High-Throughput Screening Technology in Industrial Biotechnology.
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Weizhu Zeng | Likun Guo | Sha Xu | Jian Chen | Jingwen Zhou | Jian Chen | Jingwen Zhou | Sha Xu | Weizhu Zeng | Likun Guo
[1] Q. Fang,et al. Microfluidics for cell-based high throughput screening platforms - A review. , 2016, Analytica chimica acta.
[2] P. Cirino,et al. Biosensor-guided improvements in salicylate production by recombinant Escherichia coli , 2019, Microbial Cell Factories.
[3] Y. Zhuang,et al. High-throughput system for screening of high l-lactic acid-productivity strains in deep-well microtiter plates , 2016, Bioprocess and Biosystems Engineering.
[4] J. Chu,et al. Rational high-throughput screening system for high sophorolipids production in Candida bombicola by co-utilizing glycerol and glucose capacity , 2019, Bioresources and Bioprocessing.
[5] David R. Liu,et al. Methods for the directed evolution of proteins , 2015, Nature Reviews Genetics.
[6] Y. Zhuang,et al. Development of a method for efficient cost-effective screening of Aspergillus niger mutants having increased production of glucoamylase , 2017, Biotechnology Letters.
[7] D. Baker,et al. The coming of age of de novo protein design , 2016, Nature.
[8] G. Stephanopoulos,et al. Microfluidic high-throughput culturing of single cells for selection based on extracellular metabolite production or consumption , 2014, Nature Biotechnology.
[9] Julia Frunzke,et al. Adaptive laboratory evolution of Corynebacterium glutamicum towards higher growth rates on glucose minimal medium , 2017, Scientific Reports.
[10] James M. Wagner,et al. RNA-aptamers-in-droplets (RAPID) high-throughput screening for secretory phenotypes , 2017, Nature Communications.
[11] P. Peralta-Yahya,et al. GPCR-Based Chemical Biosensors for Medium-Chain Fatty Acids. , 2015, ACS synthetic biology.
[12] J. Finkelstein,et al. An accessible and high-throughput strategy of continuously monitoring apoptosis by fluorescent detection of caspase activation. , 2019, Analytical biochemistry.
[13] J. Vorholt,et al. Methanol-essential growth of Escherichia coli , 2018, Nature Communications.
[14] Jens Nielsen,et al. Construction of mini‐chemostats for high‐throughput strain characterization , 2019, Biotechnology and bioengineering.
[15] N. Chen,et al. Improvement of uridine production of Bacillus subtilis by atmospheric and room temperature plasma mutagenesis and high-throughput screening , 2017, PloS one.
[16] P. Levkin,et al. Droplet Microarrays: From Surface Patterning to High‐Throughput Applications , 2018, Advanced materials.
[17] Rashmi Kshirsagar,et al. Application of high‐throughput mini‐bioreactor system for systematic scale‐down modeling, process characterization, and control strategy development , 2015, Biotechnology progress.
[18] Y. Zhuang,et al. Mutation breeding of high avermectin B1a-producing strain by the combination of high energy carbon heavy ion irradiation and sodium nitrite mutagenesis based on high throughput screening , 2017, Biotechnology and Bioprocess Engineering.
[19] Wei Zeng,et al. Genome Shuffling of Aspergillus niger for Improving Transglycosylation Activity , 2013, Applied Biochemistry and Biotechnology.
[20] Leilei Zhu,et al. Directed evolution 2.0: improving and deciphering enzyme properties. , 2015, Chemical communications.
[21] Y. Zhuang,et al. High-Throughput System for Screening of Cephalosporin C High-Yield Strain by 48-Deep-Well Microtiter Plates , 2013, Applied Biochemistry and Biotechnology.
[22] S. Goletz,et al. A novel scale‐down mimic of perfusion cell culture using sedimentation in an automated microbioreactor (SAM) , 2019, Biotechnology progress.
[23] T. Hasunuma,et al. A new screening method for recombinant Saccharomyces cerevisiae strains based on their xylose fermentation ability measured by near infrared spectroscopy. , 2014 .
