Rational genome and metabolic engineering of Candida viswanathii by split CRISPR to produce hundred grams of dodecanedioic acid.
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[1] Junjiu Huang,et al. Dual-AAV delivering split prime editor system for in vivo genome editing. , 2021, Molecular therapy : the journal of the American Society of Gene Therapy.
[2] Min-Yuan Chou,et al. Enhancing the yield and activity of defucosylated antibody produced by CHO-K1 cells using Cas13d-mediated multiplex gene targeting , 2021 .
[3] Qipeng Yuan,et al. Engineering microorganisms for the biosynthesis of dicarboxylic acids. , 2021, Biotechnology advances.
[4] R. Shapiro,et al. CRISPR-Based Genetic Manipulation of Candida Species: Historical Perspectives and Current Approaches , 2021, Frontiers in Genome Editing.
[5] M. T. T. Nguyen,et al. Engineering Stable Pseudomonas Putida S12 by CRISPR for 2,5-Furandicarboxylic Acid (FDCA) Production. , 2020, ACS synthetic biology.
[6] J. Sohn,et al. Genetic Manipulation of a Lipolytic Yeast Candida aaseri SH14 Using CRISPR-Cas9 System , 2020, Microorganisms.
[7] Tong Un Chae,et al. Metabolic engineering for the production of dicarboxylic acids and diamines. , 2020, Metabolic engineering.
[8] Jennifer A. Doudna,et al. THE PROMISE AND CHALLENGE OF THERAPEUTIC GENOME EDITING , 2020, Nature.
[9] B. Sewell,et al. Biochemical and structural insights into the cytochrome P450 reductase from Candida tropicalis , 2019, Scientific Reports.
[10] Yu-Chen Hu,et al. Combining orthogonal CRISPR and CRISPRi systems for genome engineering and metabolic pathway modulation in Escherichia coli , 2019, Biotechnology and bioengineering.
[11] G. Butler,et al. Plasmid-Based CRISPR-Cas9 Gene Editing in Multiple Candida Species , 2019, mSphere.
[12] Jungoh Ahn,et al. Biotransformation of dicarboxylic acids from vegetable oil–derived sources: current methods and suggestions for improvement , 2019, Applied Microbiology and Biotechnology.
[13] Jianquan Luo,et al. Improving α, ω-dodecanedioic acid productivity from n-dodecane and hydrolysate of Candida cells by membrane integrated repeated batch fermentation. , 2018, Bioresource technology.
[14] Jianquan Luo,et al. Role of oxygen supply in α, ω‐dodecanedioic acid biosynthesis from n‐dodecane by Candida viswanathii ipe‐1: Effect of stirring speed and aeration , 2018, Engineering in life sciences.
[15] P. Peralta-Yahya,et al. Microbial synthesis of medium-chain chemicals from renewables , 2017, Nature Biotechnology.
[16] Huimin Zhao,et al. Combinatorial metabolic engineering using an orthogonal tri-functional CRISPR system , 2017, Nature Communications.
[17] Bin Liu,et al. α, ω-Dodecanedioic acid production by Candida viswanathii ipe-1 with co-utilization of wheat straw hydrolysates and n-dodecane. , 2017, Bioresource technology.
[18] G. Butler,et al. Gene editing in clinical isolates of Candida parapsilosis using CRISPR/Cas9 , 2017, Scientific Reports.
[19] J. Schmid,et al. Production of dodecanedioic acid via biotransformation of low cost plant-oil derivatives using Candida tropicalis , 2017, Journal of Industrial Microbiology & Biotechnology.
[20] Jianquan Luo,et al. High-level productivity of α,ω-dodecanedioic acid with a newly isolated Candida viswanathii strain , 2017, Journal of Industrial Microbiology & Biotechnology.
[21] Aaron D. Hernday,et al. An Efficient, Rapid, and Recyclable System for CRISPR-Mediated Genome Editing in Candida albicans , 2017, mSphere.
