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8篇 您的检索式:作者名="Unrean"
    题名 作者 年代 出处 被引量
1Metabolic pathway analysis of Scheffersomyces(Pichia)stipitis:effect of oxygen availability on ethanol synthesis and flux distributions显示文摘Unrean P Nguyen NH 0,,05:1
2Optimized fed-batch fermentation of Scheffersomyces stipitis for efficient production of ethanol from hexoses and pentoses显示文摘Unrean P Nguyen N H 2013Applied Biochemistry and Biotechnology2013,169,6:1
3Metabolic networks evolve towards states of maximum entropy production显示文摘Unrean P Srienc F 2011Metab Eng2011,13,6:1
4Minimal Escheriehia coli cell for the most efficient production of ethanol from hexoses and pentoses显示文摘TRINH C T UNREAN P SRIENC F 2008Applied and Environmental Microbiology2008,74,12:1
5Journal of microbiology and biotechnology 显示文摘Sukumprasertsri Monton Unrean Pornkamol Pimsamarn Jindarat 2013Jounral of Microbiology and Biotechnology2013,23,3:1
6Pathway analysis of Pichia pastoris to elucidate methanol metabolism and its regulation for production of recombinant proteins 显示文摘P Unrean 2014Biotechnology Progress2014,30,1:1
7Minimal escherichia coli cell for the most efficient production of ethanol from hexoses and pentoses显示文摘Trinh C.T Unrean P Srienc F 0,,12:1
8Systematic development of biomass overproducing Scheffersomyces stipitis for high-cell-density fermentations显示文摘The development of economically feasible bio-based process requires efficient cell factories capable of producing the desired product at high titer under high-cell-density fermentation.Herein we present a combinatorial approach based on systems metabolic engineering and metabolic evolution for the development of efficient biomass-producing strain.Systems metabolic engineering guided by flux balance analysis(FBA)was first employed to rationally design mutant strains of Scheffersomyces stipitis with high biomass yield.By experimentally implementing these mutations,the biomass yield was improved by 30%in GPD1,25%in TKL1,30%in CIT1,and 44%in ZWF1 overexpressed mutants compared to wild-type.These designed mutants were further fine-tuned through metabolic evolution resulting in the maximal biomass yield of 0.49 g-cdw/g-glucose,whichmatcheswell with predicted yield phenotype.The constructed mutants are beneficial for biotechnology applications dealing with high cell titer cultivations.This work demonstrates a solid confirmation of systems metabolic engineering in combination with metabolic evolution approach for efficient strain development,which could assist in rapid optimization of cell factory for an economically viable and sustainable bio-based process.Pornkamol Unrean Sukanya Jeennor Kobkul Laoteng Thailand Science Park Phahonyothin Road Klong Nueng Klong Luang Thailand 2016Synthetic and Systems Biotechnology2016,1,1:0
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