[24] H. Alper,et al. Strategies for directed and adapted evolution as part of microbial strain engineering , 2018, Journal of Chemical Technology & Biotechnology.
[25] Brandon G Wong,et al. Precise, automated control of conditions for high-throughput growth of yeast and bacteria with eVOLVER , 2018, Nature Biotechnology.
[26] Jian Chen,et al. A high-throughput screening procedure for enhancing pyruvate production in Candida glabrata by random mutagenesis , 2017, Bioprocess and Biosystems Engineering.
[27] Xin-Hui Xing,et al. Atmospheric and room temperature plasma (ARTP) as a new powerful mutagenesis tool , 2014, Applied Microbiology and Biotechnology.
[28] Jibin Sun,et al. Biosensor-Based Evolution and Elucidation of a Biosynthetic Pathway in Escherichia coli. , 2017, ACS synthetic biology.
[29] Qipeng Yuan,et al. Naringenin‐responsive riboswitch‐based fluorescent biosensor module for Escherichia coli co‐cultures , 2017, Biotechnology and bioengineering.
[30] D. Weibel,et al. Bacterial growth and adaptation in microdroplet chemostats. , 2013, Angewandte Chemie.
[31] S. Withers,et al. Directed evolution of an α1,3-fucosyltransferase using a single-cell ultrahigh-throughput screening method , 2019, Science Advances.
[32] Development of a high-throughput assay for rapid screening of butanologenic strains , 2018, Scientific Reports.
[33] Weihong Zhu,et al. High-throughput screening of high lactic acid-producing Bacillus coagulans by droplet microfluidic based flow cytometry with fluorescence activated cell sorting , 2019, RSC advances.
[34] Stavros Stavrakis,et al. High-throughput microfluidic imaging flow cytometry. , 2019, Current opinion in biotechnology.
[35] Bo Ma,et al. Ramanome technology platform for label-free screening and sorting of microbial cell factories at single-cell resolution. , 2019, Biotechnology advances.
[36] Y. Zhuang,et al. A qualitative and quantitative high-throughput assay for screening of gluconate high-yield strains by Aspergillus niger. , 2015, Journal of microbiological methods.
[37] J. Loscalzo,et al. Visualizing RNA dynamics in live cells with bright and stable fluorescent RNAs , 2019, Nature Biotechnology.
[38] X. Xing,et al. Quantitative evaluation of DNA damage and mutation rate by atmospheric and room-temperature plasma (ARTP) and conventional mutagenesis , 2015, Applied Microbiology and Biotechnology.
[39] M. Guo,et al. A novel rhodamine-based fluorescent pH probe for high-throughput screening of high-yield polymalic acid strains from random mutant libraries , 2016 .
[40] Peng Chen,et al. Microfluidics towards single cell resolution protein analysis , 2019, TrAC Trends in Analytical Chemistry.
[41] Pavel Zemánek,et al. Microfluidic Cultivation and Laser Tweezers Raman Spectroscopy of E. coli under Antibiotic Stress , 2018, Sensors.
[42] Adam M. Feist,et al. Increased production of L-serine in Escherichia coli through Adaptive Laboratory Evolution. , 2017, Metabolic engineering.
[43] F. Gao,et al. A versatile system for fast screening and isolation of Trichoderma reesei cellulase hyperproducers based on DsRed and fluorescence-assisted cell sorting , 2018, Biotechnology for Biofuels.
[44] Maximilian Ccjc Ebert,et al. Computational tools for enzyme improvement: why everyone can - and should - use them. , 2017, Current opinion in chemical biology.
[45] James M. Wagner,et al. A comparative analysis of single cell and droplet-based FACS for improving production phenotypes: Riboflavin overproduction in Yarrowia lipolytica. , 2018, Metabolic engineering.
[46] Michael Bott,et al. A high-throughput approach to identify genomic variants of bacterial metabolite producers at the single-cell level , 2012, Genome Biology.
