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  • Author: Lee WL
  • References

Author: Lee WL


References 22 references


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  • Omer S, et al. (2020) Overexpression of Mdm36 reveals Num1 foci that mediate dynein-dependent microtubule sliding in budding yeast. J Cell Sci 133(20) PMID:32938686
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  • Greenberg SR, et al. (2018) Num1 versus NuMA: insights from two functionally homologous proteins. Biophys Rev 10(6):1631-1636 PMID:30402673
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  • Omer S, et al. (2018) Cortical dynein pulling mechanism is regulated by differentially targeted attachment molecule Num1. Elife 7 PMID:30084355
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  • Zhu Y, et al. (2018) An in vitro Microscopy-based Assay for Microtubule-binding and Microtubule-crosslinking by Budding Yeast Microtubule-associated Protein. Bio Protoc 8(23) PMID:30733975
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  • Zhu Y, et al. (2017) Microtubule cross-linking activity of She1 ensures spindle stability for spindle positioning. J Cell Biol 216(9):2759-2775 PMID:28794129
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  • Markus SM, et al. (2015) Improved Plasmids for Fluorescent Protein Tagging of Microtubules in Saccharomyces cerevisiae. Traffic 16(7):773-786 PMID:25711127
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  • Markus SM, et al. (2012) She1-mediated inhibition of dynein motility along astral microtubules promotes polarized spindle movements. Curr Biol 22(23):2221-30 PMID:23142046
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  • Markus SM, et al. (2012) Astral microtubule asymmetry provides directional cues for spindle positioning in budding yeast. Exp Cell Res 318(12):1400-6 PMID:22542856
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  • Tang X, et al. (2012) A novel patch assembly domain in Num1 mediates dynein anchoring at the cortex during spindle positioning. J Cell Biol 196(6):743-56 PMID:22431751
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  • Markus SM and Lee WL (2011) Microtubule-dependent path to the cell cortex for cytoplasmic dynein in mitotic spindle orientation. Bioarchitecture 1(5):209-215 PMID:22754610
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  • Markus SM and Lee WL (2011) Regulated offloading of cytoplasmic dynein from microtubule plus ends to the cortex. Dev Cell 20(5):639-51 PMID:21571221
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  • Markus SM, et al. (2011) Quantitative analysis of Pac1/LIS1-mediated dynein targeting: Implications for regulation of dynein activity in budding yeast. Cytoskeleton (Hoboken) 68(3):157-74 PMID:21294277
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  • Ferenz NP, et al. (2010) Imaging protein dynamics in live mitotic cells. Methods 51(2):193-6 PMID:20085816
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  • Markus SM, et al. (2009) Motor- and tail-dependent targeting of dynein to microtubule plus ends and the cell cortex. Curr Biol 19(3):196-205 PMID:19185494
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  • Tang X, et al. (2009) A CAAX motif can compensate for the PH domain of Num1 for cortical dynein attachment. Cell Cycle 8(19):3182-90 PMID:19755860
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  • Vorvis C, et al. (2008) Photoactivatable GFP tagging cassettes for protein-tracking studies in the budding yeast Saccharomyces cerevisiae. Yeast 25(9):651-9 PMID:18727145
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  • Lee WL, et al. (2005) The offloading model for dynein function: differential function of motor subunits. J Cell Biol 168(2):201-7 PMID:15642746
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  • Li J, et al. (2005) NudEL targets dynein to microtubule ends through LIS1. Nat Cell Biol 7(7):686-90 PMID:15965467
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    • Reference supplement
  • Lee WL, et al. (2003) The role of the lissencephaly protein Pac1 during nuclear migration in budding yeast. J Cell Biol 160(3):355-64 PMID:12566428
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  • Weaver AM, et al. (2003) Integration of signals to the Arp2/3 complex. Curr Opin Cell Biol 15(1):23-30 PMID:12517700
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  • Lee WL, et al. (2000) Fission yeast myosin-I, Myo1p, stimulates actin assembly by Arp2/3 complex and shares functions with WASp. J Cell Biol 151(4):789-800 PMID:11076964
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  • Feng L, et al. (1997) Fluorescence probing of yeast actin subdomain 3/4 hydrophobic loop 262-274. Actin-actin and actin-myosin interactions in actin filaments. J Biol Chem 272(27):16829-37 PMID:9201989
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