神经管缺陷与羊水中钴胺素(维生素B12)浓度低有关。
Prenat Diagn. 1998 Jun;18(6):545-55.

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In Silico Safety Assessment of Isolated from Polish Bee Pollen and Bee Bread as Novel Probiotic Candidates.从波兰蜂花粉和蜂粮中分离出的作为新型益生菌候选物的安全性评估。
Int J Mol Sci. 2024 Jan 4;25(1):666. doi: 10.3390/ijms25010666.
2
Multi-Omics Characterization of Host-Derived spp. Probiotics for Improved Growth Performance in Poultry.宿主源益生菌对家禽生长性能改善的多组学特征分析
Front Microbiol. 2021 Oct 20;12:747845. doi: 10.3389/fmicb.2021.747845. eCollection 2021.
3
Composite genome sequence of Bacillus clausii, a probiotic commercially available as Enterogermina, and insights into its probiotic properties.凝结芽孢杆菌的复合基因组序列,一种以 Enterogermina 为商品名的益生菌,及其益生菌特性的研究。
BMC Microbiol. 2019 Dec 30;19(1):307. doi: 10.1186/s12866-019-1680-7.
4
[Pteroylglutamate derivatives in seedlings of Brassica napus oleifera].[甘蓝型油菜幼苗中的蝶酰谷氨酸衍生物]
Planta. 1973 Mar;114(1):95-100. doi: 10.1007/BF00390288.
5
Enzymatic synthesis and function of folylpolyglutamates.叶酰聚谷氨酸的酶促合成与功能
Mol Cell Biochem. 1981 Aug 11;38 Spec No(Pt 1):19-48. doi: 10.1007/BF00235686.
6
Folylpoly-gamma-glutamate synthesis by bacteria and mammalian cells.细菌和哺乳动物细胞合成叶酰多聚-γ-谷氨酸
Mol Cell Biochem. 1981 Sep 25;39:209-28. doi: 10.1007/BF00232575.
7
The microbial biosynthesis of methionine.蛋氨酸的微生物合成。
Biochem J. 1972 May;127(5):845-53. doi: 10.1042/bj1270845.
8
The biosynthesis of methionine.甲硫氨酸的生物合成。
Mol Cell Biochem. 1973 Jun 27;1(2):157-68. doi: 10.1007/BF01659327.
9
Identification of poly-gamma-glutamyl chain lengths in folates of Bacillus subtilis.枯草芽孢杆菌叶酸中多聚γ-谷氨酰链长度的鉴定
J Bacteriol. 1975 Dec;124(3):1236-9. doi: 10.1128/jb.124.3.1236-1239.1975.

本文引用的文献

1
Vitamin B(12) in photosynthetic bacteria and methionine synthesis by Rhodopseudomonas spheroides.光合细菌中的维生素 B(12)和球形红假单胞菌的蛋氨酸合成。
Biochem J. 1967 Mar;102(3):774-81. doi: 10.1042/bj1020774.
2
Mutants of Escherichia coli requiring methionine or vitamin B12.需要甲硫氨酸或维生素B12的大肠杆菌突变体。
J Bacteriol. 1950 Jul;60(1):17-28. doi: 10.1128/jb.60.1.17-28.1950.
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Interrelationships between folic acid and cobalamin in the synthesis of methionine by extracts of Escherichia coli.大肠杆菌提取物在甲硫氨酸合成中叶酸与钴胺素之间的相互关系。
Biochem J. 1960 Jun;75(3):467-77. doi: 10.1042/bj0750467.
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INTERRELATIONS BETWEEN TWO PATHWAYS OF METHIONINE BIOSYNTHESIS IN AEROBACTER AEROGENES.产气气杆菌中甲硫氨酸生物合成两条途径之间的相互关系
J Gen Microbiol. 1965 Apr;39:43-51. doi: 10.1099/00221287-39-1-43.
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COBALAMIN AND THE SYNTHESIS OF METHIONINE BY ESCHERICHIA COLI.钴胺素与大肠杆菌甲硫氨酸的合成
Nature. 1964 Jan 4;201:39-42. doi: 10.1038/201039a0.
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STUDIES ON THE TERMINAL REACTION IN THE BIOSYNTHESIS OF METHIONINE.蛋氨酸生物合成中末端反应的研究。
J Biol Chem. 1963 Oct;238:3318-24.
7
Biosynthesis of methionine from S-adenosylmethionine in Escherichia coli.大肠杆菌中由S-腺苷甲硫氨酸合成甲硫氨酸的过程。
Biochem Biophys Res Commun. 1962 Nov 27;9:405-9. doi: 10.1016/0006-291x(62)90024-4.
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A methyl analogue of cobamide coenzyme in relation to methionine synthesis by bacteria.与细菌甲硫氨酸合成相关的钴胺酰胺辅酶甲基类似物。
Nature. 1962 Jul 28;195:340-2. doi: 10.1038/195340a0.
9
Cobalamin and the synthesis of methionine by ultrasonic extracts of Escherichia coli.钴胺素与大肠杆菌超声提取物中甲硫氨酸的合成
Biochem J. 1960 Aug;76(2):396-405. doi: 10.1042/bj0760396.
10
The synthesis of methionine by suspensions of Escherichia coli.大肠杆菌悬浮液合成蛋氨酸。
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叶酸与枯草芽孢杆菌对同型半胱氨酸的甲基化作用