[47] Farren J. Isaacs,et al. Precise Editing at DNA Replication Forks Enables Multiplex Genome Engineering in Eukaryotes , 2017, Cell.
[48] J. Marty,et al. Optical and Electrochemical Sensors and Biosensors for the Detection of Quinolones. , 2019, Trends in biotechnology.
[49] R. Takors,et al. Continuous Adaptive Evolution of a Fast-Growing Corynebacterium glutamicum Strain Independent of Protocatechuate , 2019, Front. Microbiol..
[50] Min-Kyu Oh,et al. A synthetic suicide riboswitch for the high-throughput screening of metabolite production in Saccharomyces cerevisiae. , 2015, Metabolic engineering.
[51] Jay D Keasling,et al. CasEMBLR: Cas9-Facilitated Multiloci Genomic Integration of in Vivo Assembled DNA Parts in Saccharomyces cerevisiae. , 2015, ACS synthetic biology.
[52] X. Xing,et al. Novel mutation breeding method for Streptomyces avermitilis using an atmospheric pressure glow discharge plasma , 2010, Journal of applied microbiology.
[53] Tuncay Alan,et al. Droplet control technologies for microfluidic high throughput screening (μHTS). , 2017, Lab on a chip.
[54] Yuanfa Liu,et al. Enhanced arachidonic acid production from Mortierella alpina combining atmospheric and room temperature plasma (ARTP) and diethyl sulfate treatments. , 2015, Bioresource technology.
[55] J. Kalinowski,et al. Biosensor-driven adaptive laboratory evolution of l-valine production in Corynebacterium glutamicum. , 2015, Metabolic engineering.
[56] Jianghua Li,et al. A high-throughput screening procedure for enhancing α-ketoglutaric acid production in Yarrowia lipolytica by random mutagenesis , 2015 .
[57] Jingche Chen,et al. High-Throughput Biochemical Fingerprinting of Oleaginous Aurantiochytrium sp. Strains by Fourier Transform Infrared Spectroscopy (FT-IR) for Lipid and Carbohydrate Productions , 2019, Molecules.
[58] Zhenghong Xu,et al. Integration of ARTP mutagenesis with biosensor-mediated high-throughput screening to improve l-serine yield in Corynebacterium glutamicum , 2018, Applied Microbiology and Biotechnology.
[59] S. Panke,et al. Optimization of a whole-cell biocatalyst by employing genetically encoded product sensors inside nanolitre reactors. , 2015, Nature chemistry.
[60] J. Keasling,et al. High-throughput enzyme screening platform for the IPP-bypass mevalonate pathway for isopentenol production. , 2017, Metabolic engineering.
[61] Mark Dörr,et al. Fully automatized high‐throughput enzyme library screening using a robotic platform , 2016, Biotechnology and bioengineering.
[62] Dana C Nadler,et al. Rapid construction of metabolite biosensors using domain-insertion profiling , 2016, Nature Communications.
[63] Chong Zhang,et al. Gel microdroplet-based high-throughput screening for directed evolution of xylanase-producing Pichia pastoris. , 2019, Journal of bioscience and bioengineering.
[64] R. Kennedy,et al. High-Throughput Nanoelectrospray Ionization-Mass Spectrometry Analysis of Microfluidic Droplet Samples. , 2019, Analytical chemistry.
[65] Jiangning Song,et al. Significantly improving the yield of recombinant proteins in Bacillus subtilis by a novel powerful mutagenesis tool (ARTP): Alkaline α-amylase as a case study. , 2015, Protein expression and purification.
[66] Carla Eiras,et al. Electrochemical sensors and biosensors for the analysis of antineoplastic drugs. , 2018, Biosensors & bioelectronics.
[67] Alex Toftgaard Nielsen,et al. CRMAGE: CRISPR Optimized MAGE Recombineering , 2016, Scientific Reports.
[68] L. Blum,et al. High‐Throughput Electrochemical Screening Assay for Free and Immobilized Oxidases: Electrochemiluminescence and Intermittent Pulse Amperometry , 2017 .
