A proposed mechanism for cell polarization with no external cues
2004; Wiley; Volume: 58; Issue: 2 Linguagem: Inglês
10.1002/cm.20001
ISSN1097-0169
AutoresBarbara W. Bernstein, James R. Bamburg,
Tópico(s)Plant Reproductive Biology
ResumoCell MotilityVolume 58, Issue 2 p. 96-103 ViewFree Access A proposed mechanism for cell polarization with no external cues Barbara W. Bernstein, Corresponding Author Barbara W. Bernstein [email protected] Department of Biochemistry and Molecular Biology and Molecular, Cellular, and Integrative Neuroscience Program, Colorado State University, Fort CollinsDept. of Biochemistry and Molecular Biology, 1870 Campus Delivery, Colorado State University, Fort Collins, CO 80523-1870Search for more papers by this authorJames R. Bamburg, James R. Bamburg Department of Biochemistry and Molecular Biology and Molecular, Cellular, and Integrative Neuroscience Program, Colorado State University, Fort CollinsSearch for more papers by this author Barbara W. Bernstein, Corresponding Author Barbara W. Bernstein [email protected] Department of Biochemistry and Molecular Biology and Molecular, Cellular, and Integrative Neuroscience Program, Colorado State University, Fort CollinsDept. of Biochemistry and Molecular Biology, 1870 Campus Delivery, Colorado State University, Fort Collins, CO 80523-1870Search for more papers by this authorJames R. Bamburg, James R. Bamburg Department of Biochemistry and Molecular Biology and Molecular, Cellular, and Integrative Neuroscience Program, Colorado State University, Fort CollinsSearch for more papers by this author First published: 05 April 2004 https://doi.org/10.1002/cm.20001Citations: 11AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onEmailFacebookTwitterLinkedInRedditWechat REFERENCES Ambach A, Saunus J, Konstandin M, Wesselborg S, Meuer SC, Samstag Y. 2000. The serine phosphatases PP1 and PP2A associate with and activate the actin-binding protein cofilin in human T lymphocytes. Eur J Immunol 30: 3422–3431. Arber S, Barbayannis FA, Hanser H, Schneider C, Stanyon CA, Bernard O, Caroni P. 1998. Regulation of actin dynamics through phosphorylation of cofilin by LIM-kinase. Nature 393: 805–809. Bailly M, Jones GE. 2003. Polarised migration: cofilin holds the front. Curr Biol 13: R128–R130. Bamburg JR. 1999. Proteins of the ADF/cofilin family: essential regulators of actin dynamics. Annu Rev Cell Dev Biol 15: 185–230. Bamburg JR, Wiggan OP. 2002. ADF/cofilin and actin dynamics in disease. Acting-depolymerizing factor. Trends Cell Biol 12: 598–605. Bernstein BW, Bamburg JR. 1982. Tropomyosin binding to F-actin protects the F-actin from disassembly by brain actin-depolymerizing factor (ADF). Cell Motil 2: 1–8. Bernstein BW, Painter WB, Chen H, Minamide LS, Abe H, Bamburg JR. 2000. Intracellular pH modulation of ADF/cofilin proteins. Cell Motil Cytoskeleton 47: 319–336. Birkenfeld J, Betz H, Roth D. 2002. Identification of cofilin and LIM-kinase 1 as novel interaction partners of 14-3-3zeta. Biochem J 369: 45–54. Bray D. 2000. Chaotic actin. Genome Biol 1: reviews 108.1–108.3. Bretscher A. 2003. Polarized growth and organelle segregation in yeast: the tracks, motors, and receptors. J Cell Biol 160: 811–816. Bryce NS, Schevzov G, Ferguson V, Percival JM, Lin JJ, Matsumura F, Bamburg JR, Jeffrey