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  • Author: Qi L
  • References

Author: Qi L


References 19 references


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  • Li KJ, et al. (2025) Spontaneous and environment induced genomic alterations in yeast model. Cell Insight 4(1):100209 PMID:39629481
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  • Yang L, et al. (2025) Annealing synchronizes the TOM complex with Tom7 in a new orientation. Arch Biochem Biophys 766:110329 PMID:39924140
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  • Liu M, et al. (2024) Three-dimensional architecture of ESCRT-III flat spirals on the membrane. Proc Natl Acad Sci U S A 121(20):e2319115121 PMID:38709931
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  • Zhu Y-X, et al. (2024) Novel insights into the effects of 5-hydroxymethfurural on genomic instability and phenotypic evolution using a yeast model. Appl Environ Microbiol 90(1):e0164923 PMID:38108644
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  • Qi L, et al. (2023) Shuffling the yeast genome using CRISPR/Cas9-generated DSBs that target the transposable Ty1 elements. PLoS Genet 19(1):e1010590 PMID:36701275
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  • Qi L, et al. (2023) Nonlethal Furfural Exposure Causes Genomic Alterations and Adaptability Evolution in Saccharomyces cerevisiae. Microbiol Spectr 11(4):e0121623 PMID:37395645
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  • Xia Y, et al. (2023) Construction of an Escherichia coli cell factory for de novo synthesis of tyrosol through semi-rational design based on phenylpyruvate decarboxylase ARO10 engineering. Int J Biol Macromol 253(Pt 7):127385 PMID:37848109
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  • Tang XX, et al. (2021) Origin, Regulation, and Fitness Effect of Chromosomal Rearrangements in the Yeast Saccharomyces cerevisiae. Int J Mol Sci 22(2) PMID:33466757
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  • Wang Q, et al. (2021) Structural insight into the SAM-mediated assembly of the mitochondrial TOM core complex. Science 373(6561):1377-1381 PMID:34446444
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  • Sui Y, et al. (2020) Analysis of APOBEC-induced mutations in yeast strains with low levels of replicative DNA polymerases. Proc Natl Acad Sci U S A 117(17):9440-9450 PMID:32277034
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  • Sui Y, et al. (2020) Genome-wide mapping of spontaneous genetic alterations in diploid yeast cells. Proc Natl Acad Sci U S A 117(45):28191-28200 PMID:33106417
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  • Qi L, et al. (2019) Hydrogen peroxide, a potent inducer of global genomic instability. Curr Genet 65(4):913-917 PMID:30963245
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  • Qi L, et al. (2019) Global Analysis of Furfural-Induced Genomic Instability Using a Yeast Model. Appl Environ Microbiol 85(18) PMID:31300396
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  • Sheng H, et al. (2019) Mapping chromosomal instability induced by small-molecular therapeutics in a yeast model. Appl Microbiol Biotechnol 103(12):4869-4880 PMID:31053912
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  • Zhang K, et al. (2019) Genome-wide analysis of genomic alterations induced by oxidative DNA damage in yeast. Nucleic Acids Res 47(7):3521-3535 PMID:30668788
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  • Gu Y, et al. (2018) A landscape of synthetic viable interactions in cancer. Brief Bioinform 19(4):644-655 PMID:28096076
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  • Zhang K, et al. (2018) Genetic characterization and modification of a bioethanol-producing yeast strain. Appl Microbiol Biotechnol 102(5):2213-2223 PMID:29333587
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  • Wu X, et al. (2016) Deletion of JJJ1 improves acetic acid tolerance and bioethanol fermentation performance of Saccharomyces cerevisiae strains. Biotechnol Lett 38(7):1097-106 PMID:27067354
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  • Zhang K, et al. (2016) Genomic structural variation contributes to phenotypic change of industrial bioethanol yeast Saccharomyces cerevisiae. FEMS Yeast Res 16(2):fov118 PMID:26733503
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