[69] Elizabeth Brunk,et al. Adaptive laboratory evolution resolves energy depletion to maintain high aromatic metabolite phenotypes in Escherichia coli strains lacking the Phosphotransferase System. , 2018, Metabolic engineering.
[70] Jae Sung Cho,et al. A comprehensive metabolic map for production of bio-based chemicals , 2019, Nature Catalysis.
[71] Anja Boisen,et al. Surface Enhanced Raman Scattering for Quantification of p-Coumaric Acid Produced by Escherichia coli. , 2017, Analytical chemistry.
[72] Dandan Xiong,et al. Improving key enzyme activity in phenylpropanoid pathway with a designed biosensor. , 2017, Metabolic engineering.
[73] Jafar Mosafer,et al. Aptasensors as a new sensing technology developed for the detection of MUC1 mucin: A review. , 2019, Biosensors & bioelectronics.
[74] P. He,et al. Genome shuffling of the nonconventional yeast Pichia anomala for improved sugar alcohol production , 2015, Microbial Cell Factories.
[75] Karen M Polizzi,et al. Sense and sensitivity in bioprocessing-detecting cellular metabolites with biosensors. , 2017, Current opinion in chemical biology.
[76] J. Nielsen,et al. DCEO Biotechnology: Tools To Design, Construct, Evaluate, and Optimize the Metabolic Pathway for Biosynthesis of Chemicals. , 2018, Chemical reviews.
[77] Michael D Leavell,et al. High-throughput screening for improved microbial cell factories, perspective and promise. , 2020, Current opinion in biotechnology.
[78] Weizhu Zeng,et al. Integrating enzyme evolution and high-throughput screening for efficient biosynthesis of l-DOPA , 2019, Journal of Industrial Microbiology & Biotechnology.
[79] Wen‐jian Li,et al. A high-throughput screening method for breeding Aspergillus niger with 12C6+ ion beam-improved cellulase , 2016 .
[80] Nancy Kelley-Loughnane,et al. Deconstructing Cell-Free Extract Preparation for in Vitro Activation of Transcriptional Genetic Circuitry. , 2018, ACS synthetic biology.
[81] Huimin Yu,et al. A novel high-throughput and quantitative method based on visible color shifts for screening Bacillus subtilis THY-15 for surfactin production , 2015, Journal of Industrial Microbiology & Biotechnology.
[82] J. Chen,et al. Recent advances of microbial breeding via heavy‐ion mutagenesis at IMP , 2017, Letters in applied microbiology.
[83] Shuai Qian,et al. Screening for enhanced triacetic acid lactone production by recombinant Escherichia coli expressing a designed triacetic acid lactone reporter. , 2013, Journal of the American Chemical Society.
[84] Shangtian Yang,et al. Simultaneous cell disruption and semi-quantitative activity assays for high-throughput screening of thermostable L-asparaginases , 2018, Scientific Reports.
[85] Gita Naseri,et al. COMPASS for rapid combinatorial optimization of biochemical pathways based on artificial transcription factors , 2019, Nature Communications.
[86] L. Eggeling,et al. Novel screening methods--biosensors. , 2015, Current opinion in biotechnology.
[87] Huimin Zhao,et al. Automated multiplex genome-scale engineering in yeast , 2017, Nature Communications.
[88] Chong Zhang,et al. In vivo continuous evolution of metabolic pathways for chemical production , 2019, Microbial Cell Factories.
[89] Thomas Eng,et al. Engineering Robust Production Microbes for Large-Scale Cultivation. , 2019, Trends in microbiology.
[90] H. Alper,et al. An evolutionary metabolic engineering approach for enhancing lipogenesis in Yarrowia lipolytica. , 2015, Metabolic engineering.
[91] Adam M. Feist,et al. Adaptive laboratory evolution of tolerance to dicarboxylic acids in Saccharomyces cerevisiae. , 2019, Metabolic engineering.
