Cytoskelett und Zellbewegungen

Part of the Springer-Lehrbuch book series (SLB)


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9.8 Literatur

Cytoskelett allgemein

  1. Dent EW, Gertler FB (2003) Cytoskeletal dynamics and transport in growth cone motility and axon guidance. Neuron 40:209–227PubMedCrossRefGoogle Scholar
  2. Fuchs E, Karakesisoglou I (2001) Bridging cytoskeletal intersections. Genes Dev 15:1–14PubMedCrossRefGoogle Scholar
  3. Howard J (2001) Mechanics of Motor Proteins and the Cytoskeleton. Sinauer, New YorkGoogle Scholar
  4. Louvard D, Schroer T (eds) (2002) Cell structure and dynamics. Curr Opin Cell Biol 14:2Google Scholar
  5. Pollard TD et al (2003) Nature Insight — Reviews on the cytoskeleton. Nature 422:741–781PubMedCrossRefGoogle Scholar


  1. Rieder CL et al (2001) The centrosome in vertebrates: more than a microtubule-organizing center. Trends Cell Biol 11:413–419PubMedCrossRefGoogle Scholar
  2. Wasteneys GO (2002) Microtubule organization in the green kingdom. J Cell Sci 115:1345–1354PubMedGoogle Scholar


  1. Coulombe PA et al (2001) Intermediate filaments at a glance. J Cell Sci 114:4345–4347PubMedGoogle Scholar
  2. Helfand BT et al (2003) The dynamic and motile properties of intermediate filaments. Annu Rev Cell Develop Biol 19:445–467CrossRefGoogle Scholar
  3. Yoon KH et al (2001) Insights into the dynamic properties of keratin intermediate filaments in living epithelial cells. J Cell Biol 153:503–516PubMedCrossRefGoogle Scholar

Molekulare Motoren

  1. Asai DJ, Koonce MP (2001) The dynein heavy chain: structure, mechanics and evolution. Trends Cell Biol 11:196–202PubMedCrossRefGoogle Scholar
  2. Cross RA (2004) Molecular motors: kinesin’s interesting limp. Curr Biol 14:R158–R159PubMedCrossRefGoogle Scholar
  3. Endow SA, Barker DS (2003) Processive and nonprocessive models of kinesin movement. Annu Rev Physiol 65:161–175PubMedCrossRefGoogle Scholar
  4. Spudich JA, Rock RS (2002) A crossbridge too far. Nature Cell Biol 4:E8–E10 [unkonventionelle Myosine]PubMedCrossRefGoogle Scholar
  5. Tyska MJ, Mooseker MS (2003) Myosin-V motility: these levers were made for walking. Trends Cell Biol 13:447–451PubMedCrossRefGoogle Scholar
  6. Vale RD (2003) The molecular motor toolbox for intracellular transport. Cell 112:467–480PubMedCrossRefGoogle Scholar
  7. Vallee RB, Höök P (2003) A magnificent machine. Nature 421:701–702 [Dynein]PubMedCrossRefGoogle Scholar

Actinfilamente und Actin bindende Proteine

  1. Condeelis J (2001) How is actin polymerization nucleated in vivo? Trends Cell Biol 11:288–293PubMedCrossRefGoogle Scholar
  2. Higgs HN, Pollard TD (2001) Regulation of actin filament network formation through ARP2/3 complex. Annu Rev Biochem 70:649–676PubMedCrossRefGoogle Scholar
  3. Pollard TD, Borisy GG (2003) Cellular motility driven by assembly and disassembly of actin filaments. Cell 112:453–465PubMedCrossRefGoogle Scholar
  4. Welch MD, Mullins RD (2002) Cellular control of actin nucleation. Annu Rev Cell Dev Biol 18:247–288PubMedCrossRefGoogle Scholar


  1. Clark KA et al (2002) Striated muscle cytoarchitecture. Annu Rev Cell Dev Biol 18:637–706PubMedCrossRefGoogle Scholar
  2. Geeves MA, Holmes KC (1999) Structural mechanism of muscle contraction. Annu Rev Biochem 68:687–728PubMedCrossRefGoogle Scholar

Bewegungen außerhalb der Muskeln

  1. Bray D (2001) Cell Movements. Garland, New York LondonGoogle Scholar
  2. Dickson BJ (2002) Molecular mechanisms of axon guidance. Science 298:1959–1964PubMedCrossRefGoogle Scholar
  3. Lee H, Van Vactor D (2003) Neurons take shape. Curr Biol 13:R152–R161PubMedCrossRefGoogle Scholar
  4. Pantaloni D et al (2001) Mechanism of actin-based motility. Science 292:1502–1506PubMedCrossRefGoogle Scholar
  5. Small JV et al (2002) The lamellipodium: where motility begins. Trends Cell Biol 12:112–120PubMedCrossRefGoogle Scholar

Primäre Ciliendefekte aus Sicht des Menschen

  1. McGrath J, Brueckner M (2003) Cilia are at the heart of vertebrate left-right asymmetry. Curr Opin Gen Dev 13:385–392CrossRefGoogle Scholar
  2. Pazour GJ, Rosenbaum JL (2002) Intraflagellar transport and cilia-dependent diseases. Trends Cell Biol 12:551–555PubMedCrossRefGoogle Scholar

Copyright information

© Springer-Verlag Berlin Heidelberg 2005

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