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Development of a metabolic engineering technology to simultaneously suppress the expression of multiple genes in yeast and application in carotenoid production.
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- World Journal of Microbiology & Biotechnology, 2024, v. 40, n. 7, p. 1, doi. 10.1007/s11274-024-04034-7
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Induction of point and structural mutations in engineered yeast Saccharomyces cerevisiae improve carotenoid production.
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- World Journal of Microbiology & Biotechnology, 2024, v. 40, n. 7, p. 1, doi. 10.1007/s11274-024-04037-4
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Improvement of cell growth in green algae Chlamydomonas reinhardtii through co-cultivation with yeast Saccharomyces cerevisiae.
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- Biotechnology Letters, 2024, v. 46, n. 3, p. 431, doi. 10.1007/s10529-024-03483-2
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UV mutagenesis improves growth potential of green algae in a green algae–yeast co-culture system.
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- Archives of Microbiology, 2024, v. 206, n. 2, p. 1, doi. 10.1007/s00203-023-03796-2
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Building a machine‐learning model to predict optimal mevalonate pathway gene expression levels for efficient production of a carotenoid in yeast.
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- Biotechnology Journal, 2024, v. 19, n. 1, p. 1, doi. 10.1002/biot.202300285
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Identification of genes responsible for absorbing palladium ion in Escherichia coli.
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- Bioscience, Biotechnology & Biochemistry, 2023, v. 87, n. 5, p. 569, doi. 10.1093/bbb/zbad021
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Construction of a machine-learning model to predict the optimal gene expression level for efficient production of d-lactic acid in yeast.
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- World Journal of Microbiology & Biotechnology, 2023, v. 39, n. 3, p. 1, doi. 10.1007/s11274-022-03515-x
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Promoting cell growth and characterizing partial symbiotic relationships in the co‐cultivation of green alga Chlamydomonas reinhardtii and Escherichia coli.
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- Biotechnology Journal, 2023, v. 18, n. 2, p. 1, doi. 10.1002/biot.202200099
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Age Should Not Matter: Towards More Accurate Pedestrian Detection via Self-Training †.
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- Computer Sciences & Mathematics Forum, 2022, v. 3, p. 11, doi. 10.3390/cmsf2022003011
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Pre-Training Without Natural Images.
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- International Journal of Computer Vision, 2022, v. 130, n. 4, p. 990, doi. 10.1007/s11263-021-01555-8
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Bioengineering for the industrial production of 2,3-butanediol by the yeast, Saccharomyces cerevisiae.
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- World Journal of Microbiology & Biotechnology, 2022, v. 38, n. 3, p. 1, doi. 10.1007/s11274-021-03224-x
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Improving carotenoid production in recombinant yeast, Saccharomyces cerevisiae, using ultrasound‐irradiated two‐phase extractive fermentation.
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- Engineering in Life Sciences, 2022, v. 22, n. 1, p. 4, doi. 10.1002/elsc.202100051
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- Article
Improvement of lactic acid tolerance by cocktail δ-integration strategy and identification of the transcription factor PDR3 responsible for lactic acid tolerance in yeast Saccharomyces cerevisiae.
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- World Journal of Microbiology & Biotechnology, 2021, v. 37, n. 2, p. 1, doi. 10.1007/s11274-020-02977-1
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Construction of lactic acid-tolerant Saccharomyces cerevisiae by using CRISPR-Cas-mediated genome evolution for efficient d-lactic acid production.
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- Applied Microbiology & Biotechnology, 2020, v. 104, n. 21, p. 9147, doi. 10.1007/s00253-020-10906-3
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Construction of yeast producing patchoulol by global metabolic engineering strategy.
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- Biotechnology & Bioengineering, 2020, v. 117, n. 5, p. 1348, doi. 10.1002/bit.27284
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Chemical treatments for modification and immobilization to improve the solvent-stability of lipase.