[92] J. Radich,et al. A Fluorescence-Activated Single-Droplet Dispenser for High Accuracy Single-Droplet and Single-Cell Sorting and Dispensing. , 2019, Analytical chemistry.
[93] B. Zhu,et al. Engineering a vitamin B12 high-throughput screening system by riboswitch sensor in Sinorhizobium meliloti , 2018, BMC Biotechnology.
[94] J. Glassey,et al. Scale‐Down Model Development in ambr systems: An Industrial Perspective , 2018, Biotechnology journal.
[95] Lorenz M Mayr,et al. Novel trends in high-throughput screening. , 2009, Current opinion in pharmacology.
[96] R. Fischer,et al. Development of GFP-based high-throughput screening system for directed evolution of glucose oxidase. , 2019, Journal of bioscience and bioengineering.
[97] Y. Zhuang,et al. A high-throughput screening strategy for accurate quantification of erythromycin , 2013 .
[98] Byung-Kwan Cho,et al. Adaptive laboratory evolution of a genome-reduced Escherichia coli , 2019, Nature Communications.
[99] Yiling Hu,et al. Developing a colorimetric assay for Fe(II)/2-oxoglutarate-dependent dioxygenase. , 2018, Analytical biochemistry.
[100] Deconvolution of Luminescence Cross-Talk in High-Throughput Gene Expression Profiling. , 2019, ACS synthetic biology.
[101] Ali Mohsin,et al. Combinatorial Effect of ARTP Mutagenesis and Ribosome Engineering on an Industrial Strain of Streptomyces albus S12 for Enhanced Biosynthesis of Salinomycin , 2019, Front. Bioeng. Biotechnol..
[102] Mattheos A. G. Koffas,et al. Metabolic engineering of Corynebacterium glutamicum for anthocyanin production , 2018, Microbial Cell Factories.
[103] R. Fischer,et al. Flow cytometry-based ultra-high-throughput screening assay for cellulase activity. , 2013, Analytical biochemistry.
[104] Hongwei Yu,et al. Alleviation of metabolic bottleneck by combinatorial engineering enhanced astaxanthin synthesis in Saccharomyces cerevisiae. , 2017, Enzyme and microbial technology.
[105] Ping Zheng,et al. Developing a high-throughput screening method for threonine overproduction based on an artificial promoter , 2015, Microbial Cell Factories.
[106] Q. Hu,et al. Raman-Activated Droplet Sorting (RADS) for Label-Free High-Throughput Screening of Microalgal Single-Cells. , 2017, Analytical chemistry.
[107] K. Gernaey,et al. An Industrial Perspective on Scale-Down Challenges Using Miniaturized Bioreactors. , 2019, Trends in Biotechnology.
[108] Ru Zang,et al. High-throughput screening of high-yield colonies of Rhizopus oryzae for enhanced production of fumaric acid , 2010, Annals of Microbiology.
[109] X. Xing,et al. Microbial microdroplet culture system (MMC): an integrated platform for automated, high–throughput microbial cultivation and adaptive evolution , 2019, bioRxiv.
[110] Po-Hsun Huang,et al. Standing Surface Acoustic Wave (SSAW)-Based Fluorescence-Activated Cell Sorter. , 2018, Small.
[111] Zhiwei Luo,et al. Improving hydrogen production of Chlamydomonas reinhardtii by reducing chlorophyll content via atmospheric and room temperature plasma. , 2019, Bioresource technology.
[112] M. Lässig,et al. Survival of the simplest in microbial evolution , 2018, Nature Communications.
[113] Jay D Keasling,et al. Programming adaptive control to evolve increased metabolite production , 2013, Nature Communications.
[114] R. Garlick,et al. Complement C5a receptor assay for high throughput screening. , 1991, Journal of receptor research.
[115] Y. Ma,et al. A double‐enzyme‐coupled assay for high‐throughput screening of succinic acid‐producing strains , 2013, Journal of applied microbiology.
[116] R. Goodacre,et al. Label-Free Surface Enhanced Raman Scattering Approach for High-Throughput Screening of Biocatalysts. , 2016, Analytical chemistry.
