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  • Author: Tian B
  • References

Author: Tian B


References 24 references


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  • Zhang J, et al. (2024) Genotyping and Phenotyping of Indigenous Saccharomyces cerevisiae from a New Zealand Organic Winery and Commercial Sources Using Inter-Delta and MALDI-TOF MS Typing. Microorganisms 12(7) PMID:39065067
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  • Zhang J, et al. (2022) Predictive Potential of MALDI-TOF Analyses for Wine and Brewing Yeast. Microorganisms 10(2) PMID:35208719
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  • Zhao Y, et al. (2022) Evaluation of Four Indigenous Non-Saccharomyces Yeasts Isolated from the Shangri-La Wine Region (China) for Their Fermentation Performances and Aroma Compositions in Synthetic Grape Juice Fermentation. J Fungi (Basel) 8(2) PMID:35205900
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  • Tian B, et al. (2021) B- and N-doped carbon dots by one-step microwave hydrothermal synthesis: tracking yeast status and imaging mechanism. J Nanobiotechnology 19(1):456 PMID:34963471
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  • Zhang J, et al. (2021) Application of MALDI-TOF analysis to reveal diversity and dynamics of winemaking yeast species in wild-fermented, organically produced, New Zealand Pinot Noir wine. Food Microbiol 99:103824 PMID:34119109
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  • Zhang J, et al. (2021) The influence of growth conditions on MALDI-TOF MS spectra of winemaking yeast: implications for industry applications. J Microbiol Methods 188:106280 PMID:34274408
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  • Zhao Y, et al. (2021) Biodiversity of non-Saccharomyces yeasts associated with spontaneous fermentation of Cabernet Sauvignon wines from Shangri-La wine region, China. Sci Rep 11(1):5150 PMID:33664299
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  • Borren E and Tian B (2020) The Important Contribution of Non-Saccharomyces Yeasts to the Aroma Complexity of Wine: A Review. Foods 10(1) PMID:33374550
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  • Ma Y, et al. (2020) Efficient Imaging of Saccharomyces cerevisiae Based on B- and N-Doped Carbon Dots. J Agric Food Chem 68(37):10223-10231 PMID:32830509
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  • Zhang J, et al. (2020) An improved method for MALDI-TOF analysis of wine-associated yeasts. J Microbiol Methods 172:105904 PMID:32229264
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  • Larochelle M, et al. (2018) Common mechanism of transcription termination at coding and noncoding RNA genes in fission yeast. Nat Commun 9(1):4364 PMID:30341288
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  • Hoque M, et al. (2017) Regulation of gene expression by translation factor eIF5A: Hypusine-modified eIF5A enhances nonsense-mediated mRNA decay in human cells. Translation (Austin) 5(2):e1366294 PMID:29034140
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  • Liu X, et al. (2017) Comparative analysis of alternative polyadenylation in S. cerevisiae and S. pombe. Genome Res 27(10):1685-1695 PMID:28916539
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  • Yurko N, et al. (2017) MPK1/SLT2 Links Multiple Stress Responses with Gene Expression in Budding Yeast by Phosphorylating Tyr1 of the RNAP II CTD. Mol Cell 68(5):913-925.e3 PMID:29220656
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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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  • Lemay JF, et al. (2016) The Nrd1-like protein Seb1 coordinates cotranscriptional 3' end processing and polyadenylation site selection. Genes Dev 30(13):1558-72 PMID:27401558
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  • Yang Y, et al. (2016) PAF Complex Plays Novel Subunit-Specific Roles in Alternative Cleavage and Polyadenylation. PLoS Genet 12(1):e1005794 PMID:26765774
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  • Shao B, et al. (2015) Minimum network constraint on reverse engineering to develop biological regulatory networks. J Theor Biol 380:9-15 PMID:25981630
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  • Rosonina E, et al. (2014) Threonine-4 of the budding yeast RNAP II CTD couples transcription with Htz1-mediated chromatin remodeling. Proc Natl Acad Sci U S A 111(33):11924-31 PMID:25071213
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  • Tian B, et al. (2013) Molecular cloning and overexpression of an endo-β-1,4-xylanase gene from Aspergillus niger in industrial Saccharomyces cerevisiae YS2 strain. Appl Biochem Biotechnol 170(2):320-8 PMID:23508862
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  • Tian B and Graber JH (2012) Signals for pre-mRNA cleavage and polyadenylation. Wiley Interdiscip Rev RNA 3(3):385-96 PMID:22012871
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  • Duttagupta R, et al. (2005) Global analysis of Pub1p targets reveals a coordinate control of gene expression through modulation of binding and stability. Mol Cell Biol 25(13):5499-513 PMID:15964806
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  • Ondrovicová G, et al. (2005) Cleavage site selection within a folded substrate by the ATP-dependent lon protease. J Biol Chem 280(26):25103-10 PMID:15870080
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  • Taylor DR, et al. (2001) Hepatitis C virus envelope protein E2 does not inhibit PKR by simple competition with autophosphorylation sites in the RNA-binding domain. J Virol 75(3):1265-73 PMID:11152499
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