Literature DB >> 24752840

Bacterial synthesis of D-amino acids.

Atanas D Radkov1, Luke A Moe.   

Abstract

Recent work has shed light on the abundance and diversity of D-amino acids in bacterial extracellular/periplasmic molecules, bacterial cell culture, and bacteria-rich environments. Within the extracellular/periplasmic space, D-amino acids are necessary components of peptidoglycan, and disruption of their synthesis leads to cell death. As such, enzymes responsible for D-amino acid synthesis are promising targets for antibacterial compounds. Further, bacteria are shown to incorporate a diverse collection of D-amino acids into their peptidoglycan, and differences in D-amino acid incorporation may occur in response to differences in growth conditions. Certain D-amino acids can accumulate to millimolar levels in cell culture, and their synthesis is proposed to foretell movement from exponential growth phase into stationary phase. While enzymes responsible for synthesis of D-amino acids necessary for peptidoglycan (D-alanine and D-glutamate) have been characterized from a number of different bacteria, the D-amino acid synthesis enzymes characterized to date cannot account for the diversity of D-amino acids identified in bacteria or bacteria-rich environments. Free D-amino acids are synthesized by racemization or epimerization at the α-carbon of the corresponding L-amino acid by amino acid racemase or amino acid epimerase enzymes. Additionally, D-amino acids can be synthesized by stereospecific amination of α-ketoacids. Below, we review the roles of D-amino acids in bacterial physiology and biotechnology, and we describe the known mechanisms by which they are synthesized by bacteria.

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Year:  2014        PMID: 24752840     DOI: 10.1007/s00253-014-5726-3

Source DB:  PubMed          Journal:  Appl Microbiol Biotechnol        ISSN: 0175-7598            Impact factor:   4.813


  40 in total

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4.  Vibrio fischeri DarR Directs Responses to d-Aspartate and Represents a Group of Similar LysR-Type Transcriptional Regulators.

Authors:  Richard M Jones; David L Popham; Alicia L Schmidt; Ellen L Neidle; Eric V Stabb
Journal:  J Bacteriol       Date:  2018-07-10       Impact factor: 3.490

5.  In vitro reconstitution of the yeast spore wall dityrosine layer discloses the mechanism of its assembly.

Authors:  Leo D Bemena; Omar Mukama; Aaron M Neiman; Zijie Li; Xiao-Dong Gao; Hideki Nakanishi
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Journal:  Amino Acids       Date:  2022-02-28       Impact factor: 3.520

7.  Production of D-alanine from DL-alanine using immobilized cells of Bacillus subtilis HLZ-68.

Authors:  Yangyang Zhang; Xiangping Li; Caifei Zhang; Xiaodong Yu; Fei Huang; Shihai Huang; Lianwei Li; Shiyu Liu
Journal:  World J Microbiol Biotechnol       Date:  2017-09-13       Impact factor: 3.312

8.  Structural and functional characterization of aspartate racemase from the acidothermophilic archaeon Picrophilus torridus.

Authors:  Takayuki Aihara; Toshiya Ito; Yasuaki Yamanaka; Keiichi Noguchi; Masafumi Odaka; Masae Sekine; Hiroshi Homma; Masafumi Yohda
Journal:  Extremophiles       Date:  2016-04-19       Impact factor: 2.395

9.  Molecular dynamics-derived rotamer libraries for d-amino acids within homochiral and heterochiral polypeptides.

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Journal:  Protein Eng Des Sel       Date:  2018-06-01       Impact factor: 1.650

10.  Identification and biochemical characterization of threonine dehydratase from the hyperthermophile Thermotoga maritima.

Authors:  Tetsuya Miyamoto; Masumi Katane; Yasuaki Saitoh; Masae Sekine; Kumiko Sakai-Kato; Hiroshi Homma
Journal:  Amino Acids       Date:  2021-05-03       Impact factor: 3.520

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