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  • Author: Huang G
  • References

Author: Huang G


References 23 references


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  • Huang G, et al. (2024) Multi-modular metabolic engineering and efflux engineering for enhanced lycopene production in recombinant Saccharomyces cerevisiae. J Ind Microbiol Biotechnol 51 PMID:38621758
    • SGD Paper
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  • Li Z, et al. (2023) Nuclear export of pre-60S particles through the nuclear pore complex. Nature 618(7964):411-418 PMID:37258668
    • SGD Paper
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    • PubMed
  • Li Z, et al. (2022) Near-atomic structure of the inner ring of the Saccharomyces cerevisiae nuclear pore complex. Cell Res 32(5):437-450 PMID:35301440
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  • Mi C, et al. (2022) Structural basis for assembly of TRAPPII complex and specific activation of GTPase Ypt31/32. Sci Adv 8(4):eabi5603 PMID:35080977
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  • Mei X, et al. (2020) Preparation, structural analysis and antioxidant activities of phosphorylated (1 → 3)-β-d-glucan. Food Chem 309:125791 PMID:31699554
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  • Zhong X, et al. (2020) Reducing higher alcohols by nitrogen compensation during fermentation of Chinese rice wine. Food Sci Biotechnol 29(6):805-816 PMID:32523790
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  • Potapenko E, et al. (2019) Pyrophosphate Stimulates the Phosphate-Sodium Symporter of Trypanosoma brucei Acidocalcisomes and Saccharomyces cerevisiae Vacuoles. mSphere 4(2) PMID:30944211
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  • Jin D, et al. (2018) A Transcriptomic Analysis of Saccharomyces cerevisiae Under the Stress of 2-Phenylethanol. Curr Microbiol 75(8):1068-1076 PMID:29666939
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  • Liu Y, et al. (2018) Extraction, characterization and antioxidant activities of mannan from yeast cell wall. Int J Biol Macromol 118(Pt A):952-956 PMID:29972767
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  • Potapenko E, et al. (2018) 5-Diphosphoinositol pentakisphosphate (5-IP7) regulates phosphate release from acidocalcisomes and yeast vacuoles. J Biol Chem 293(49):19101-19112 PMID:30315104
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  • Yan C, et al. (2017) Structure of a yeast step II catalytically activated spliceosome. Science 355(6321):149-155 PMID:27980089
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  • Fu W, et al. (2016) Squamous Cell Carcinoma-related Oncogene (SCCRO) Family Members Regulate Cell Growth and Proliferation through Their Cooperative and Antagonistic Effects on Cullin Neddylation. J Biol Chem 291(12):6200-17 PMID:26792857
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  • Wan R, et al. (2016) Structure of a yeast catalytic step I spliceosome at 3.4 Å resolution. Science 353(6302):895-904 PMID:27445308
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  • Xiao GH, et al. (2016) Genome-scale analysis of the cotton KCS gene family revealed a binary mode of action for gibberellin A regulated fiber growth. J Integr Plant Biol 58(6):577-89 PMID:26399709
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  • Yan C, et al. (2016) Structure of a yeast activated spliceosome at 3.5 Å resolution. Science 353(6302):904-11 PMID:27445306
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  • Zhang Q, et al. (2016) Regulation of filamentation in the human fungal pathogen Candida tropicalis. Mol Microbiol 99(3):528-45 PMID:26466925
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  • Yi S, et al. (2011) Utilization of the mating scaffold protein in the evolution of a new signal transduction pathway for biofilm development. mBio 2(1):e00237-10 PMID:21221248
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  • Sahni N, et al. (2010) Tec1 mediates the pheromone response of the white phenotype of Candida albicans: insights into the evolution of new signal transduction pathways. PLoS Biol 8(5):e1000363 PMID:20454615
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  • Huang G (2009) Synthesis and stability assay of 4-methylumbelliferyl (1-->3)-beta-D-pentaglucoside. J Enzyme Inhib Med Chem 24(2):453-6 PMID:18608765
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  • Huang G, et al. (2009) Conserved WCPL and CX4C domains mediate several mating adhesin interactions in Saccharomyces cerevisiae. Genetics 182(1):173-89 PMID:19299340
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  • Huang G, et al. (2009) Rolled-up transparent microtubes as two-dimensionally confined culture scaffolds of individual yeast cells. Lab Chip 9(2):263-8 PMID:19107283
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  • Huang G, et al. (2003) Posttranslational modifications required for cell surface localization and function of the fungal adhesin Aga1p. Eukaryot Cell 2(5):1099-114 PMID:14555493
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  • Song X, et al. (2001) Phox homology domains specifically bind phosphatidylinositol phosphates. Biochemistry 40(30):8940-4 PMID:11467955
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