PL, Hardeman EC, Gunning P, Weinberger RP. 2003. Specification of actin filament function and molecular composition by tropomyosin isoforms. Mol Biol Cell 14: 1002–1016. Carlier MF, Laurent V, Santolini J, Melki R, Didry D, Xia GX, Hong Y, Chua NH, Pantaloni D. 1997. Actin depolymerizing factor (ADF/cofilin) enhances the rate of filament turnover: Implication in actin-based motility. J Cell Biol 136: 1307–1322. Chan AY, Bailly M, Zebda N, Segall JE, Condeelis JS. 2000. Role of cofilin in epidermal growth factor-stimulated actin polymerization and lamellipod protrusion. J Cell Biol 148: 531–542. Chen H. 2001. In vitro analysis of the functional differences between proteins of the ADF/cofilin family. Ph.D Thesis, Colorado State University, Fort Collins, CO. Chen H, Bernstein BW, Bamburg JR. 2000. Regulating actin-filament dynamics in vivo. Trends Biochem Sci 25: 19–23. Chen L, Janetopoulos C, Huang YE, Iijima M, Borleis J, Devreotes PN. 2003. Two phases of actin polymerization display different dependencies on PI(3,4,5)P3 accumulation and have unique roles during chemotaxis. Mol Biol Cell 14: 5028–5037. Cramer LP, Briggs LJ, Dawe HR. 2002. Use of fluorescently labelled deoxyribonuclease I to spatially measure G-actin levels in migrating and non-migrating cells. Cell Motil Cytoskeleton 51: 27–38. Dawe HR, Minamide LS, Bamburg JR, Cramer LP. 2003. ADF/cofilin controls cell polarity during fibroblast migration. Curr Biol 13: 252–257. Denker SP, Barber DL. 2002. Cell migration requires both ion translocation and cytoskeletal anchoring by the Na-H exchanger NHE1. J Cell Biol 159: 1087–1096. Denker SP, Huang DC, Orlowski J, Furthmayr H, Barber DL. 2000. Direct binding of the Na—H exchanger NHE1 to ERM proteins regulates the cortical cytoskeleton and cell shape independently of H(+) translocation. Mol Cell 6: 1425–1436. DesMarais V, Ichetovkin I, Condeelis J, Hitchcock-DeGregori SE. 2002. Spatial regulation of actin dynamics: a tropomyosin-free, actin-rich compartment at the leading edge. J Cell Sci 115: 4649–4660. Du JY, Frieden C. 1998. Kinetic studies on the effect of yeast cofilin on yeast actin polymerization. Biochemistry 37: 13276–13284. Edmonds BT, Murray J, Condeelis J. 1995. pH regulation of the F-actin binding properties of Dictyostelium elongation factor 1α. J Biol Chem 270: 15222–15230. Endo M, Ohashi K, Sasaki Y, Goshima Y, Niwa R, Uemura T, Mizuno K. 2003. Control of growth cone motility and morphology by LIM kinase and slingshot via phosphorylation and dephosphorylation of cofilin. J Neurosci 23: 2527–2537. Galkin VE, Orlova A, VanLoock MS, Shvetsov A, Reisler E, Egelman EH. 2003. ADF/cofilin use an intrinsic mode of F-actin instability to disrupt actin filaments. J Cell Biol 163: 1057–1066. Giardini PA, Fletcher DA, Theriot JA. 2003. Compression forces generated by actin comet tails on lipid vesicles. Proc Natl Acad Sci USA 100: 6493–6498. Gohla A, Bokoch GM. 2002. 