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  • Author: Tang F
  • References

Author: Tang F


References 16 references


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  • Kadhim I, et al. (2022) Up-regulation of Osh6 boosts an anti-aging membrane trafficking pathway toward vacuoles. Microb Cell 9(8):145-157 PMID:35974810
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  • Zhang Y, et al. (2022) Enhancement of linalool production in Saccharomyces cerevisiae by utilizing isopentenol utilization pathway. Microb Cell Fact 21(1):212 PMID:36243714
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  • Gebre S, et al. (2012) Osh6 overexpression extends the lifespan of yeast by increasing vacuole fusion. Cell Cycle 11(11):2176-88 PMID:22622083
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  • Wuttke D, et al. (2012) Dissecting the gene network of dietary restriction to identify evolutionarily conserved pathways and new functional genes. PLoS Genet 8(8):e1002834 PMID:22912585
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  • Tang F and Liu W (2010) An age-dependent feedback control model of calcium dynamics in yeast cells. J Math Biol 60(6):849-79 PMID:19672599
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  • Jin Y, et al. (2009) PTC1 is required for vacuole inheritance and promotes the association of the myosin-V vacuole-specific receptor complex. Mol Biol Cell 20(5):1312-23 PMID:19116310
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  • Tan Y, et al. (2009) Identification of longevity genes with systems biology approaches. Adv Appl Bioinform Chem 2:49-56 PMID:21918615
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  • Mete M, et al. (2008) A structural approach for finding functional modules from large biological networks. BMC Bioinformatics 9 Suppl 9(Suppl 9):S19 PMID:18793464
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  • Tang F, et al. (2008) A life-span extending form of autophagy employs the vacuole-vacuole fusion machinery. Autophagy 4(7):874-86 PMID:18690010
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  • Duex JE, et al. (2006) The Vac14p-Fig4p complex acts independently of Vac7p and couples PI3,5P2 synthesis and turnover. J Cell Biol 172(5):693-704 PMID:16492811
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  • Peng Y, et al. (2006) Palmitoylation plays a role in targeting Vac8p to specific membrane subdomains. Traffic 7(10):1378-87 PMID:16978392
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  • Tang F, et al. (2006) Vac8p, an armadillo repeat protein, coordinates vacuole inheritance with multiple vacuolar processes. Traffic 7(10):1368-77 PMID:16824055
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  • Ishikawa K, et al. (2003) Identification of an organelle-specific myosin V receptor. J Cell Biol 160(6):887-97 PMID:12642614
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  • Tang F, et al. (2003) Regulated degradation of a class V myosin receptor directs movement of the yeast vacuole. Nature 422(6927):87-92 PMID:12594460
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  • Catlett NL, et al. (2000) Two distinct regions in a yeast myosin-V tail domain are required for the movement of different cargoes. J Cell Biol 150(3):513-26 PMID:10931864
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  • Zhang HR, et al. (2000) [Bioconversion of hemicellulose hydrolysates for xylitol production]. Sheng Wu Gong Cheng Xue Bao 16(3):304-7 PMID:11059268
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