Literature DB >> 25217009

Major Role of NAD-Dependent Lactate Dehydrogenases in the Production of l-Lactic Acid with High Optical Purity by the Thermophile Bacillus coagulans.

Limin Wang1, Yumeng Cai2, Lingfeng Zhu3, Honglian Guo4, Bo Yu5.   

Abstract

Bacillus coagulans 2-6 is an excellent producer of optically pure l-lactic acid. However, little is known about the mechanism of synthesis of the highly optically pure l-lactic acid produced by this strain. Three enzymes responsible for lactic acid production-NAD-dependent l-lactate dehydrogenase (l-nLDH; encoded by ldhL), NAD-dependent d-lactate dehydrogenase (d-nLDH; encoded by ldhD), and glycolate oxidase (GOX)-were systematically investigated in order to study the relationship between these enzymes and the optical purity of lactic acid. Lactobacillus delbrueckii subsp. bulgaricus DSM 20081 (a d-lactic acid producer) and Lactobacillus plantarum subsp. plantarum DSM 20174 (a dl-lactic acid producer) were also examined in this study as comparative strains, in addition to B. coagulans. The specific activities of key enzymes for lactic acid production in the three strains were characterized in vivo and in vitro, and the levels of transcription of the ldhL, ldhD, and GOX genes during fermentation were also analyzed. The catalytic activities of l-nLDH and d-nLDH were different in l-, d-, and dl-lactic acid producers. Only l-nLDH activity was detected in B. coagulans 2-6 under native conditions, and the level of transcription of ldhL in B. coagulans 2-6 was much higher than that of ldhD or the GOX gene at all growth phases. However, for the two Lactobacillus strains used in this study, ldhD transcription levels were higher than those of ldhL. The high catalytic efficiency of l-nLDH toward pyruvate and the high transcription ratios of ldhL to ldhD and ldhL to the GOX gene provide the key explanations for the high optical purity of l-lactic acid produced by B. coagulans 2-6.
Copyright © 2014, American Society for Microbiology. All Rights Reserved.

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Year:  2014        PMID: 25217009      PMCID: PMC4249196          DOI: 10.1128/AEM.01864-14

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  30 in total

1.  Open fermentative production of L-lactic acid with high optical purity by thermophilic Bacillus coagulans using excess sludge as nutrient.

Authors:  Kedong Ma; Toshinari Maeda; Huiyan You; Yoshihito Shirai
Journal:  Bioresour Technol       Date:  2013-10-14       Impact factor: 9.642

2.  Efficient production of L-lactic acid from corncob molasses, a waste by-product in xylitol production, by a newly isolated xylose utilizing Bacillus sp. strain.

Authors:  Limin Wang; Bo Zhao; Bo Liu; Bo Yu; Cuiqing Ma; Fei Su; Dongliang Hua; Qinggang Li; Yanhe Ma; Ping Xu
Journal:  Bioresour Technol       Date:  2010-06-02       Impact factor: 9.642

3.  Relative catalytic efficiency of ldhL- and ldhD-encoded products is crucial for optical purity of lactic acid produced by lactobacillus strains.

Authors:  Zhaojuan Zheng; Binbin Sheng; Cuiqing Ma; Haiwei Zhang; Chao Gao; Fei Su; Ping Xu
Journal:  Appl Environ Microbiol       Date:  2012-02-17       Impact factor: 4.792

4.  Genome sequence of the thermophilic strain Bacillus coagulans 2-6, an efficient producer of high-optical-purity L-lactic acid.

Authors:  Fei Su; Bo Yu; Jibin Sun; Hong-Yu Ou; Bo Zhao; Limin Wang; Jiayang Qin; Hongzhi Tang; Fei Tao; Michael Jarek; Maren Scharfe; Cuiqing Ma; Yanhe Ma; Ping Xu
Journal:  J Bacteriol       Date:  2011-06-24       Impact factor: 3.490

Review 5.  Bacterial lactate dehydrogenases.

Authors:  E I Garvie
Journal:  Microbiol Rev       Date:  1980-03

6.  Bacillus sp. strain P38: an efficient producer of L-lactate from cellulosic hydrolysate, with high tolerance for 2-furfural.

Authors:  Lili Peng; Limin Wang; Chengchuan Che; Ge Yang; Bo Yu; Yanhe Ma
Journal:  Bioresour Technol       Date:  2013-09-20       Impact factor: 9.642

7.  Major role of NAD-dependent lactate dehydrogenases in aerobic lactate utilization in Lactobacillus plantarum during early stationary phase.

Authors:  Philippe Goffin; Frédérique Lorquet; Michiel Kleerebezem; Pascal Hols
Journal:  J Bacteriol       Date:  2004-10       Impact factor: 3.490

Review 8.  Biotechnological production of enantiomeric pure lactic acid from renewable resources: recent achievements, perspectives, and limits.