[117] Ameeta Ravikumar,et al. Mutants of Yarrowia lipolytica NCIM 3589 grown on waste cooking oil as a biofactory for biodiesel production , 2017, Microbial Cell Factories.
[118] Jürgen Popp,et al. High-Throughput Screening Raman Spectroscopy Platform for Label-Free Cellomics. , 2017, Analytical chemistry.
[119] W. Luo,et al. Mutation Breeding of Lycopene-Producing Strain Blakeslea Trispora by a Novel Atmospheric and Room Temperature Plasma (ARTP) , 2014, Applied Biochemistry and Biotechnology.
[120] Alexander Grünberger,et al. Taking control over control: use of product sensing in single cells to remove flux control at key enzymes in biosynthesis pathways. , 2014, ACS synthetic biology.
[121] N. Chen,et al. GREACE-assisted adaptive laboratory evolution in endpoint fermentation broth enhances lysine production by Escherichia coli , 2019, Microbial Cell Factories.
[122] Y. Chisti,et al. Genetic and metabolic engineering for microbial production of poly-γ-glutamic acid. , 2018, Biotechnology advances.
[123] M. Wang,et al. Development of a Synthetic Malonyl-CoA Sensor in Saccharomyces cerevisiae for Intracellular Metabolite Monitoring and Genetic Screening. , 2015, ACS synthetic biology.
[124] Y. Yao,et al. Efficient molecular evolution to generate enantioselective enzymes using a dual-channel microfluidic droplet screening platform , 2018, Nature Communications.
[125] Shenghu Zhou,et al. Obtaining a Panel of Cascade Promoter-5'-UTR Complexes in Escherichia coli. , 2017, ACS synthetic biology.
[126] S. Lee,et al. Systems strategies for developing industrial microbial strains , 2015, Nature Biotechnology.
[127] P. Unrean,et al. High-Throughput Screening and Dual Feeding Fed-Batch Strategy for Enhanced Single-Cell Oil Accumulation in Yarrowia lipolytica , 2017, BioEnergy Research.
[128] Yan Wang,et al. Evolving the l-lysine high-producing strain of Escherichia coli using a newly developed high-throughput screening method , 2016, Journal of Industrial Microbiology & Biotechnology.
[129] Jingwen Zhou,et al. Enhanced avermectin production by Streptomyces avermitilis ATCC 31267 using high-throughput screening aided by fluorescence-activated cell sorting , 2017, Applied Microbiology and Biotechnology.
[130] Jingwen Zhou,et al. Engineering of an H2O2 auto‐scavenging in vivo cascade for pinoresinol production , 2017, Biotechnology and bioengineering.
[131] Hal S Alper,et al. Enabling tools for high-throughput detection of metabolites: Metabolic engineering and directed evolution applications. , 2017, Biotechnology advances.
[132] Andrew D Griffiths,et al. Droplet-based microfluidic high-throughput screening of heterologous enzymes secreted by the yeast Yarrowia lipolytica , 2017, Microbial Cell Factories.
[133] P. R. Jensen,et al. Finding the Needle in the Haystack—the Use of Microfluidic Droplet Technology to Identify Vitamin-Secreting Lactic Acid Bacteria , 2017, mBio.
[134] Adam M. Feist,et al. A Model for Designing Adaptive Laboratory Evolution Experiments , 2017, Applied and Environmental Microbiology.
[135] Jennifer R Cochran,et al. High-throughput screening technologies for enzyme engineering. , 2017, Current opinion in biotechnology.
[136] Catherine Picart,et al. Automated Buildup of Biomimetic Films in Cell Culture Microplates for High‐Throughput Screening of Cellular Behaviors , 2018, Advanced materials.
[137] E. Gwinn,et al. Adaptation of a visible wavelength fluorescence microplate reader for discovery of near-infrared fluorescent probes. , 2018, The Review of scientific instruments.
