A novel toolbox for precise regulation of gene expression and metabolic engineering in Bacillus licheniformis.
暂无分享,去创建一个
Shouwen Chen | D. Cai | Y. Zhan | Xin Ma | Jiaqi Wang | Y. Rao | Xinyuan Yang | Xinxin Xie
[1] D. Wang,et al. Enhancing the activity of disulfide-bond-containing proteins via promoting disulfide bond formation in Bacillus licheniformis. , 2023, International journal of biological macromolecules.
[2] Jingjie Jin,et al. Engineered multiple translation initiation sites: a novel tool to enhance protein production in Bacillus licheniformis and other industrially relevant bacteria , 2022, Nucleic acids research.
[3] Shouwen Chen,et al. Minimization and optimization of α-amylase terminator for heterologous protein production in Bacillus licheniformis , 2022, Bioresources and Bioprocessing.
[4] Youming Zhang,et al. Microbial chassis engineering drives heterologous production of complex secondary metabolites. , 2022, Biotechnology advances.
[5] Shihui Yang,et al. Multilevel metabolic engineering of Bacillus licheniformis for de novo biosynthesis of 2-phenylethanol. , 2022, Metabolic engineering.
[6] Yu Deng,et al. Precise Prediction of Promoter Strength Based on a De Novo Synthetic Promoter Library Coupled with Machine Learning. , 2021, ACS synthetic biology.
[7] Gil Amitai,et al. Multiple phage resistance systems inhibit infection via SIR2-dependent NAD+ depletion , 2021, bioRxiv.
[8] Shihui Yang,et al. Metabolic Engineering of Bacillus licheniformis for Sustainable Production of Isobutanol , 2021, ACS Sustainable Chemistry & Engineering.
[9] Shouwen Chen,et al. Construction and Characterization of a Gradient Strength Promoter Library for Fine-Tuned Gene Expression in Bacillus licheniformis. , 2021, ACS synthetic biology.
[10] Shouwen Chen,et al. Metabolic Engineering of Aspartic Acid Supply Modules for Enhanced Production of Bacitracin in Bacillus licheniformis. , 2021, ACS synthetic biology.
[11] C. Reisch,et al. A plasmid toolbox for controlled gene expression across the Proteobacteria , 2021, Nucleic acids research.
[12] N. Walter,et al. Precise tuning of bacterial translation initiation by non-equilibrium 5′-UTR unfolding observed in single mRNAs , 2021, Nucleic acids research.
[13] C. Nomura,et al. Facilitating protein expression with portable 5'-UTR secondary structures in Bacillus licheniformis. , 2020, ACS synthetic biology.
[14] M. Xian,et al. Common problems associated with the microbial productions of aromatic compounds and corresponding metabolic engineering strategies. , 2020, Biotechnology advances.
[15] Yongliang Zhu,et al. Refactoring Ehrlich Pathway for High-Yield 2-Phenylethanol Production in Yarrowia lipolytica , 2020, ACS synthetic biology.
[16] H. Pan,et al. De novo biosynthesis of 2-phenylethanol in engineered Pichia pastoris. , 2020, Enzyme and microbial technology.
[17] Xueqin Lv,et al. Design of a programmable biosensor-CRISPRi genetic circuits for dynamic and autonomous dual-control of metabolic flux in Bacillus subtilis , 2019, Nucleic acids research.
[18] J. Pronk,et al. Connecting central carbon and aromatic amino acid metabolisms to improve de novo 2-phenylethanol production in Saccharomyces cerevisiae. , 2019, Metabolic engineering.
[19] Shouwen Chen,et al. Establishment and application of multiplexed CRISPR interference system in Bacillus licheniformis , 2019, Applied Microbiology and Biotechnology.
[20] Jian Chen,et al. Engineering strong and stress-responsive promoters in Bacillus subtilis by interlocking sigma factor binding motifs , 2019, Synthetic and systems biotechnology.
[21] Chao Ye,et al. Programmable biomolecular switches for rewiring flux in Escherichia coli , 2019, Nature Communications.
[22] Li Zhou,et al. Development of a novel strategy for robust synthetic bacterial promoters based on a stepwise evolution targeting the spacer region of the core promoter in Bacillus subtilis , 2019, Microbial Cell Factories.
[23] Guocheng Du,et al. Synthetic Biology Toolbox and Chassis Development in Bacillus subtilis. , 2019, Trends in biotechnology.
[24] Shouwen Chen,et al. Metabolomics analysis reveals global acetoin stress response of Bacillus licheniformis , 2019, Metabolomics.
