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4 etics to study the reaction between MCR from Methanothermobacter marburgensis and a series of bromina
6 brane channel protein AqpM from the archaeon Methanothermobacter marburgensis, we determined the stru
8 of the cathodic microbiota suggested that a Methanothermobacter-related methanogen and synergistetes
9 st associations, including Bathyarchaeia and Methanothermobacter, the latter of which was prevalent a
11 individual DNA helicases from the archaeons Methanothermobacter thermautotrophicus (Mth) and Thermoc
12 from two organisms identified in the search, Methanothermobacter thermautotrophicus (MTH) and Thermop
14 sed on the 6-fold symmetry of the N-terminal Methanothermobacter thermautotrophicus (mtMCM) hexamer s
16 n k(cat) and k(cat)/K(M) for the OMPDCs from Methanothermobacter thermautotrophicus (MtOMPDC) and Sac
19 portion of the MCM complex from the archaeon Methanothermobacter thermautotrophicus (N-mtMCM) in the
20 y, the enzyme DapL (MTH52) was identified in Methanothermobacter thermautotrophicus and shown to belo
21 ed methanobacterial and pyrococcal tRNA, the Methanothermobacter thermautotrophicus AspRS acylated ap
22 ic archaea Methanocaldococcus jannaschii and Methanothermobacter thermautotrophicus contain a dual-sp
23 pen reading frame 48 (ORF48) in the archaeon Methanothermobacter thermautotrophicus encodes a putativ
27 n GlnRS S1/L1/L2 and the naturally occurring Methanothermobacter thermautotrophicus GluRS(ND), which
28 vergently transcribed fpaA-rlp-rub operon in Methanothermobacter thermautotrophicus in addition to tr
29 tivity of an MCM homologue from the archaeon Methanothermobacter thermautotrophicus is inhibited in t
30 ve established that the trpEGCFBAD operon in Methanothermobacter thermautotrophicus is transcribed di
31 nal analysis of the interactions between the Methanothermobacter thermautotrophicus MCM and the two C
32 of DNA and ATP on the thermostability of the Methanothermobacter thermautotrophicus MCM protein was d
34 acterization of the N-terminal region of the Methanothermobacter thermautotrophicus minichromosome ma
35 nichromosome maintenance (MCM) helicase from Methanothermobacter thermautotrophicus move along duplex
37 t two-hybrid screen for interactions between Methanothermobacter thermautotrophicus proteins using pr
38 osome maintenance helicase from the archaeon Methanothermobacter thermautotrophicus required only ATP
39 The results reported establish the fate of Methanothermobacter thermautotrophicus TBP and TFB follo
40 milar complex for Gln-tRNA(Gln) formation in Methanothermobacter thermautotrophicus that allows the m
41 roRS) and leucyl-tRNA synthetases (LeuRS) in Methanothermobacter thermautotrophicus that enhances tRN
43 he RPAs in Methanocaldococcus jannaschii and Methanothermobacter thermautotrophicus through fusions o
45 Species close to Methanosarcina barkeri and Methanothermobacter thermautotrophicus were the two main
46 m the archaea Methanocaldococcus infernus or Methanothermobacter thermautotrophicus yields NifB prote
48 ylase (OMPDC) from Saccharomyces cerevisiae, Methanothermobacter thermautotrophicus, and Escherichia
49 he genomes of Methanocaldococcus jannaschii, Methanothermobacter thermautotrophicus, and Methanopyrus
50 he archaea Methanocaldococcus jannaschii and Methanothermobacter thermautotrophicus, from the eukaryo
51 identified in Methanocaldococcus jannaschii, Methanothermobacter thermautotrophicus, or Methanopyrus
53 e ability of an archaeal RNAP, purified from Methanothermobacter thermautotrophicus, to transcribe DN
54 were found only in Methanopyrus kandleri and Methanothermobacter thermautotrophicus, two strictly hyd
60 e structure of the MTH1020 gene product from Methanothermobacter thermoautotrophicus was previously s
61 e found in Methanocaldococcus jannaschii and Methanothermobacter thermoautotrophicus, and homologues
62 Methanosarcinales, in Thermoplasmatales and Methanothermobacter thermoautotrophicus, and in Halobact