Literature DB >> 22984263

Crystal structures of complexes of the branched-chain aminotransferase from Deinococcus radiodurans with α-ketoisocaproate and L-glutamate suggest the radiation resistance of this enzyme for catalysis.

Chung-De Chen1, Chih-Hao Lin, Phimonphan Chuankhayan, Yen-Chieh Huang, Yin-Cheng Hsieh, Tien-Feng Huang, Hong-Hsiang Guan, Ming-Yih Liu, Wen-Chang Chang, Chun-Jung Chen.   

Abstract

Branched-chain aminotransferases (BCAT), which utilize pyridoxal 5'-phosphate (PLP) as a cofactor, reversibly catalyze the transfer of the α-amino groups of three of the most hydrophobic branched-chain amino acids (BCAA), leucine, isoleucine, and valine, to α-ketoglutarate to form the respective branched-chain α-keto acids and glutamate. The BCAT from Deinococcus radiodurans (DrBCAT), an extremophile, was cloned and expressed in Escherichia coli for structure and functional studies. The crystal structures of the native DrBCAT with PLP and its complexes with L-glutamate and α-ketoisocaproate (KIC), respectively, have been determined. The DrBCAT monomer, comprising 358 amino acids, contains large and small domains connected with an interdomain loop. The cofactor PLP is located at the bottom of the active site pocket between two domains and near the dimer interface. The substrate (L-glutamate or KIC) is bound with key residues through interactions of the hydrogen bond and the salt bridge near PLP inside the active site pocket. Mutations of some interaction residues, such as Tyr71, Arg145, and Lys202, result in loss of the specific activity of the enzymes. In the interdomain loop, a dynamic loop (Gly173 to Gly179) clearly exhibits open and close conformations in structures of DrBCAT without and with substrates, respectively. DrBCAT shows the highest specific activity both in nature and under ionizing radiation, but with lower thermal stability above 60 °C, than either BCAT from Escherichia coli (eBCAT) or from Thermus thermophilus (HB8BCAT). The dimeric molecular packing and the distribution of cysteine residues at the active site and the molecular surface might explain the resistance to radiation but small thermal stability of DrBCAT.

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Year:  2012        PMID: 22984263      PMCID: PMC3486342          DOI: 10.1128/JB.01659-12

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  53 in total

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5.  Accumulation of Mn(II) in Deinococcus radiodurans facilitates gamma-radiation resistance.

Authors:  M J Daly; E K Gaidamakova; V Y Matrosova; A Vasilenko; M Zhai; A Venkateswaran; M Hess; M V Omelchenko; H M Kostandarithes; K S Makarova; L P Wackett; J K Fredrickson; D Ghosal
Journal:  Science       Date:  2004-09-30       Impact factor: 47.728

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10.  MolProbity: all-atom structure validation for macromolecular crystallography.

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  4 in total

1.  First structure of archaeal branched-chain amino acid aminotransferase from Thermoproteus uzoniensis specific for L-amino acids and R-amines.

Authors:  Konstantin M Boyko; Tatiana N Stekhanova; Alena Yu Nikolaeva; Andrey V Mardanov; Andrey L Rakitin; Nikolai V Ravin; Ekaterina Yu Bezsudnova; Vladimir O Popov
Journal:  Extremophiles       Date:  2016-02-12       Impact factor: 2.395

Review 2.  Branched-Chain Amino Acids and Brain Metabolism.

Authors:  Justin E Sperringer; Adele Addington; Susan M Hutson
Journal:  Neurochem Res       Date:  2017-04-18       Impact factor: 3.996

3.  Discovery and structural characterisation of new fold type IV-transaminases exemplify the diversity of this enzyme fold.

Authors:  Tea Pavkov-Keller; Gernot A Strohmeier; Matthias Diepold; Wilco Peeters; Natascha Smeets; Martin Schürmann; Karl Gruber; Helmut Schwab; Kerstin Steiner
Journal:  Sci Rep       Date:  2016-12-01       Impact factor: 4.379

4.  Thermostable Branched-Chain Amino Acid Transaminases From the Archaea Geoglobus acetivorans and Archaeoglobus fulgidus: Biochemical and Structural Characterization.

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Journal:  Front Bioeng Biotechnol       Date:  2019-01-24
  4 in total

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