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Journal Abstract Search


212 related items for PubMed ID: 23267414

  • 1. The role of the cofilin-actin rod stress response in neurodegenerative diseases uncovers potential new drug targets.
    Munsie LN, Truant R.
    Bioarchitecture; 2012; 2(6):204-8. PubMed ID: 23267414
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  • 2. Cofilin nuclear-cytoplasmic shuttling affects cofilin-actin rod formation during stress.
    Munsie LN, Desmond CR, Truant R.
    J Cell Sci; 2012 Sep 01; 125(Pt 17):3977-88. PubMed ID: 22623727
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  • 3. Cofilin/actin rod formation by dysregulation of cofilin-1 activity as a central initial step in neurodegeneration.
    Schönhofen P, de Medeiros LM, Chatain CP, Bristot IJ, Klamt F.
    Mini Rev Med Chem; 2014 May 01; 14(5):393-400. PubMed ID: 24813767
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  • 4. ADF/Cofilin-actin rods in neurodegenerative diseases.
    Bamburg JR, Bernstein BW, Davis RC, Flynn KC, Goldsbury C, Jensen JR, Maloney MT, Marsden IT, Minamide LS, Pak CW, Shaw AE, Whiteman I, Wiggan O.
    Curr Alzheimer Res; 2010 May 01; 7(3):241-50. PubMed ID: 20088812
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  • 6. Cofilin rod formation in neurons impairs neuronal structure and function.
    Chen B, Wang Y.
    CNS Neurol Disord Drug Targets; 2015 May 01; 14(4):554-60. PubMed ID: 25714964
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  • 9. Cofilin-actin rod formation in neuronal processes after brain ischemia.
    Won SJ, Minnella AM, Wu L, Eun CH, Rome E, Herson PS, Shaw AE, Bamburg JR, Swanson RA.
    PLoS One; 2018 May 01; 13(10):e0198709. PubMed ID: 30325927
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  • 10. Activated actin-depolymerizing factor/cofilin sequesters phosphorylated microtubule-associated protein during the assembly of alzheimer-like neuritic cytoskeletal striations.
    Whiteman IT, Gervasio OL, Cullen KM, Guillemin GJ, Jeong EV, Witting PK, Antao ST, Minamide LS, Bamburg JR, Goldsbury C.
    J Neurosci; 2009 Oct 14; 29(41):12994-3005. PubMed ID: 19828813
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  • 11. Chronophin mediates an ATP-sensing mechanism for cofilin dephosphorylation and neuronal cofilin-actin rod formation.
    Huang TY, Minamide LS, Bamburg JR, Bokoch GM.
    Dev Cell; 2008 Nov 14; 15(5):691-703. PubMed ID: 19000834
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  • 12. Actin-ADF/cofilin rod formation in Caenorhabditis elegans muscle requires a putative F-actin binding site of ADF/cofilin at the C-terminus.
    Ono K, Ono S.
    Cell Motil Cytoskeleton; 2009 Jul 14; 66(7):398-408. PubMed ID: 19459188
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  • 15. Activity of cofilin can be regulated by a mechanism other than phosphorylation/dephosphorylation in muscle cells in culture.
    Hosoda A, Sato N, Nagaoka R, Abe H, Obinata T.
    J Muscle Res Cell Motil; 2007 Jul 14; 28(2-3):183-94. PubMed ID: 17823847
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  • 16. Mapping cofilin-actin rods in stressed hippocampal slices and the role of cdc42 in amyloid-beta-induced rods.
    Davis RC, Maloney MT, Minamide LS, Flynn KC, Stonebraker MA, Bamburg JR.
    J Alzheimers Dis; 2009 Jul 14; 18(1):35-50. PubMed ID: 19542631
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  • 17. Synaptotoxicity in Alzheimer's Disease Involved a Dysregulation of Actin Cytoskeleton Dynamics through Cofilin 1 Phosphorylation.
    Rush T, Martinez-Hernandez J, Dollmeyer M, Frandemiche ML, Borel E, Boisseau S, Jacquier-Sarlin M, Buisson A.
    J Neurosci; 2018 Nov 28; 38(48):10349-10361. PubMed ID: 30341179
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  • 18. Cofilin and Actin Dynamics: Multiple Modes of Regulation and Their Impacts in Neuronal Development and Degeneration.
    Bamburg JR, Minamide LS, Wiggan O, Tahtamouni LH, Kuhn TB.
    Cells; 2021 Oct 12; 10(10):. PubMed ID: 34685706
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  • 19. Cellular prion protein: A co-receptor mediating neuronal cofilin-actin rod formation induced by β-amyloid and proinflammatory cytokines.
    Walsh KP, Kuhn TB, Bamburg JR.
    Prion; 2014 Oct 12; 8(6):375-80. PubMed ID: 25426519
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  • 20. Mutant huntingtin causes defective actin remodeling during stress: defining a new role for transglutaminase 2 in neurodegenerative disease.
    Munsie L, Caron N, Atwal RS, Marsden I, Wild EJ, Bamburg JR, Tabrizi SJ, Truant R.
    Hum Mol Genet; 2011 May 15; 20(10):1937-51. PubMed ID: 21355047
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