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1 ate compounds containing galactofuranose and galactopyranose.
2 lly substituted by 2-acetamido-2-deoxy-alpha-galactopyranose (13%) and 2-acetamido-2-deoxy-alpha-gluc
3 ing tetra-O-acetyl-2-N-azidoacetyl-2-deoxy-d-galactopyranose (Ac(4)GalNAz).
4 binofuranose, alpha-L-rhamnopyranose, beta-D-galactopyranose, alpha-L-glucopyranose).
5  mimetics (d-glycero-d-talo- and d-glycero-d-galactopyranose analogues), a subset of the recently pub
6 dues and lesser content of 1,3-linked beta-D-galactopyranose and 1,5-linked alpha-L-arabinofuranose r
7 or Glf) catalyzes the interconversion of UDP-galactopyranose and UDP-galactofuranose.
8 n which catalyses the interconversion of UDP-galactopyranose and UDP-galactofuranose.
9 y glycosyl cations in the d-glucopyranose, d-galactopyranose, and l-arabinofuranose series using low-
10 strate for galactan synthesis and UDP-[(14)C]galactopyranose as the immediate precursor of UDP-[(14)C
11                                              Galactopyranose binds at the re face of the FAD isoallox
12 dvanced 2-acetamido-4-amino-2,4,6-trideoxy-d-galactopyranose building block, was achieved on the 30 g
13                    UDP-Galf is made from UDP-galactopyranose by the enzyme UDP-galactopyranose mutase
14 o transfer of IAA occurs with myo-inositol-d-galactopyranose, cyclohexanol, mannitol, or glycerol as
15 al is found to stabilize the alpha-anomer of galactopyranose derivatives relative to monocyclic analo
16  out a 6-homologation on the less flexible d-galactopyranose, followed by a very successful conversio
17 tuted with 2-O-arabinopyranose (Arap) or 2-O-galactopyranose (Gal) residues in some plant species, bu
18      Unlike FN, FNV is likely to incorporate galactopyranose, galacturonate, and sialic acid into its
19 10-24) of 2-acetamido-2-deoxy-1-thio-alpha-D-galactopyranose have been prepared in good yields and wi
20               Here, we report an agent where galactopyranose is the blocking group.
21  binding site overlaps that of the substrate galactopyranose moiety, and thus NADPH and substrate bin
22 -galactofuranose catalyzed by the enzyme UDP-galactopyranose mutase (Glf).
23       The flavoenzyme uridine 5'-diphosphate galactopyranose mutase (UGM or Glf) catalyzes the interc
24 -Galf), which is generated by the enzyme UDP-galactopyranose mutase (UGM or Glf).
25 luster of three K. kingae genes encoding UDP-galactopyranose mutase (ugm) and two putative galactofur
26                                          UDP-galactopyranose mutase (UGM) catalyzes the conversion of
27  the galactofuranose biosynthetic enzyme UDP-galactopyranose mutase (UGM) from T. cruzi, which are th
28                                          UDP-galactopyranose mutase (UGM) is a flavin-containing enzy
29                                          UDP-Galactopyranose mutase (UGM) is a flavin-containing enzy
30                                          UDP-galactopyranose mutase (UGM) is a flavoenzyme that catal
31                                          UDP-galactopyranose mutase (UGM) plays an essential role in
32                                          UDP-galactopyranose mutase (UGM) requires reduced FAD (FAD(r
33 to-3,6-dideoxygalactose synthase (YerE), UDP-galactopyranose mutase (UGM), and type II isopentenyl di
34                            A key enzyme, UDP-galactopyranose mutase (UGM), that participates in Galf
35 dation of a key LPG biosynthetic enzyme, UDP-galactopyranose mutase (UGM).
36 topyranose (UDP-Galp) by the flavoenzyme UDP-galactopyranose mutase (UGM).
37 nd in humans supports the development of UDP-galactopyranose mutase and galactofuranosyl transferase
38                                          UDP-galactopyranose mutase is a flavoprotein which catalyses
39 n addition, an HPLC assay for the enzyme UDP-galactopyranose mutase is presented that requires 0.5 mi
40 e from UDP-galactopyranose by the enzyme UDP-galactopyranose mutase.
41 matically from UDP-Galp using the enzyme UDP-galactopyranose mutase.
42 neered a C. neoformans strain that lacks UDP-galactopyranose mutase; this enzyme forms UDP-Galf, the
43 furanoic form of d-galactose produced by UDP-galactopyranose mutases (UGMs), is present in surface gl
44 eta1,2-linked to an unusual tetrasubstituted galactopyranose of the glucuronoxylomannogalactan (GXMGa
45 ed region contained mainly 1,4-linked beta-D-galactopyranose residues and lesser content of 1,3-linke
46 ed region contained mainly 1,4-linked beta-d-galactopyranose residues and, to a lesser extent, 1,5-li
47 e presence of galactans, 3,6-anhydro-alpha-L-galactopyranose, sulphated galactose and the gelling age
48 l assignment of 1 to 3, a change of an alpha-galactopyranose to an alpha-galactofuranose headgroup.
49 ormed in nature by a ring contraction of UDP-galactopyranose to UDP-galactofuranose catalyzed by the
50 oenzyme that catalyzes the conversion of UDP-galactopyranose to UDP-galactofuranose, which is a centr
51 rganisms by catalyzing the conversion of UDP-galactopyranose to UDP-galactofuranose.
52 onsible for catalyzing the conversion of UDP-galactopyranose to UDP-galactofuranose.
53 ion of UDP-galactofuranose (UDP-Galf) to UDP-galactopyranose (UDP-Galp) and is an important virulence
54 talyze the reversible interconversion of UDP-galactopyranose (UDP-Galp) and UDP-galactofuranose (UDP-
55 aining glycoconjugates, is produced from UDP-galactopyranose (UDP-Galp) by the flavoenzyme UDP-galact
56 e UDP-galactofuranose (UDP-Galf) free of UDP-galactopyranose (UDP-Galp) is described.
57 t catalyzes the reversible conversion of UDP-galactopyranose (UDP-Galp) to UDP-galactofuranose (UDP-G
58 t catalyzes the reversible conversion of UDP-galactopyranose (UDP-Galp) to UDP-galactofuranose (UDP-G
59 ents of microorganisms is derived from UDP-D-galactopyranose (UDP-Galp) via a unique ring contraction
60  mediates isomerization of UDP-Galf from UDP-galactopyranose (UDP-Galp).