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侯进
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[21] 崔志勇. Identification and Characterization of the Mitochondrial Replication Origin for Stable and Episomal Expression in Yarrowia lipolytica. ACS Synthetic Biology, 10, 826, 2021.
[22] 刘萌萌. Morphological and Metabolic Engineering of Yarrowia lipolytica to Increase beta-Carotene Production. ACS Synthetic Biology, 10, 3551, 2021.
[23] 刘晓芹. Identification of genome integration sites for developing a CRISPR-based gene expression toolkit in Yarrowia lipolytica. MICROBIAL BIOTECHNOLOGY, 2022.
[24] 郑会会. Highly efficient rDNA-mediated multicopy integration based on the dynamic balance of rDNA in Saccharomyces cerevisiae. MICROBIAL BIOTECHNOLOGY, 15, 1511, 2022.
[25] 邱晨曦. Biosensor-Coupled In Vivo Mutagenesis and Omics Analysis Reveals Reduced Lysine and Arginine Synthesis To Improve Malonyl-Coenzyme A Flux in Saccharomyces cerevisiae. MSYSTEMS, 7, 2022.
[26] 刘晓芹. Mapping of Nonhomologous End Joining-Mediated Integration Facilitates Genome-Scale Trackable Mutagenesis in Yarrowia lipolytica. ACS Synthetic Biology, 11, 216, 2022.
[27] 刘子垿. Cell-based high-throughput screening of polysaccharide biosynthesis hosts. MICROBIAL CELL FACTORIES, 20, 2021.
[28] 庞庆霄. In vivo evolutionary engineering of riboswitch with high-threshold for N-acetylneuraminic acid production. Metabolic engineering, 59, 36, 2020.
[29] 崔志勇. A CRISPR/Cas9-Mediated, Homology-Independent Tool Developed for Targeted Genome Integration in Yarrowia lipolytica. Applied and Envrionmental Microbiology, 87, 2021.
[30] 刘营航. Engineering the oleaginous yeast Yarrowia lipolytica for production of alpha-farnesene. 12, 2019.
TOTAL 157 PIECE 3/16
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