Functional analysis and heterologous expression of bifunctional glutathione synthetase from Lactobacillus.

J Dairy Sci

Shanghai Engineering Research Center of Food Microbiology, School of Medical Instrument and Food Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China. Electronic address:

Published: August 2018

AI Article Synopsis

  • Bifunctional glutathione synthetase (GshF) is capable of catalyzing the 2-step process to produce reduced glutathione (GSH) using ATP, and was identified in 19 Lactobacillus species.
  • GshF genes from Lactobacillus plantarum and Lactobacillus casei were expressed in E. coli, leading to significantly increased GSH production compared to controls.
  • Optimized conditions for expressing GshF resulted in a 177.9% increase in GSH yield, with transcriptional analysis indicating that GshF expression suppresses endogenous GSH metabolism pathways, showcasing GshF's potential for enhancing GSH biosynthesis.

Article Abstract

Bifunctional glutathione synthetase (GshF) has recently been reported to simultaneously catalyze the 2-step ATP-dependent biosynthesis of reduced glutathione (GSH). In this work, 19 putative gshF were mined from the complete sequenced genome of 20 representative Lactobacillus species. To functionally analyze these putative GshF, GshF from Lactobacillus plantarum and Lactobacillus casei were selected and successfully expressed in Escherichia coli. Compared with the control without expressing GshF, GSH titers were enhanced significantly in E. coli with overexpression of GshF, demonstrating that putative GshF from Lactobacillus have functional activities on GSH biosynthesis. Moreover, with the expression of GshF from L. plantarum in E. coli as a paradigm, GSH yield (286.5 μM) was strongly improved by 177.9% with optimized induced conditions and precursor concentration compared with the control under unoptimized conditions. Transcriptional analysis showed that key genes of endogenous GSH metabolism and precursor biosynthesis were remarkably suppressed by GshF expression, indicating that the increase of GSH titer was attributed to heterologous expression of GshF. Overall, our results suggested that gshF is enriched in Lactobacillus and that heterologous expression of GshF is an efficient strategy for improving GSH biosynthesis.

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Source
http://dx.doi.org/10.3168/jds.2017-14142DOI Listing

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