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  • Author: Xiao C
  • References

Author: Xiao C


References 19 references


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  • Liu X, et al. (2025) Rational Design and Model Predictions for Optimized Elastase Production in Saccharomyces cerevisiae. ACS Synth Biol 14(5):1719-1731 PMID:40327375
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  • Qin L, et al. (2025) Multi-Omics Analysis Reveals Impacts of LincRNA Deletion on Yeast Protein Synthesis. Adv Sci (Weinh) 12(13):e2406873 PMID:39951012
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  • Jiang B, et al. (2024) Progressive transcriptomic shifts in evolved yeast strains following gene knockout. iScience 27(11):111219 PMID:39559754
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  • Wang YW, et al. (2024) Dissecting Interactions of Saccharomyces cerevisiae and Pichia kudriavzevii to Shape Kiwifruit Wine Flavor. Foods 13(24) PMID:39767018
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  • Xiao C, et al. (2024) Tailored UPRE2 variants for dynamic gene regulation in yeast. Proc Natl Acad Sci U S A 121(19):e2315729121 PMID:38687789
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  • Xiao C, et al. (2024) Synthetic Promoter Design and Functional Evaluation in Saccharomyces cerevisiae. Methods Mol Biol 2844:97-108 PMID:39068334
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  • Xie J, et al. (2024) ER stress-induced transcriptional response reveals tolerance genes in yeast. Biotechnol J 19(6):e2400082 PMID:38896412
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  • Li Y, et al. (2023) Optimization of Protein Folding for Improved Secretion of Human Serum Albumin Fusion Proteins in Saccharomyces cerevisiae. J Agric Food Chem 71(47):18414-18423 PMID:37966975
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  • Xiao C, et al. (2023) Overexpression of genes by stress-responsive promoters increases protein secretion in Saccharomyces cerevisiae. World J Microbiol Biotechnol 39(8):203 PMID:37209206
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  • Xue S, et al. (2023) Comprehensive Analysis of Signal Peptides in Saccharomyces cerevisiae Reveals Features for Efficient Secretion. Adv Sci (Weinh) 10(2):e2203433 PMID:36478443
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  • Xue S, et al. (2023) Comprehensive Analysis of Signal Peptides in Saccharomyces Cerevisiae Reveals Features for Efficient Secretion. Adv Sci (Weinh) 10(6):e2300302 PMID:36825761
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  • Ma R, et al. (2022) Identification of (-)-bornyl diphosphate synthase from Blumea balsamifera and its application for (-)-borneol biosynthesis in Saccharomyces cerevisiae. Synth Syst Biotechnol 7(1):490-497 PMID:34977393
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  • Luo Z, et al. (2021) Compacting a synthetic yeast chromosome arm. Genome Biol 22(1):5 PMID:33397424
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  • Ye P, et al. (2017) MethSMRT: an integrative database for DNA N6-methyladenine and N4-methylcytosine generated by single-molecular real-time sequencing. Nucleic Acids Res 45(D1):D85-D89 PMID:27924023
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  • Chen Y, et al. (2016) The malfunction of peroxisome has an impact on the oxidative stress sensitivity in Candida albicans. Fungal Genet Biol 95:1-12 PMID:27473887
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  • Zhang B, et al. (2015) The actin-related protein Sac1 is required for morphogenesis and cell wall integrity in Candida albicans. Fungal Genet Biol 81:261-70 PMID:25575432
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  • Berchowitz LE, et al. (2013) A developmentally regulated translational control pathway establishes the meiotic chromosome segregation pattern. Genes Dev 27(19):2147-63 PMID:24115771
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  • Qian W, et al. (2012) The genomic landscape and evolutionary resolution of antagonistic pleiotropy in yeast. Cell Rep 2(5):1399-410 PMID:23103169
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  • Shim JH, et al. (2006) CHMP5 is essential for late endosome function and down-regulation of receptor signaling during mouse embryogenesis. J Cell Biol 172(7):1045-56 PMID:16567502
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