Folic acid and the methylation of homocysteine by Bacillus subtilis.

作者信息

Salem A R, Pattison J R, Foster M A

出版信息

Biochem J. 1972 Feb;126(4):993-1004. doi: 10.1042/bj1260993.

DOI:10.1042/bj1260993
PMID:4627401
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1178507/
Abstract
  1. Cell-free extracts of Bacillus subtilis synthesize methionine from serine and homocysteine without added folate. The endogenous folate may be replaced by tetrahydropteroyltriglutamate or an extract of heated Escherichia coli for the overall C(1) transfer, but tetrahydropteroylmonoglutamate is relatively inactive. 2. Extracts of B. subtilis contain serine transhydroxymethylase and 5,10-methylenetetrahydrofolate reductase, which are non-specific with respect to the glutamate content of the folate substrates. Methyl transfer to homocysteine requires a polyglutamate folate as methyl donor. These properties are not affected by growth of the organism with added vitamin B(12). 3. The synthesis of methionine from 5-methyltetrahydropteroyltriglutamate and homocysteine has the characteristics of the cobalamin-independent reaction of E. coli. No evidence for a cobalamin-dependent transmethylation was obtained. 4. S-Adenosylmethionine was not a significant precursor of the methyl group of methionine with cell-free extracts, neither was S-adenosylmethionine generated by methylation of S-adenosylhomocysteine by 5-methyltetrahydrofolate. 5. A procedure for the isolation and analysis of folic acid derivatives from natural sources is described. 6. The folates isolated from lysozyme extracts of B. subtilis are sensitive to folic acid conjugase. One has been identified as 5-formyltetrahydropteroyltriglutamate; the other is possibly a diglutamate folate. 7. A sequence is proposed for methionine biosynthesis in B. subtilis in which methyl groups are generated from serine and transferred to homocysteine by means of a cobalamin-independent pathway mediated by conjugated folate coenzymes.
摘要
  1. 枯草芽孢杆菌的无细胞提取物在不添加叶酸的情况下能从丝氨酸和同型半胱氨酸合成甲硫氨酸。内源性叶酸可被四氢蝶酰三谷氨酸或加热的大肠杆菌提取物替代以进行整体的C(1)转移,但四氢蝶酰单谷氨酸相对无活性。2. 枯草芽孢杆菌提取物含有丝氨酸转羟甲基酶和5,10-亚甲基四氢叶酸还原酶,它们对叶酸底物的谷氨酸含量不具有特异性。向同型半胱氨酸的甲基转移需要聚谷氨酸叶酸作为甲基供体。这些特性不受添加维生素B(12)时生物体生长的影响。3. 由5-甲基四氢蝶酰三谷氨酸和同型半胱氨酸合成甲硫氨酸具有大肠杆菌不依赖钴胺素反应的特征。未获得依赖钴胺素的转甲基作用的证据。4. 对于无细胞提取物,S-腺苷甲硫氨酸不是甲硫氨酸甲基的重要前体,通过5-甲基四氢叶酸对S-腺苷同型半胱氨酸进行甲基化也不会产生S-腺苷甲硫氨酸。5. 描述了一种从天然来源分离和分析叶酸衍生物的方法。6. 从枯草芽孢杆菌溶菌酶提取物中分离出的叶酸对叶酸结合酶敏感。其中一种已被鉴定为5-甲酰四氢蝶酰三谷氨酸;另一种可能是二谷氨酸叶酸。7. 提出了枯草芽孢杆菌中甲硫氨酸生物合成的序列,其中甲基由丝氨酸产生,并通过由共轭叶酸辅酶介导的不依赖钴胺素的途径转移至同型半胱氨酸。