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1  associated with aerobic DCA biodegradation (Xanthobacter, Ancylobacter, Azoarcus) were present in th
2  aspartate in the haloalkane dehalogenase of Xanthobacter autothropicus have been compared by using m
3 he active site of haloalkane dehalogenase of Xanthobacter autothropicus.
4 on patterns of haloalkane dehalogenases from Xanthobacter autotrophicus GJ10 (XaDHL) and Rhodococcus
5 versus C-Cl bond cleavage by S(N)2 reaction (Xanthobacter autotrophicus GJ10 and Ancylobacter aquatic
6 N)2 reaction of haloalkane dehalogenase from Xanthobacter autotrophicus GJ10, which was used in previ
7  active site of haloalkane dehalogenase from Xanthobacter autotrophicus GJ10.
8 Da (alphabetagamma)2 heterohexameric AC from Xanthobacter autotrophicus in the ligand-free, AMP-bound
9                        Epoxide metabolism in Xanthobacter autotrophicus Py2 results in the conversion
10 ne to the central metabolite acetoacetate in Xanthobacter autotrophicus Py2.
11 H enzymes present on a linear megaplasmid in Xanthobacter autotrophicus strain Py2 has been cloned an
12            Structural studies of 2-KPCC from Xanthobacter autotrophicus strain Py2 have revealed a di
13 ified to homogeneity and compared to that of Xanthobacter autotrophicus strain Py2, the only other or
14 ent growth of and epoxypropane metabolism by Xanthobacter autotrophicus strain Py2.
15            A pair of dehalogenase genes from Xanthobacter autotrophicus was expressed in tobacco resu
16  water splitting to a H2-oxidizing bacterium Xanthobacter autotrophicus, which performs N2 and CO2 re
17    The stereoselective dehydrogenases of the Xanthobacter epoxide carboxylase system were able to sub
18 to a cloned fragment of DNA that complements Xanthobacter Py2 mutants defective in epoxide degradatio
19 e components were expressed during growth of Xanthobacter Py2 on aliphatic alkenes or epoxides and re
20 ins with functions identical to those of the Xanthobacter Py2 system.
21 ion of epoxide carboxylase component II from Xanthobacter Py2 to active N. corallina extracts stimula
22 6, a bacterium phylogenetically unrelated to Xanthobacter Py2, and found to consist of four proteins
23 utionarily related alkene monooxygenase from Xanthobacter sp. Py2.
24 tabolism in the propylene-oxidizing bacteria Xanthobacter strain Py2 and Rhodococcus rhodochrous stra
25                     Epoxide carboxylase from Xanthobacter strain Py2 catalyzes the reductant- and NAD
26                    Antibodies raised against Xanthobacter strain Py2 epoxide carboxylase component I
27                          Cell suspensions of Xanthobacter strain Py2 grown with propylene or glucose
28                     Epoxide carboxylase from Xanthobacter strain Py2 has been resolved from cell extr
29 nto the role of the Rieske-type protein from Xanthobacter strain Py2 in alkene oxidation.
30       Epoxide carboxylase from the bacterium Xanthobacter strain Py2 is a multicomponent enzyme syste
31                    Alkene monooxygenase from Xanthobacter strain Py2 is an inducible enzyme that cata
32 ose that the propylene-positive phenotype of Xanthobacter strain Py2 is dependent on the selective ma
33 d in the metabolism of aliphatic epoxides by Xanthobacter strain Py2 is described.
34  Acetone metabolism in the aerobic bacterium Xanthobacter strain Py2 proceeds by a carboxylation reac
35  Epoxide metabolism in the aerobic bacterium Xanthobacter strain Py2 proceeds by an NADPH- and NAD+-d
36 n vivo and in vitro studies of acetone-grown Xanthobacter strain Py2 revealed a CO2-dependent pathway
37 tion of epoxide carboxylase component I from Xanthobacter strain Py2 to methylepoxypropane-inactivate
38                     Repeated subculturing of Xanthobacter strain Py2 under nonselective conditions, i
39 tabolism of acetone by the aerobic bacterium Xanthobacter strain Py2 was investigated.
40 R spectra of the Rieske-type ferredoxin from Xanthobacter strain Py2 were recorded in both H2O and D2
41 en identified in the gram-negative bacterium Xanthobacter strain Py2, which contains the genes encodi
42  pathway of alkene and epoxide metabolism in Xanthobacter strain Py2.
43 carboxylation in the Gram-negative bacterium Xanthobacter strain Py2.
44 enzyme system of the gram-negative bacterium Xanthobacter strain Py2.
45 ociated with epoxide degradation activity in Xanthobacter strain Py2.
46  for the metabolism of aliphatic epoxides in Xanthobacter strain Py2.
47 nt activities were also found in autotrophic Xanthobacter strains.
48 o the same levels observed with the purified Xanthobacter system.
49 cific: other reductase activities present in Xanthobacter were incapable of transferring electrons to

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