Authors:  Kenji Okano; Tsutomu Tanaka; Chiaki Ogino; Hideki Fukuda; Akihiko Kondo
Journal:  Appl Microbiol Biotechnol       Date:  2010-01       Impact factor: 4.813

9.  Dihydrolipoamide dehydrogenase mutation alters the NADH sensitivity of pyruvate dehydrogenase complex of Escherichia coli K-12.

Authors:  Youngnyun Kim; L O Ingram; K T Shanmugam
Journal:  J Bacteriol       Date:  2008-03-28       Impact factor: 3.490

10.  Higher thermostability of l-lactate dehydrogenases is a key factor in decreasing the optical purity of d-lactic acid produced from Lactobacillus coryniformis.

Authors:  Sol-A Gu; Chanha Jun; Jeong Chan Joo; Seil Kim; Seung Hwan Lee; Yong Hwan Kim
Journal:  Enzyme Microb Technol       Date:  2014-02-25       Impact factor: 3.493

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  16 in total

1.  NADP+-Preferring D-Lactate Dehydrogenase from Sporolactobacillus inulinus.

Authors:  Lingfeng Zhu; Xiaoling Xu; Limin Wang; Hui Dong; Bo Yu; Yanhe Ma
Journal:  Appl Environ Microbiol       Date:  2015-07-06       Impact factor: 4.792

2.  Elucidating the Role and Regulation of a Lactate Permease as Lactate Transporter in Bacillus coagulans DSM1.

Authors:  Yu Wang; Caili Zhang; Guoxia Liu; Jiansong Ju; Bo Yu; Limin Wang
Journal:  Appl Environ Microbiol       Date:  2019-07-01       Impact factor: 4.792

3.  Involvement of the two L-lactate dehydrogenase in development and pathogenicity in Fusarium graminearum.

Authors:  Wenchan Chen; Lingling Wei; Yu Zhang; Dongya Shi; Weichao Ren; Zhihui Zhang; Jin Wang; Wenyong Shao; Xiali Liu; Changjun Chen; Qingli Gao
Journal:  Curr Genet       Date:  2018-11-24       Impact factor: 3.886

4.  Rational design of engineered microbial cell surface multi-enzyme co-display system for sustainable NADH regeneration from low-cost biomass.

Authors:  Lei Han; Bo Liang; Jianxia Song; Aihua Liu
Journal:  J Ind Microbiol Biotechnol       Date:  2018-01-10       Impact factor: 3.346

5.  Utilization of D-Lactate as an Energy Source Supports the Growth of Gluconobacter oxydans.

Authors:  Binbin Sheng; Jing Xu; Yingxin Zhang; Tianyi Jiang; Sisi Deng; Jian Kong; Chao Gao; Cuiqing Ma; Ping Xu
Journal:  Appl Environ Microbiol       Date:  2015-04-10       Impact factor: 4.792

6.  Bacillus coagulans SANK 70258 suppresses Enterobacteriaceae in the microbiota of ulcerative colitis in vitro and enhances butyrogenesis in healthy microbiota.

Authors:  Kengo Sasaki; Daisuke Sasaki; Jun Inoue; Namiko Hoshi; Takayuki Maeda; Ryouichi Yamada; Akihiko Kondo
Journal:  Appl Microbiol Biotechnol       Date:  2020-03-07       Impact factor: 4.813

7.  The D-Lactate Dehydrogenase from Sporolactobacillus inulinus Also Possessing Reversible Deamination Activity.

Authors:  Lingfeng Zhu; Xiaoling Xu; Limin Wang; Hui Dong; Bo Yu
Journal:  PLoS One       Date:  2015-09-23       Impact factor: 3.240

8.  Comparative Proteomic Insights into the Lactate Responses of Halophilic Salinicoccus roseus W12.

Authors:  Hongyan Wang; Limin Wang; Han Yang; Yumeng Cai; Lifan Sun; Yanfen Xue; Bo Yu; Yanhe Ma
Journal:  Sci Rep       Date:  2015-09-11       Impact factor: 4.379

9.  Contributory roles of two l-lactate dehydrogenases for l-lactic acid production in thermotolerant Bacillus coagulans.

Authors:  Lifan Sun; Caili Zhang; Pengcheng Lyu; Yanping Wang; Limin Wang; Bo Yu
Journal:  Sci Rep       Date:  2016-11-25       Impact factor: 4.379

10.  Engineering Bacillus licheniformis as a thermophilic platform for the production of l-lactic acid from lignocellulose-derived sugars.

Authors:  Chao Li; Zhongchao Gai; Kai Wang; Liping Jin
Journal:  Biotechnol Biofuels       Date:  2017-10-11       Impact factor: 6.040

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