14-3-3 regulates actin dynamics by stabilizing phosphorylated cofilin. Curr Biol 12: 1704–1710. Hayden SM, Miller PS, Brauweiler A, Bamburg JR. 1993. Analysis of the interactions of actin depolymerizing factor with G- and F-actin. Biochemistry 32: 9994–10004. Hooley R, Yu CY, Symons M, Barber DL. 1996. G alpha 13 stimulates Na+-H+ exchange through distinct Cdc42-dependent and RhoA-dependent pathways. J Biol Chem 271: 6152–6158. Huang YE, Iijima M, Parent CA, Funamoto S, Firtel RA, Devreotes P. 2003. Receptor-mediated regulation of PI3Ks confines PI(3,4,5)P3 to the leading edge of chemotaxing cells. Mol Biol Cell 14: 1913–1922. Idrissi FZ, Wolf BL, Geli MI. 2002. Cofilin, but not profilin, is required for myosin-I-induced actin polymerization and the endocytic uptake in yeast. Mol Biol Cell 13: 4074–4087. Lamb JA, Allen PG, Tuan BY, Janmey PA. 1993. Modulation of gelsolin function. Activation at low pH overrides Ca2+ requirement. J Biol Chem 268: 8999–9004. Li F, Higgs HN. 2003. The mouse formin mDia1 is a potent actin nucleation factor regulated by autoinhibition. Curr Biol 13: 1335–1340. Li M, Morley P, Asem EK, Tsang BK. 1991. Epidermal growth factor elevates intracellular pH in chicken granulosa cells. Endocrinology 129: 656–662. Maciver SK, Zot HG, Pollard TD. 1991. Characterization of actin filament severing by actophorin from Acanthamoeba castellanii. J Cell Biol 115: 1611–1620. Maciver SK, Pope BJ, Whytock S, Weeds AG. 1998. The effect of two actin depolymerizing factors (ADF/cofilins) on actin filament turnover: pH sensitivity of F-actin binding by human ADF but not of Acanthamoeba actophorin. Eur J Biochem 256: 388–397. Magdalena J, Millard TH, Machesky LM. 2003. Microtubule involvement in NIH 3T3 Golgi and MTOC polarity establishment. J Cell Sci 116: 743–756. McGough A, Pope B, Chiu W, Weeds A. 1997. Cofilin changes the twist of F-actin: Implications for actin filament dynamics and cellular function. J Cell Biol 138: 771–781. Meberg PJ, Ono S, Minamide LS, Takahashi M, Bamburg JR. 1998. Actin depolymerizing factor and cofilin phosphorylation dynamics: Response to signals that regulate neurite extension. Cell Motil Cytoskeleton 39: 172–190. Minamide LS, Painter WB, Schevzov G, Gunning P, Bamburg JR. 1997. Differential regulation of actin depolymerizing factor and cofilin in response to alterations in the actin monomer pool. J Biol Chem 272: 8303–8309. Mogilner A, Oster G. 1996. Cell motility driven by actin polymerization. Biophys J 71: 3030–3045. Mogilner A, Oster G. 2003. Force generation by actin polymerization II: The elastic ratchet and tethered filaments. Biophys J 84: 1591–1605. Moon A, Drubin DG. 1995. The ADF/cofilin proteins: stimulus-responsive modulators of actin dynamics. Mol Biol Cell 6: 1423–1431. Morgan TE, Lockerbie RO, Minamide LS, Browning MD, Bamburg JR. 1993. Isolation and characterization of a regulated form of actin depolymerizing factor. J Cell Biol 122: 623–633. Nakamura N, Oshiro N, Fukata Y, Amano M, Fukata M, Kuroda S, Matsuura Y, Leung T, Lim L, Kaibuchi K. 2000. Phosphorylation of ERM proteins at filopodia induced by Cdc42. Genes Cells 5: 571–581. Nishita M, Aizawa H, Mizuno K. 2002. Stromal cell-derived factor 1α activates LIM kinase 1 and induces cofilin phosphorylation for T-cell chemotaxis. Mol Cell Biol 22: 774–783. Niwa R, Nagata-Ohashi K, Takeichi M, Mizuno K, Uemura T. 2002. Control of actin reorganization by Slingshot, a family of phosphatases that dephosphorylate ADF/cofilin. Cell 108: 233–246. Ohta Y, Kousaka K, Nagata-Ohashi K, Ohashi K, Muramoto A, Shima Y, Niwa R, Uemura T, Mizuno K. 2003. Differential activities, subcellular distribution and tissue expression patterns