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Discovery of Lysine Hydroxylases in the Clavaminic Acid Synthase-Like Superfamily for Efficient Hydroxylysine Bioproduction.
Hara, Ryotaro; Yamagata, Kai; Miyake, Ryoma; Kawabata, Hiroshi; Uehara, Hisatoshi; Kino, Kuniki.
Affiliation
  • Hara R; Research Institute for Science and Engineering, Waseda University, Tokyo, Japan ryo_h@aoni.waseda.jp kkino@waseda.jp.
  • Yamagata K; Department of Applied Chemistry, Faculty of Science and Engineering, Waseda University, Tokyo, Japan.
  • Miyake R; Mitsubishi Chemical Corporation, Yokohama R&D Center, Yokohama, Japan.
  • Kawabata H; API Corporation, Yokohama, Japan.
  • Uehara H; Mitsubishi Chemical Corporation, Yokohama R&D Center, Yokohama, Japan.
  • Kino K; API Corporation, Yokohama, Japan.
Appl Environ Microbiol ; 83(17)2017 09 01.
Article in En | MEDLINE | ID: mdl-28667106
Hydroxylation via C-H bond activation in the absence of any harmful oxidizing reagents is technically difficult in modern chemistry. In this work, we attempted to generate pharmaceutically important hydroxylysine from readily available l-lysine with l-lysine hydroxylases from diverse microorganisms. Clavaminic acid synthase-like superfamily gene mining and phylogenetic analysis led to the discovery of six biocatalysts, namely two l-lysine 3S-hydroxylases and four l-lysine 4R-hydroxylases, the latter of which partially matched known hydroxylases. Subsequent characterization of these hydroxylases revealed their capacity for regio- and stereoselective hydroxylation into either C-3 or C-4 positions of l-lysine, yielding (2S,3S)-3-hydroxylysine and (2S,4R)-4-hydroxylysine, respectively. To determine if these factors had industrial application, we performed a preparative production of both hydroxylysines under optimized conditions. For this, recombinant l-lysine hydroxylase-expressing Escherichia coli cells were used as a biocatalyst for l-lysine bioconversion. In batch-scale reactions, 531 mM (86.1 g/liter) (2S,3S)-3-hydroxylysine was produced from 600 mM l-lysine with an 89% molar conversion after a 52-h reaction, and 265 mM (43.0 g/liter) (2S,4R)-4-hydroxylysine was produced from 300 mM l-lysine with a molar conversion of 88% after 24 h. This report demonstrates the highly efficient production of hydroxylysines using lysine hydroxylases, which may contribute to future industrial bioprocess technologies.IMPORTANCE The present study identified six l-lysine hydroxylases belonging to the 2-oxoglutarate-dependent dioxygenase superfamily, although some of them overlapped with known hydroxylases. While the substrate specificity of l-lysine hydroxylases was relatively narrow, we found that (2S,3S)-3-hydroxylysine was hydroxylated by 4R-hydroxylase and (2S,5R)-5-hydroxylysine was hydroxylated by both 3S- and 4R-hydroxylases. Moreover, the l-arginine hydroxylase VioC also hydroxylated l-lysine, albeit to a lesser extent. Further, we also demonstrated the bioconversion of l-lysine into (2S,3S)-3-hydroxylysine and (2S,4R)-4-hydroxylysine on a gram scale under optimized conditions. These findings provide new insights into biocatalytic l-lysine hydroxylation and thus have a great potential for use in manufacturing bioprocesses.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Bacteria / Mixed Function Oxygenases / Hydroxylysine / Lysine Type of study: Prognostic_studies Language: En Journal: Appl Environ Microbiol Year: 2017 Document type: Article Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Bacteria / Mixed Function Oxygenases / Hydroxylysine / Lysine Type of study: Prognostic_studies Language: En Journal: Appl Environ Microbiol Year: 2017 Document type: Article Country of publication: United States