Novel thermostable amine transferases from hot spring metagenomes.

Appl Microbiol Biotechnol

Istituto di Chimica del Riconoscimento Molecolare, C.N.R, Via Mario Bianco 9, 20131, Milan, Italy.

Published: June 2017

AI Article Synopsis

  • Researchers investigated hot spring metagenomes from Iceland and Italy to identify new amine transaminases (ATAs), which are enzymes useful for creating optically pure amines.
  • Three novel (S)-selective ATAs—Is3-TA, It6-TA, and B3-TA—were successfully cloned, with B3-TA proving to be the most thermostable, maintaining significant activity even after prolonged exposure to high temperatures.
  • These findings suggest that B3-TA and the newly discovered ATAs have potential practical applications in biocatalysis due to their ability to perform efficiently under extreme conditions and in various solvents.

Article Abstract

Hot spring metagenomes, prepared from samples collected at temperatures ranging from 55 to 95 °C, were submitted to an in silico screening aimed at the identification of novel amine transaminases (ATAs), valuable biocatalysts for the preparation of optically pure amines. Three novel (S)-selective ATAs, namely Is3-TA, It6-TA, and B3-TA, were discovered in the metagenome of samples collected from hot springs in Iceland and in Italy, cloned from the corresponding metagenomic DNAs and overexpressed in recombinant form in E. coli. Functional characterization of the novel ATAs demonstrated that they all possess a thermophilic character and are capable of performing amine transfer reactions using a broad range of donor and acceptor substrates, thus suggesting a good potential for practical synthetic applications. In particular, the enzyme B3-TA revealed to be exceptionally thermostable, retaining 85% of activity after 5 days of incubation at 80 °C and more than 40% after 2 weeks under the same condition. These results, which were in agreement with the estimation of an apparent melting temperature around 88 °C, make B3-TA, to the best of our knowledge, the most thermostable natural ATA described to date. This biocatalyst showed also a good tolerance toward different water-miscible and water-immiscible organic solvents. A detailed inspection of the homology-based structural model of B3-TA showed that the overall active site architecture of mesophilic (S)-selective ATAs was mainly conserved in this hyperthermophilic homolog. Additionally, a subfamily of B3-TA-like transaminases, mostly uncharacterized and all from thermophilic microorganisms, was identified and analyzed in terms of phylogenetic relationships and sequence conservation.

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Source
http://dx.doi.org/10.1007/s00253-017-8228-2DOI Listing

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