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- World Journal of Microbiology & Biotechnology, 2019, v. 35, n. 12, p. 1, doi. 10.1007/s11274-019-2777-8
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- Article
Rhodium‐Catalyzed C−H Activation Enabled by an Indium Metalloligand.
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- Angewandte Chemie, 2019, v. 131, n. 48, p. 17411, doi. 10.1002/ange.201910197
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- Article
Rhodium‐Catalyzed C−H Activation Enabled by an Indium Metalloligand.
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- Angewandte Chemie International Edition, 2019, v. 58, n. 48, p. 17251, doi. 10.1002/anie.201910197
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Improved Stress Tolerance of Saccharomyces cerevisiae by CRISPR-Cas-Mediated Genome Evolution.
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- Applied Biochemistry & Biotechnology, 2019, v. 189, n. 3, p. 810, doi. 10.1007/s12010-019-03040-y
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CRISPR system in the yeast Saccharomyces cerevisiae and its application in the bioproduction of useful chemicals.
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- World Journal of Microbiology & Biotechnology, 2019, v. 35, n. 7, p. N.PAG, doi. 10.1007/s11274-019-2688-8
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Toward the construction of a technology platform for chemicals production from methanol: D-lactic acid production from methanol by an engineered yeast Pichia pastoris.
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- World Journal of Microbiology & Biotechnology, 2019, v. 35, n. 2, p. 1, doi. 10.1007/s11274-019-2610-4
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Secretory Overexpression of Bacillus thermocatenulatus Lipase in Saccharomyces cerevisiae Using Combinatorial Library Strategy.
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- Biotechnology Journal, 2018, v. 13, n. 8, p. 1, doi. 10.1002/biot.201700409
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Rapid and stable production of 2,3-butanediol by an engineered <italic>Saccharomyces cerevisiae</italic> strain in a continuous airlift bioreactor.
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- Journal of Industrial Microbiology & Biotechnology, 2018, v. 45, n. 5, p. 305, doi. 10.1007/s10295-018-2033-5
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Enhanced d-lactic acid production by recombinant Saccharomyces cerevisiae following optimization of the global metabolic pathway.
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- Biotechnology & Bioengineering, 2017, v. 114, n. 9, p. 2075, doi. 10.1002/bit.26330
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Direct Ethanol Production from Ionic Liquid-Pretreated Lignocellulosic Biomass by Cellulase-Displaying Yeasts.
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- Applied Biochemistry & Biotechnology, 2017, v. 182, n. 1, p. 229, doi. 10.1007/s12010-016-2322-2
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Eudistomin C, an Antitumor and Antiviral Natural Product, Targets 40S Ribosome and Inhibits Protein Translation.
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- ChemBioChem, 2016, v. 17, n. 17, p. 1616, doi. 10.1002/cbic.201600075
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Total Synthesis of (−)-Daphenylline.
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- Angewandte Chemie, 2016, v. 128, n. 20, p. 6171, doi. 10.1002/ange.201601958
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Total Synthesis of (−)-Daphenylline.
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- Angewandte Chemie International Edition, 2016, v. 55, n. 20, p. 6067, doi. 10.1002/anie.201601958
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Random mutagenesis and selection of organic solvent-stable haloperoxidase from Streptomyces aureofaciens.
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- Biotechnology Progress, 2015, v. 31, n. 4, p. 917, doi. 10.1002/btpr.2117
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Effective saccharification of kraft pulp by using a cellulase cocktail prepared from genetically engineered Aspergillus oryzae.
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- Bioscience, Biotechnology & Biochemistry, 2015, v. 79, n. 6, p. 1034, doi. 10.1080/09168451.2015.1006568
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Aspergillus oryzae-based cell factory for direct kojic acid production from cellulose.
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- Microbial Cell Factories, 2014, v. 13, n. 1, p. 1, doi. 10.1186/1475-2859-13-71
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Synergetic effect of yeast cell-surface expression of cellulase and expansin-like protein on direct ethanol production from cellulose.
