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EC Number
BRENDA No.
Title
Journal
Volume
Pages
Year
Organism
PubMed ID
2.1.1.14
720259
Crystal structures of cobalamin-independent methionine synthase (MetE) from Streptococcus mutans: a dynamic zinc-inversion model
J. Mol. Biol.
412
688-697
2011
Streptococcus mutans
21840320
2.1.1.14
659400
Crystal structures of cobalamin-independent methionine synthase complexed with zinc, homocysteine, and methyltetrahydrofolate
J. Biol. Chem.
279
44235-44238
2004
Arabidopsis thaliana
15326182
2.1.1.14
733170
Evolved cobalamin-independent methionine synthase (MetE) improves the acetate and thermal tolerance of Escherichia coli
Appl. Environ. Microbiol.
79
7905-7915
2013
Escherichia coli
24123739
2.1.1.14
441327
Folic acid and the methylation of homocysteine by Bacillus subtilis
Biochem. J.
126
993-1004
1972
Bacillus subtilis
4627401
2.1.1.14
706748
Isolation and expression analysis of a cobalamin-independent methionine synthase gene from the parasitic plant Orobanche ramosa
Sci. Hortic.
116
337-341
2008
Phelipanche ramosa
-
2.1.1.14
441217
L-Selenohomocysteine: One-step synthesis from L-selenomethionine and kinetic analysis as substrate for methionine synthases
Bioorg. Med. Chem. Lett.
10
2471-2475
2000
Escherichia coli
11078203
2.1.1.14
720398
Mechanism of methionine synthase overexpression in chaperonin-depleted Escherichia coli
Microbiology
158
917-924
2012
Escherichia coli
22262097
2.1.1.14
735002
Methionine biosynthesis is essential for infection in the rice blast fungus Magnaporthe oryzae
PLoS ONE
10
e0111108
2015
Pyricularia oryzae
25856162
2.1.1.14
441328
Methionine synthesis (Yeast)
Methods Enzymol.
17B
388-392
1971
Saccharomyces cerevisiae
-
2.1.1.14
441326
N5-Methyltetrahydrofolate-homocysteine methyltransferases
The Enzymes, 3rd Ed. (Boyer, P. D. , ed. )
9
121-165
1973
Klebsiella aerogenes
-
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