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Limin Wang
Life Science
University of Chinese Academy of Sciences
Beijing
Language: Chinese, English, German
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Industrial Microbiology: Fermentation Bioprocessing Microbial Production Industrial Enzymes Biocatalysis Metabolic Pathways Microbial Strains Bioreactors Bioengineering Bioproducts Microbial Enzymology: Enzyme Activity Enzyme Kinetics Enzyme Structure Enzyme Function Enzyme Engineering Enzyme Applications Microbial Enzymes Enzyme Production Enzyme Purification Enzyme Regulation Systems Metabolic Engineering: Metabolic Networks Metabolic Flux Genetic Engineering Synthetic Biology Metabolic Modeling Pathway Optimization Metabolic Regulation Systems Biology Metabolic Engineering Bioinformatics
Areas of Focus
  • Industrial Microbiology
  • Microbial Enzymology
  • Systems Metabolic Engineering
Work Experience
  • 2013-10~2014-10 - Max Planck Institute of Biophysics, Germany - Visiting Scholar
  • 2011-07~Present - Institute of Microbiology, Chinese Academy of Sciences - Associate Researcher
  • 2007-07~2011-07 - Institute of Microbiology, Chinese Academy of Sciences - Assistant Researcher
Academic Background & Achievements
  • 2004-09--2007-06 PhD: Chinese Academy of Agricultural Sciences
  • 2001-09--2004-06 Master's: China Agricultural University
  • 1997-09--2001-06 Bachelor's: Tianjin University of Commerce
Publications
  • Design and optimization of β-poly-L-lysine with specific functions for diverse applications, Not mentioned, 2024
  • Using transporter to enhance the acid tolerance of Bacillus coagulans DSM1, Not mentioned, 2023
  • Development of a conjugation-based genome editing system in an undomesticated Bacillus subtilis strain for poly-γ-glutamic acid production with diverse molecular masses, Not mentioned, 2023
  • L-Lactic acid production via sustainable neutralizer-free route by engineering acid-tolerant yeast Pichia kudriavzevii, Not mentioned, 2023
  • Poly-γ-glutamic acid: Recent achievements, diverse applications and future perspectives, Not mentioned, 2022
  • Efficient molasses utilization for low-molecular-weight poly-γ-glutamic acid production using a novel Bacillus subtilis strain, Not mentioned, 2022
  • A Review of the Recent Developments in the Bioproduction of Polylactic Acid and Its Precursors Optically Pure Lactic Acids, Not mentioned, 2021
  • Biosynthesis of different molecular weight γ-polyglutamic acid, Not mentioned, 2021
  • Extracellular production of active-form Streptomyces mobaraensis transglutaminase in Bacillus subtilis, Not mentioned, 2020
  • Extracellular production of Streptomyces ladakanum transglutaminase in a food-grade strain, Bacillus subtilis, Not mentioned, 2020
  • Elucidating the Role and Regulation of a Lactate Permease as Lactate Transporter in Bacillus coagulans DSM1, Not mentioned, 2019
  • Structural properties of the peroxiredoxin ahpc2 from the hyperthermophilic eubacterium aquifex aeolicus, Not mentioned, 2018
  • Biotechnological routes for transglutaminase production: Recent achievements, perspectives and limits, Not mentioned, 2018
  • Simultaneous consumption of cellobiose and xylose by Bacillus coagulans to circumvent glucose repression and identification of its cellobiose-assimilating operons, Not mentioned, 2018
  • Non-sterilized fermentation of high optically pure d-lactic acid by a genetically modified thermophilic Bacillus coagulans strain, Not mentioned, 2017
  • Regulation of stereochemical composition of poly-γ-glutamic acids produced by Bacillus licheniformis within various Mn2+ concentration, Not mentioned, 2017
  • Biosynthesis of the High-Value Plant Secondary Product Benzyl Isothiocyanate via Functional Expression of Multiple Heterologous Enzymes in Escherichia coli, Not mentioned, 2016
  • Fermentative production of enantiomerically pure S-1,2-propanediol from glucose by engineered E. coli strain, Not mentioned, 2016