[138] Huijun Zou,et al. Adaptive Evolution Relieves Nitrogen Catabolite Repression and Decreases Urea Accumulation in Cultures of the Chinese Rice Wine Yeast Strain Saccharomyces cerevisiae XZ-11. , 2018, Journal of agricultural and food chemistry.
[139] H. Soejima,et al. Unbiased shRNA screening, using a combination of FACS and high-throughput sequencing, enables identification of novel modifiers of Polycomb silencing , 2018, Scientific Reports.
[140] Binayak Raj Pandey,et al. Isolation, growth, enzyme assay and identification via 16S rRNA full sequencing of cellulolytic microbes from Nepal for biofuel production , 2019, Renewable Energy.
[141] N. Afseth,et al. Fourier transform infrared spectroscopy for the prediction of fatty acid profiles in Mucor fungi grown in media with different carbon sources , 2014, Microbial Cell Factories.
[142] A. Kohler,et al. FTIR spectroscopy as a unified method for simultaneous analysis of intra- and extracellular metabolites in high-throughput screening of microbial bioprocesses , 2017, Microbial Cell Factories.
[143] Zhi-Ming Zheng,et al. A high-throughput screening strategy for accurate quantification of menaquinone based on fluorescence-activated cell sorting , 2016, Journal of Industrial Microbiology & Biotechnology.
[144] Feng Cheng,et al. Transcription Factor‐Based Biosensors in High‐Throughput Screening: Advances and Applications , 2018, Biotechnology journal.
[145] G. Du,et al. Characterization of mutants of a tyrosine ammonia-lyase from Rhodotorula glutinis , 2016, Applied Microbiology and Biotechnology.
[146] D. Hilvert,et al. Ultrahigh-throughput screening enables efficient single-round oxidase remodelling , 2019, Nature Catalysis.
[147] Yanhe Ma,et al. Directed Evolution and Structural Analysis of Alkaline Pectate Lyase from the Alkaliphilic Bacterium Bacillus sp. Strain N16-5 To Improve Its Thermostability for Efficient Ramie Degumming , 2015, Applied and Environmental Microbiology.
[148] Sang Woo Seo,et al. Design and optimization of genetically encoded biosensors for high-throughput screening of chemicals. , 2018, Current opinion in biotechnology.
[149] Xiaomei Lv,et al. Combining Gal4p-mediated expression enhancement and directed evolution of isoprene synthase to improve isoprene production in Saccharomyces cerevisiae. , 2017, Metabolic engineering.
[150] Wen‐jian Li,et al. Enhanced production of l‐lactic acid by Lactobacillus thermophilus SRZ50 mutant generated by high‐linear energy transfer heavy ion mutagenesis , 2018, Engineering in life sciences.
[151] Ali Mohsin,et al. Application of 8-parallel micro-bioreactor system with non-invasive optical pH and DO biosensor in high-throughput screening of l-lactic acid producing strain , 2018, Bioresources and Bioprocessing.
[152] Hal S Alper,et al. Biosensor‐Enabled Directed Evolution to Improve Muconic Acid Production in Saccharomyces cerevisiae , 2017, Biotechnology journal.
[153] Long Chen,et al. Highly improved acarbose production of Actinomyces through the combination of ARTP and penicillin susceptible mutant screening , 2017, World journal of microbiology & biotechnology.
[154] K. Kurabayashi,et al. Syntrophic co-culture amplification of production phenotype for high-throughput screening of microbial strain libraries. , 2019, Metabolic engineering.
[155] M. Sommer,et al. Overcoming genetic heterogeneity in industrial fermentations , 2019, Nature Biotechnology.
[156] Yasuaki Einaga,et al. Toward high-throughput screening of NAD(P)-dependent oxidoreductases using boron-doped diamond microelectrodes and microfluidic devices. , 2014, Analytical chemistry.
[157] Shenghu Zhou,et al. Fine‐tuning the (2S)‐naringenin synthetic pathway using an iterative high‐throughput balancing strategy , 2019, Biotechnology and bioengineering.