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  • Author: Yan Q
  • References

Author: Yan Q


References 30 references


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  • Gambacorta FV, et al. (2020) Rewiring yeast metabolism to synthesize products beyond ethanol. Curr Opin Chem Biol 59:182-192 PMID:33032255
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  • Gambacorta FV, et al. (2020) Corrigendum to "Rewiring yeast metabolism to synthesize products beyond ethanol" [Curr Opin Chem Biol 59 (December 2020) 182-192]. Curr Opin Chem Biol 59:202-204 PMID:33199243
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  • Yan Q and Pfleger BF (2020) Revisiting metabolic engineering strategies for microbial synthesis of oleochemicals. Metab Eng 58:35-46 PMID:31022535
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  • Zhang K, et al. (2020) Research advances on sake rice, koji, and sake yeast: A review. Food Sci Nutr 8(7):2995-3003 PMID:32724564
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  • Pang H, et al. (2019) Knockout of the S-acyltransferase Gene, PbPAT14, Confers the Dwarf Yellowing Phenotype in First Generation Pear by ABA Accumulation. Int J Mol Sci 20(24) PMID:31888281
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  • Zhu C, et al. (2018) Erroneous ribosomal RNAs promote the generation of antisense ribosomal siRNA. Proc Natl Acad Sci U S A 115(40):10082-10087 PMID:30224484
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  • Blair LP, et al. (2016) KDM5 lysine demethylases are involved in maintenance of 3'UTR length. Sci Adv 2(11):e1501662 PMID:28138513
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  • Xu K, et al. (2015) Efficient genome engineering in eukaryotes using Cas9 from Streptococcus thermophilus. Cell Mol Life Sci 72(2):383-99 PMID:25038777
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  • Zhu X, et al. (2015) MTO1 worked as a modifier in the aminoglycosides sensitivity of yeast carrying a mitochondrial 15S rRNA C1477G mutation. PLoS One 10(4):e0124200 PMID:25898254
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  • Katrolia P, et al. (2014) Biotechnological potential of microbial α-galactosidases. Crit Rev Biotechnol 34(4):307-17 PMID:23937250
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  • Yan Q, et al. (2014) Wild type RTA and less toxic variants have distinct requirements for Png1 for their depurination activity and toxicity in Saccharomyces cerevisiae. PLoS One 9(12):e113719 PMID:25436896
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  • Zhou Q, et al. (2014) Mechanistic study on the nuclear modifier gene MSS1 mutation suppressing neomycin sensitivity of the mitochondrial 15S rRNA C1477G mutation in Saccharomyces cerevisiae. PLoS One 9(3):e90336 PMID:24595024
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  • He X, et al. (2013) Nuclear modifier MTO2 modulates the aminoglycoside-sensitivity of mitochondrial 15S rRNA C1477G mutation in Saccharomyces cerevisiae. PLoS One 8(12):e81490 PMID:24339937
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  • Wang X, et al. (2010) Combination of the loss of cmnm5U34 with the lack of s2U34 modifications of tRNALys, tRNAGlu, and tRNAGln altered mitochondrial biogenesis and respiration. J Mol Biol 395(5):1038-48 PMID:20004207
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  • Wang X, et al. (2009) Mutation in MTO1 involved in tRNA modification impairs mitochondrial RNA metabolism in the yeast Saccharomyces cerevisiae. Mitochondrion 9(3):180-5 PMID:19460296
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  • Wang X, et al. (2007) Deletion of the MTO2 gene related to tRNA modification causes a failure in mitochondrial RNA metabolism in the yeast Saccharomyces cerevisiae. FEBS Lett 581(22):4228-34 PMID:17706197
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  • Li G, et al. (2005) Studies on the N-glycosylation of the subunits of oligosaccharyl transferase in Saccharomyces cerevisiae. J Biol Chem 280(3):1864-71 PMID:15507441
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  • Yan Q, et al. (2005) Mutations in MTO2 related to tRNA modification impair mitochondrial gene expression and protein synthesis in the presence of a paromomycin resistance mutation in mitochondrial 15 S rRNA. J Biol Chem 280(32):29151-7 PMID:15944150
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  • Yan Q, et al. (2005) mVps24p functions in EGF receptor sorting/trafficking from the early endosome. Exp Cell Res 304(1):265-73 PMID:15707591
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  • Kim H, et al. (2003) Determination of the membrane topology of Ost4p and its subunit interactions in the oligosaccharyltransferase complex in Saccharomyces cerevisiae. Proc Natl Acad Sci U S A 100(13):7460-4 PMID:12810948
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  • Li G, et al. (2003) A specific segment of the transmembrane domain of Wbp1p is essential for its incorporation into the oligosaccharyl transferase complex. Biochemistry 42(37):11032-9 PMID:12974639
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  • Li R, et al. (2003) Identification and characterization of mouse MTO1 gene related to mitochondrial tRNA modification. Biochim Biophys Acta 1629(1-3):53-9 PMID:14522080
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  • Yan A, et al. (2003) New findings on interactions among the yeast oligosaccharyl transferase subunits using a chemical cross-linker. J Biol Chem 278(35):33078-87 PMID:12805367
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  • Yan Q and Lennarz WJ (2002) Studies on the function of oligosaccharyl transferase subunits: a glycosylatable photoprobe binds to the luminal domain of Ost1p. Proc Natl Acad Sci U S A 99(25):15994-9 PMID:12444261
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  • Yan Q and Lennarz WJ (2002) Studies on the function of oligosaccharyl transferase subunits. Stt3p is directly involved in the glycosylation process. J Biol Chem 277(49):47692-700 PMID:12359722
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  • Cipollo JF, et al. (2001) The yeast ALG11 gene specifies addition of the terminal alpha 1,2-Man to the Man5GlcNAc2-PP-dolichol N-glycosylation intermediate formed on the cytosolic side of the endoplasmic reticulum. J Biol Chem 276(24):21828-40 PMID:11278778
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  • Kamura T, et al. (1999) The Rbx1 subunit of SCF and VHL E3 ubiquitin ligase activates Rub1 modification of cullins Cdc53 and Cul2. Genes Dev 13(22):2928-33 PMID:10579999
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  • Yan Q and Lennarz WJ (1999) Oligosaccharyltransferase: a complex multisubunit enzyme of the endoplasmic reticulum. Biochem Biophys Res Commun 266(3):684-9 PMID:10603306
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  • Yan Q, et al. (1999) The Ost1p subunit of yeast oligosaccharyl transferase recognizes the peptide glycosylation site sequence, -Asn-X-Ser/Thr-. J Biol Chem 274(8):5021-5 PMID:9988747
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  • Suzuki T, et al. (1998) Complex, two-way traffic of molecules across the membrane of the endoplasmic reticulum. J Biol Chem 273(17):10083-6 PMID:9553052
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