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- Microbial Cell Factories, 2013, v. 12, n. 1, p. 1, doi. 10.1186/1475-2859-12-66
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Display of active beta-glucosidase on the surface of Schizosaccharomyces pombe cells using novel anchor proteins.
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- Applied Microbiology & Biotechnology, 2013, v. 97, n. 10, p. 4343, doi. 10.1007/s00253-013-4733-0
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Biogenic synthesis and characterization of gold nanoparticles by Escherichia coli K12 and its heterogeneous catalysis in degradation of 4-nitrophenol.
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- Nanoscale Research Letters, 2013, v. 8, n. 2, p. 1, doi. 10.1186/1556-276X-8-70
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Recent developments in yeast cell surface display toward extended applications in biotechnology.
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- Applied Microbiology & Biotechnology, 2012, v. 95, n. 3, p. 577, doi. 10.1007/s00253-012-4175-0
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Improvements in ethanol production from xylose by mating recombinant xylose-fermenting Saccharomyces cerevisiae strains.
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- Applied Microbiology & Biotechnology, 2012, v. 94, n. 6, p. 1585, doi. 10.1007/s00253-012-3914-6
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Direct ethanol production from cassava pulp using a surface-engineered yeast strain co-displaying two amylases, two cellulases, and β-glucosidase.
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- Applied Microbiology & Biotechnology, 2011, v. 90, n. 1, p. 377, doi. 10.1007/s00253-011-3115-8
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Efficient and direct glutathione production from raw starch using engineered Saccharomyces cerevisiae.
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- Applied Microbiology & Biotechnology, 2011, v. 89, n. 5, p. 1417, doi. 10.1007/s00253-010-2968-6
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Direct ethanol production from cellulosic materials using a diploid strain of Saccharomyces cerevisiae with optimized cellulase expression.
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- Biotechnology for Biofuels, 2011, v. 4, n. 1, p. 8, doi. 10.1186/1754-6834-4-8
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Metabolic pathway engineering based on metabolomics confers acetic and formic acid tolerance to a recombinant xylose-fermenting strain of Saccharomyces cerevisiae.
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- Microbial Cell Factories, 2011, v. 10, n. 1, p. 1, doi. 10.1186/1475-2859-10-2
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Construction of a xylose-metabolizing yeast by genome integration of xylose isomerase gene and investigation of the effect of xylitol on fermentation.
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- Applied Microbiology & Biotechnology, 2010, v. 88, n. 5, p. 1215, doi. 10.1007/s00253-010-2870-2
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Gene copy number and polyploidy on products formation in yeast.
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- Applied Microbiology & Biotechnology, 2010, v. 88, n. 4, p. 849, doi. 10.1007/s00253-010-2850-6
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Direct ethanol production from cellulosic materials at high temperature using the thermotolerant yeast Kluyveromyces marxianus displaying cellulolytic enzymes.
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- Applied Microbiology & Biotechnology, 2010, v. 88, n. 1, p. 381, doi. 10.1007/s00253-010-2784-z
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Repeated batch fermentation from raw starch using a maltose transporter and amylase expressing diploid yeast strain.
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- Applied Microbiology & Biotechnology, 2010, v. 87, n. 1, p. 109, doi. 10.1007/s00253-010-2487-5
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Ethanol production from cellulosic materials using cellulase-expressing yeast.
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- Biotechnology Journal, 2010, v. 5, n. 5, p. 449, doi. 10.1002/biot.200900291
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Novel strategy for yeast construction using δ-integration and cell fusion to efficiently produce ethanol from raw starch.
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- Applied Microbiology & Biotechnology, 2010, v. 85, n. 5, p. 1491, doi. 10.1007/s00253-009-2198-y
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Cocktail δ-integration: a novel method to construct cellulolytic enzyme expression ratio-optimized yeast strains.
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- Microbial Cell Factories, 2010, v. 9, p. 32, doi. 10.1186/1475-2859-9-32
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