l-Amino acid deaminase,Lactate dehydrogenase,Modular assembly" /> l-Amino acid deaminase" /> l-Amino acid deaminase,Lactate dehydrogenase,Modular assembly" />

Production of enantiopure (R)- or (S)-2-hydroxy-4-(methylthio)butanoic acid by multi-enzyme cascades

Can Zhang , Wei Song , Jia Liu , Xiulai Chen , Liming Liu

Bioresources and Bioprocessing ›› 2019, Vol. 6 ›› Issue (1) : 9

PDF
Bioresources and Bioprocessing ›› 2019, Vol. 6 ›› Issue (1) : 9 DOI: 10.1186/s40643-019-0244-x
Research

Production of enantiopure (R)- or (S)-2-hydroxy-4-(methylthio)butanoic acid by multi-enzyme cascades

Author information +
History +
PDF

Abstract

(R)- or (S)-2-Hydroxy-4-(methylthio)butanoic acid (HMTBA) is used as a poultry nutritional supplement and to treat renal failure disease. Herein, we report an artificially designed biocatalytic cascade process, which uses l-methionine to synthesize (R)- or (S)-HMTBA. This biocatalysis cascade comprises a basic module and two different extender modules and operates in a modular assembly manner. The basic module responsible for the transformation of l-methionine to α-keto-γ-methylthiobutyric acid (KMTB) is comprised of the l-amino acid deaminase. Two different extender modules responsible for the transformation of KMTB to (R)- or (S)-HMTBA are comprised of the R/S-specific lactate dehydrogenase in combination with the formate dehydrogenase, respectively. Engineered Escherichia coli catalysts, one containing the basic module, the other containing the one of two different extender modules, produced 97.6 g L−1 (R)-HMTBA and 96.4 g L−1 (S)-HMTBA with a yield of 96.9% and 95.8% at the large scale (1 L) using a two-stage strategy in one pot, respectively. Therefore, this biocatalytic process lays the foundation for the industrial-scale conversion of low-cost l-amino acids to corresponding high-value enantiopure chiral 2-hydroxy acids.

Keywords

(R)- or (S)-2-Hydroxy-4-(methylthio)butanoic acid / Enzyme cascades / l-Amino acid deaminase')">l-Amino acid deaminase / Lactate dehydrogenase / Modular assembly

Cite this article

Download citation ▾
Can Zhang, Wei Song, Jia Liu, Xiulai Chen, Liming Liu. Production of enantiopure (R)- or (S)-2-hydroxy-4-(methylthio)butanoic acid by multi-enzyme cascades. Bioresources and Bioprocessing, 2019, 6(1): 9 DOI:10.1186/s40643-019-0244-x

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Busto E, Richter N, Grischek B, Kroutil W. Biocontrolled formal inversion or retention of l-alpha-amino acids to enantiopure (R)- or (S)-hydroxyacids. Chem Eur J, 2014, 20: 11225-11228.

[2]

Grund AD, Millis JR, Blackburn TF, Burlingame RP, Fernando S-R (2000) Enzymatic conversion of a-hydroxynitriles to the corresponding a-hydroxyamides, acids or acid salts patent EP0972066 19 Jan 2000

[3]

Dibner JJ, Buttin P. Use of organic acids as a model to study the impact of gut microflora on nutrition and metabolism. J Appl Poultry Res, 2002, 11: 453-463.

[4]

Gao XZ, Zhang Z, Zhang Y, Li Y, Zhu H, Wang S, Li C. A newly determined member of the meso-diaminopimelate dehydrogenase family with a broad substrate spectrum. Appl Environ Microb, 2017, 83: e00476-17.

[5]

Gourinchas G, Busto E, Killinger M, Richter N, Wiltschi B, Kroutil W. A synthetic biology approach for the transformation of l-alpha-amino acids to the corresponding enantiopure (R)- or (S)-alpha-hydroxy acids. Chem Commun, 2015, 51: 2828-2831.

[6]

Groger H, Chamouleau F, Orologas N, Rollmann C, Drauz K, Hummel W, Weckbecker A, May O. Enantioselective reduction of ketones with “designer cells” at high substrate concentrations: highly efficient access to functionalized optically active alcohols”. Angew Chem Int Edit, 2006, 45: 5677-5681.

[7]

Hagiya K (2008) Process for producing 2-hydroxy-4-(methylthio)butyrate compounds and intermediates thereof patent WO2008010609 24 Jan 2008

[8]

Hossain GS, Li JH, Shin HD, Du GC, Wang M, Liu L, Chen J. One-step biosynthesis of alpha-keto-gamma-methylthiobutyric acid from l-methionine by an Escherichia coli whole-cell biocatalyst expressing an engineered l-amino acid deaminase from Proteus vulgaris. PLoS ONE, 2014, 9: e114291.

[9]

Jin LQ, Guo DJ, Li ZT, Liu ZQ, Zheng YG. Immobilization of nitrilase on bioinspired silica for efficient synthesis of 2-hydroxy-4-(methylthio)butanoic acid from 2-hydroxy-4-(methylthio)butanenitrile. J Ind Microbiol Biotechnol, 2016, 43: 585-593.

[10]

Koji H, Hiroyuki A (2009) Method for producing 2-hydroxy-4-(methylthio)butyric acid patent US2009053781 26 Feb 2009

[11]

Liu YF, Xu GC, Han RZ, Dong JJ, Ni Y. Identification of d-carbamoylase for biocatalytic cascade synthesis of d-tryptophan featuring high enantioselectivity. Bioresour Technol, 2018, 249: 720-728.

