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1  never been observed before in any wild-type lipoamide dehydrogenase.
2 efficiently reduced by NADH-dependent bovine lipoamide dehydrogenase.
3 has two genes encoding for two mitochondrial lipoamide dehydrogenases.
4                                              Lipoamide dehydrogenase, a component of the alpha-ketogl
5                                              Lipoamide dehydrogenase also catalyzes NADH oxidation by
6 zed Ohr by NADH was shown to be catalyzed by lipoamide dehydrogenase and either lipoamide or DlaT (Su
7 oredoxin reductase is like the mechanisms of lipoamide dehydrogenase and glutathione reductase and di
8             The mechanisms and structures of lipoamide dehydrogenase and glutathione reductase are al
9 o other well-studied members of this family, lipoamide dehydrogenase and glutathione reductase, cycle
10       For each of two target enzymes tested, lipoamide dehydrogenase and mycobacterial proteasome ATP
11 nd EH(4) forms of Mycobacterium tuberculosis lipoamide dehydrogenase and rapidly mixed these enzyme f
12  targets major enzymes of energy production (lipoamide dehydrogenase) and antioxidant defense (thiore
13                       Thioredoxin reductase, lipoamide dehydrogenase, and glutathione reductase are m
14 mide dehydrogenase that is distinct from the lipoamide dehydrogenase associated with the pyruvate deh
15  reduction of the Mycobacterium tuberculosis lipoamide dehydrogenase by NADH and [4S-(2)H]-NADH was s
16                                              Lipoamide dehydrogenase can also catalyze the NADH-depen
17                                              Lipoamide dehydrogenase catalyses the NAD(+)-dependent o
18                                              Lipoamide dehydrogenase catalyzes the reversible NAD(+)-
19 ecombinant enzyme as assessed by a lipoamide-lipoamide dehydrogenase-coupled assay.
20 ihydrolipoamide succinyltransferase (E2) and lipoamide dehydrogenase (E3) components of alpha-ketoglu
21    We report the 2.4 A crystal structure for lipoamide dehydrogenase encoded by lpdC from Mycobacteri
22 e, in contrast to the closely related enzyme lipoamide dehydrogenase, for which only EH2 is active.
23 l members of the enzyme family that includes lipoamide dehydrogenase, glutathione reductase and mercu
24             Although annotated as a probable lipoamide dehydrogenase in M. tuberculosis, LpdA cannot
25 to peas (Pisum sativum), where mitochondrial lipoamide dehydrogenase is encoded by a single gene and
26 rotein microscopy as a simultaneous assay of lipoamide dehydrogenase (LipDH) autofluorescence.
27 (P)H, flavin adenine dinucleotide (FAD), and lipoamide dehydrogenase (LipDH) over the wavelength rang
28 ssibility of species-selective inhibition of lipoamide dehydrogenase (Lpd), an enzyme central to Mtb'
29 d, including xanthine oxidase (XO)/xanthine, lipoamide dehydrogenase/ NADH, isolated mitochondria, mi
30 wed by reduction of the flavin, just as with lipoamide dehydrogenase or glutathione reductase.
31 te similar to that observed in titrations of lipoamide dehydrogenase or glutathione reductase.
32                                          The lipoamide dehydrogenase reaction catalyzed by the purifi
33 pdA gene, which encodes the oxidative enzyme lipoamide dehydrogenase required for tricarboxylic acid
34 oded by bkdD indicate that E. faecalis has a lipoamide dehydrogenase that is distinct from the lipoam
35 c uptake regulatory repressor, and possibly, lipoamide dehydrogenase, the L protein component of the

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