[25] Jian Chen,et al. Construction of Synthetic Promoters by Assembling the Sigma Factor Binding −35 and −10 Boxes , 2018, Biotechnology journal.
[26] J. Liao,et al. Escherichia coli as a host for metabolic engineering. , 2018, Metabolic engineering.
[27] Guocheng Du,et al. Advances and prospects of Bacillus subtilis cellular factories: From rational design to industrial applications. , 2018, Metabolic engineering.
[28] Jennifer A. Doudna,et al. CRISPR-Cas guides the future of genetic engineering , 2018, Science.
[29] Tao Chen,et al. Construction, Model-Based Analysis, and Characterization of a Promoter Library for Fine-Tuned Gene Expression in Bacillus subtilis. , 2018, ACS synthetic biology.
[30] H. Pan,et al. Metabolic Engineering of Escherichia coli for Production of 2-Phenylethanol and 2-Phenylethyl Acetate from Glucose. , 2018, Journal of agricultural and food chemistry.
[31] Kulbhushan Chaudhary. BacteRiophage EXclusion (BREX): A novel anti‐phage mechanism in the arsenal of bacterial defense system , 2018, Journal of cellular physiology.
[32] M. De Mey,et al. A sigma factor toolbox for orthogonal gene expression in Escherichia coli , 2018, Nucleic acids research.
[33] Zhili He,et al. Development of an Efficient Genome Editing Tool in Bacillus licheniformis Using CRISPR-Cas9 Nickase , 2018, Applied and Environmental Microbiology.
[34] Stephen S Fong,et al. Study of in vitro transcriptional binding effects and noise using constitutive promoters combined with UP element sequences in Escherichia coli , 2017, Journal of biological engineering.
[35] D. Nielsen,et al. Expanding Upon Styrene Biosynthesis to Engineer a Novel Route to 2‐Phenylethanol , 2017, Biotechnology journal.
[36] M. Chang,et al. Engineering a riboswitch-based genetic platform for the self-directed evolution of acid-tolerant phenotypes , 2017, Nature Communications.
[37] Q. Ouyang,et al. Insulated transcriptional elements enable precise design of genetic circuits , 2017, Nature Communications.
[38] C. Nomura,et al. A novel strategy to improve protein secretion via overexpression of the SppA signal peptide peptidase in Bacillus licheniformis , 2017, Microbial Cell Factories.
[39] Lina Liu,et al. High-level extracellular protein production in Bacillus subtilis using an optimized dual-promoter expression system , 2017, Microbial Cell Factories.
[40] G. Du,et al. Characterization and application of endogenous phase-dependent promoters in Bacillus subtilis , 2017, Applied Microbiology and Biotechnology.
[41] James M. Clomburg,et al. Industrial biomanufacturing: The future of chemical production , 2017, Science.
[42] Christoph Wittmann,et al. Systems metabolic engineering of Escherichia coli for the heterologous production of high value molecules-a veteran at new shores. , 2016, Current opinion in biotechnology.
[43] Sarah Guiziou,et al. A part toolbox to tune genetic expression in Bacillus subtilis , 2016, Nucleic acids research.
[44] Ping Zheng,et al. Promoter Screening from Bacillus subtilis in Various Conditions Hunting for Synthetic Biology and Industrial Applications , 2016, PloS one.
[45] Guocheng Du,et al. Combinatorial Evolution of Enzymes and Synthetic Pathways Using One-Step PCR. , 2016, ACS synthetic biology.
[46] P. Luxananil,et al. Synergism of regulatory elements in σ(B)- and σ(A)-dependent promoters enhances recombinant protein expression in Bacillus subtilis. , 2015, Journal of bioscience and bioengineering.
[47] Hal S Alper,et al. The synthetic biology toolbox for tuning gene expression in yeast. , 2014, FEMS yeast research.
[48] D. Wei,et al. Construction of a shuttle vector for protein secretory expression in Bacillus subtilis and the application of the mannanase functional heterologous expression. , 2014, Journal of microbiology and biotechnology.
[49] Thomas H Segall-Shapiro,et al. Creation of a Bacterial Cell Controlled by a Chemically Synthesized Genome , 2010, Science.
[50] M Ikehara,et al. Essential structure of E. coli promoter: effect of spacer length between the two consensus sequences on promoter function. , 1983, Nucleic acids research.
[51] G. Theodoridis,et al. Investigation of the derivatization conditions for GC-MS metabolomics of biological samples. , 2017, Bioanalysis.