  • Diammonium phosphate stimulates transcription of l-lactate dehydrogenase leading to increased l-lactate production in the thermotolerant bacillus coagulans strain, Not mentioned, 2016
  • Contributory roles of two l-lactate dehydrogenases for l-lactic acid production in thermotolerant Bacillus coagulans, Not mentioned, 2016
  • Efficient production of enantiomerically pure d-phenyllactate from phenylpyruvate by structure-guided design of an engineered d-lactate dehydrogenase, Not mentioned, 2016
  • NADP+-preferring D-lactate dehydrogenase from Sporolactobacillus inulinus, Not mentioned, 2015
  • Comparative Proteomic Insights into the Lactate Responses of Halophilic Salinicoccus roseus W12, Not mentioned, 2015
  • The D-Lactate Dehydrogenase from Sporolactobacillus inulinus Also Possessing Reversible Deamination Activity, Not mentioned, 2015
  • Efficient Open Fermentative Production of Polymer-Grade L-Lactate from Sugarcane Bagasse Hydrolysate by Thermotolerant Bacillus sp Strain P38, Not mentioned, 2014
  • Major Role of NAD-Dependent Lactate Dehydrogenases in the Production of l-Lactic Acid with High Optical Purity by the Thermophile Bacillus coagulans, Not mentioned, 2014
  • Recent developments in L-lactate fermentation by genetically modified microorganisms, Not mentioned, 2013
  • Efficient production of polymer-grade d-lactate by Sporolactobacillus laevolacticus DSM442 with agricultural waste cottonseed as the sole nitrogen source, Not mentioned, 2013
  • Trends in polymer-grade L-lactic acid fermentation by non-food biomass, Not mentioned, 2013
  • Efficient production of polymer-grade l-lactate by an alkaliphilic Exiguobacterium sp. strain under nonsterile open fermentation conditions, Not mentioned, 2013
  • Bacillus sp. strain P38: An efficient producer of l-lactate from cellulosic hydrolysate, with high tolerance for 2-furfural, Not mentioned, 2013
  • Escherichia coli transcription termination factor NusA: heat-induced oligomerization and chaperone activity, Not mentioned, 2013
  • Jerusalem artichoke powder: A useful material in producing high-optical-purity l-lactate using an efficient sugar-utilizing thermophilic Bacillus coagulans strain, Not mentioned, 2013
  • Transcription Elongation Factor GreA Has Functional Chaperone Activity, Not mentioned, 2012
  • Efficient production of polymer-grade L-lactic acid from corn stover hydrolyzate by thermophilic Bacillus sp. strain XZL4, Not mentioned, 2012
  • Genome Sequence of the Thermophilic StrainBacillus coagulans 2-6, an Efficient Producer of High-Optical-PurityL-Lactic Acid, Not mentioned, 2011
  • Highly efficient production of D-lactate by Sporolactobacillus sp. CASD with simultaneous enzymatic hydrolysis of peanut meal, Not mentioned, 2011
  • Genome Sequence of Lactobacillus rhamnosus Strain CASL, an Efficient l-Lactic Acid Producer from Cheap Substrate Cassava, Not mentioned, 2011
  • Draft Genome Sequence of Sporolactobacillus inulinus Strain CASD, an Efficient d-Lactic Acid-Producing Bacterium with High-Concentration Lactate Tolerance Capability, Not mentioned, 2011
  • Efficient production of L-lactic acid from cassava powder by Lactobacillus rhamnosus, Not mentioned, 2010
  • Kinetics of D-lactic acid production by Sporolactobacillus sp strain CASD using repeated batch fermentation, Not mentioned, 2010
  • Repeated open fermentative production of optically pure L-lactic acid using a thermophilic Bacillus sp strain, Not mentioned, 2010
  • 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, Not mentioned, 2010
  • Isolation and Purification of Linoleate Isomerase from P. freudenreichii ssp. shermanii and L. plantarum, Not mentioned, 2009
  • Non-Sterilized Fermentative Production of Polymer-Grade L-Lactic Acid by a Newly Isolated Thermophilic Strain Bacillus sp. 2-6, Not mentioned, 2009
Awards
  • Technical Invention First Prize (2011): Ministry-level
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