[12]

Luo ZW, Lee SY. Biotransformation of p-xylene into terephthalic acid by engineered Escherichia coli. Nat Commun, 2017, 8: 15689.

[13]

Martin-Venegas R, Brufau MT, Guerrero-Zamora AM, Mercier Y, Geraert PA, Ferrer R. The methionine precursor dl-2-hydroxy-(4-methylthio)butanoic acid protects intestinal epithelial barrier function. Food Chem, 2013, 141: 1702-1709.

[14]

Masud T, Young VR, Chapman T, Maroni BJ. Adaptive responses to very-low protein diets-the first comparison of ketoacids to essential amino-acids. Kidney Int, 1994, 45: 1182-1192.

[15]

Matsuoka K (1993) Process for producing 2-hydroxy-4-methylthiobutanoic acid patent WO9323372 25 Nov 1993

[16]

Molla G, Melis R, Pollegioni L. Breaking the mirror: l-amino acid deaminase, a novel stereoselective biocatalyst. Biotechnol Adv, 2017, 35: 657-668.

[17]

Mu WM, Yu SH, Jiang B, Li XF. Characterization of d-lactate dehydrogenase from Pediococcus acidilactici that converts phenylpyruvic acid into phenyllactic acid. Biotechnol Lett, 2012, 34: 907-911.

[18]

Olivier F-B, Philippe M, Christophe D, Dominique H (2001) Industrial scale process for the preparation of 2-hydroxy-4-methylbutyric acid using a nitrilase patent US6180359 30 Jan 2001

[19]

Parmeggiani F, Ahmed ST, Thompson MP, Weise NJ, Galman JL, Gahloth D, Dunstan MS, Leys D, Turner NJ. Single-biocatalyst synthesis of enantiopure d-arylalanines exploiting an engineered d-amino acid dehydrogenase. Adv Synth Catal, 2016, 358: 3298-3306.

[20]

Rey P, Rossi JC, Taillades J, Gros G, Nore O. Hydrolysis of nitriles using an immobilized nitrilase: applications to the synthesis of methionine hydroxy analogue derivatives. J Agric Food Chem, 2004, 52: 8155-8162.

[21]

Ruest DA, Takano M, Wolf LR (1985) Liquid 2-hydroxy-methylthiobutyric acid and process for the preparation thereof patent EP0142488 26 June 1985

[22]

Song Y, Li JH, Shin HD, Liu L, Du GC, Chen J. Biotechnological production of alpha-keto acids: current status and perspectives. Bioresour Technol, 2016, 219: 716-724.

[23]

Song W, Wang JH, Wu J, Liu J, Chen XL, Liu LM. Asymmetric assembly of high-value alpha-functionalized organic acids using a biocatalytic chiral-group-resetting process. Nat Commun, 2018, 9: 3818.

[24]

Tang X, Yang YL, Shi YH, Le GW. Comparative in vivo antioxidant capacity of dl-2-hydroxy-4- methylthiobutanoic acid (HMTBA) and dl-methionine in male mice fed a high-fat diet. J Sci Food Agr, 2011, 91: 2166-2172.

[25]

Tsuyoshi M, Masahiro K (2006) Method for producing 2-hydroxy-4-methylthiobutanoic acid patent JP2006069992 16 Mar 2006

[26]

Xu GC, Zhang LL, Ni Y. Enzymatic preparation of d-phenyllactic acid at high space-time yield with a novel phenylpyruvate reductase identified from Lactobacillus sp. CGMCC 9967. J Biotechnol, 2016, 222: 29-37.

[27]

Xue YP, Zheng YG, Zhang YQ, Sun JL, Liu ZQ, Shen YC. One-pot, single-step deracemization of 2-hydroxyacids by tandem biocatalytic oxidation and reduction. Chem Commun, 2013, 49: 10706-10708.

[28]

Xue YP, Zeng H, Jin XL, Liu ZQ, Zheng YG. Enantioselective cascade biocatalysis for deracemization of 2-hydroxy acids using a three-enzyme system. Microb Cell Fact, 2016, 15: 162.

[29]

Xue YP, Cao CH, Zheng YG. Enzymatic asymmetric synthesis of chiral amino acids. Chem Soc Rev, 2018, 47: 1516-1561.

[30]

Yao PY, Cui YF, Yu SS, Du YC, Feng JH, Wu QQ, Zhu DM. Efficient biosynthesis of (R)- or (S)-2- hydroxybutyrate from l-threonine through a synthetic biology approach. Adv Synth Catal, 2016, 358: 2923-2928.

[31]

Yu HL, Li T, Chen FF, Luo XJ, Li AT, Yang C, Zheng GW, Xu JH. Bioamination of alkane with ammonium by an artificially designed multienzyme cascade. Metab Eng, 2018, 47: 184-189.

[32]

Zhang YF, Wang Q, Hess H. Increasing enzyme cascade throughput by pH-engineering the microenvironment of individual enzymes. ACS Catal, 2017, 7: 2047-2051.

[33]

Zheng ZJ, Zhao MY, Zang Y, Zhou Y, Ouyang J. Production of optically pure l-phenyllactic acid by using engineered Escherichia coli coexpressing l-lactate dehydrogenase and formate dehydrogenase. J Biotechnol, 2015, 207: 47-51.

AI Summary AI Mindmap
PDF

150

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/