[22] H. Ng,et al. Dramatic Improvement of CRISPR/Cas9 Editing in Candida albicans by Increased Single Guide RNA Expression , 2017, mSphere.
[23] C. Ching,et al. Genome‐scale metabolic modeling and in silico analysis of lipid accumulating yeast Candida tropicalis for dicarboxylic acid production , 2016, Biotechnology and bioengineering.
[24] A. Mitchell,et al. Candida albicans Gene Deletion with a Transient CRISPR-Cas9 System , 2016, mSphere.
[25] Wolfgang Wurst,et al. Development of an intein-mediated split–Cas9 system for gene therapy , 2015, Nucleic acids research.
[26] Gerald R. Fink,et al. A Candida albicans CRISPR system permits genetic engineering of essential genes and gene families , 2015, Science Advances.
[27] Feng Zhang,et al. A split-Cas9 architecture for inducible genome editing and transcription modulation , 2015, Nature Biotechnology.
[28] R. Anand,et al. Structural and functional basis of transcriptional regulation by TetR family protein CprB from S. coelicolor A3(2) , 2014, Nucleic acids research.
[29] Yanhe Ma,et al. Activating transhydrogenase and NAD kinase in combination for improving isobutanol production. , 2013, Metabolic engineering.
[30] James E. DiCarlo,et al. RNA-Guided Human Genome Engineering via Cas9 , 2013, Science.
[31] L. Wheeler,et al. Effects of a Mitochondrial Mutator Mutation in Yeast POS5 NADH Kinase on Mitochondrial Nucleotides* , 2012, The Journal of Biological Chemistry.
[32] J. Ness,et al. Biosynthesis of monomers for plastics from renewable oils. , 2010, Journal of the American Chemical Society.
[33] S. Kawai,et al. Two Sources of Mitochondrial NADPH in the Yeast Saccharomyces cerevisiae* , 2009, Journal of Biological Chemistry.
[34] Alison G. Smith,et al. Candida yeast long chain fatty alcohol oxidase is a c-type haemoprotein and plays an important role in long chain fatty acid metabolism. , 2005, Biochimica et biophysica acta.
[35] L. Stols,et al. Cloning and Characterization of Three Fatty Alcohol Oxidase Genes from Candida tropicalis Strain ATCC 20336 , 2004, Applied and Environmental Microbiology.
[36] C. Li,et al. Optimal pH control strategy for high-level production of long-chain α, ω-dicarboxylic acid by Candida tropicalis , 2004 .
[37] M. Penttilä,et al. Engineering Redox Cofactor Regeneration for Improved Pentose Fermentation in Saccharomyces cerevisiae , 2003, Applied and Environmental Microbiology.
[38] C. R. Wilson,et al. Transformation of Fatty Acids Catalyzed by Cytochrome P450 Monooxygenase Enzymes of Candida tropicalis , 2003, Applied and Environmental Microbiology.
[39] D. Craft,et al. Identification and Characterization of the CYP52 Family of Candida tropicalis ATCC 20336, Important for the Conversion of Fatty Acids and Alkanes to α,ω-Dicarboxylic Acids , 2003, Applied and Environmental Microbiology.
[40] V. Culotta,et al. A novel NADH kinase is the mitochondrial source of NADPH in Saccharomyces cerevisiae , 2003, The EMBO journal.
[41] J. Mielenz,et al. Metabolic Engineering of Candida Tropicalis for the Production of Long–Chain Dicarboxylic Acids , 1992, Bio/Technology.
[42] J. Mielenz,et al. Determination of Candida tropicalis acyl coenzyme A oxidase isozyme function by sequential gene disruption , 1991, Molecular and Cellular Biology.
[43] I. Ahmad,et al. Enhancement of xylitol production in Candida tropicalis by co-expression of two genes involved in pentose phosphate pathway , 2011, Bioprocess and Biosystems Engineering.