of three members of Slingshot family phosphatases that dephosphorylate cofilin. Genes Cells 8: 811–824. Ojala PJ, Paavilainen V, Lappalainen P. 2001. Identification of yeast cofilin residues specific for actin monomer and PIP2 binding. Biochemistry 40: 15562–15569. Ono S, Ono K. 2002. Tropomyosin inhibits ADF/cofilin-dependent actin filament dynamics. J Cell Biol 156: 1065–1076. Peng J, Wallar BJ, Flanders A, Swiatek PJ, Alberts AS. 2003. Disruption of the Diaphanous-related formin Drf1 gene encoding mDia1 reveals a role for Drf3 as an effector for Cdc42. Curr Biol 13: 534–545. Pope BJ, Zierler-Gould KM, Kuhne R, Weeds AG, Ball LJ. 2004. Solution structure of human cofilin: actin binding, pH sensitvity, and relationship to actin-dpolymerizing factor. J Biol Chem 279: 4840–4848. Pruyne D, Evangelista M, Yang CS, Bi EF, Zigmond S, Bretscher A, Boone C. 2002. Role of formins in actin assembly: Nucleation and barbed-end association. Science 297: 612–615. Rosenblatt J, Agnew BJ, Abe H, Bamburg JR, Mitchison TJ. 1997. Xenopus actin depolymerizing factor cofilin (XAC) is responsible for the turnover of actin filaments in Listeria monocytogenes tails. J Cell Biol 136: 1323–1332. Small JV, Stradal T, Vignal E, Rottner K. 2002. The lamellipodium: where motility begins. Trends Cell Biol 12: 112–120. Toshima J, Toshima JY, Amano T, Yang N, Narumiya S, Mizuno K. 2001a. Cofilin phosphorylation by protein kinase testicular protein kinase 1 and its role in integrin-mediated actin reorganization and focal adhesion formation. Mol Biol Cell 12: 1131–1145. Toshima J, Toshima JY, Takeuchi K, Mori R, Mizuno K. 2001b. Cofilin phosphorylation and actin reorganization activities of testicular protein kinase 2 and its predominant expression in testicular Sertoli cells. J Biol Chem 276: 31449–31458. Vartiainen MK, Mustonen T, Mattila PK, Ojala PJ, Thesleff I, Partanen J, Lappalainen P. 2002. The three mouse actin-depolymerizing factor/cofilins evolved to fulfill cell-type-specific requirements for actin dynamics. Mol Biol Cell 13: 183–194. Watanabe N, Mitchison TJ. 2002. Single-molecule speckle analysis of actin filament turnover in lamellipodia. Science 295: 1083–1086. Wedlich-Soldner R, Altschuler S, Wu L, Li R. 2003. Spontaneous cell polarization through actomyosin-based delivery of the Cdc42 GTPase. Science 299: 1231–1235. Yang N, Higuchi O, Ohashi K, Nagata K, Wada A, Kangawa K, Nishida E, Mizuno K. 1998. Cofilin phosphorylation by LIM-kinase 1 and its role in Rac-mediated actin reorganization. Nature 393: 809–812. Yeoh S, Pope B, Mannherz HG, Weeds A. 2002. Determining the differences in actin binding by human ADF and cofilin. J Mol Biol 315: 911–925. Yonezawa N, Nishida E, Sakai H. 1985. pH control of actin polymerization by cofilin. J Biol Chem 260: 14410–14412. Zebda N, Bernard O, Bailly M, Welti S, Lawrence DS, Condeelis JS. 2000. Phosphorylation of ADF/cofilin abolishes EGF-induced actin nucleation at the leading edge and subsequent lamellipod extension. J Cell Biol 151: 1119–1127. Zicha D, Dobbie IM, Holt MR, Monypenny J, Soong DYH, Gray C, Dunn GA. 2003. Rapid actin transport during cell protrusion. Science 300: 142–145. Citing Literature Volume58, Issue2June 2004Pages 96-103 ReferencesRelatedInformation
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