The p75 receptor acts as a displacement factor that releases Rho from Rho-GDI (original) (raw)
References
Dechant, G. & Barde, Y.A. The neurotrophin receptor p75(NTR): novel functions and implications for diseases of the nervous system. Nat. Neurosci.5, 1131–1136 (2002). ArticleCAS Google Scholar
Yamashita, T., Tucker, K.L. & Barde, Y.A. Neurotrophin binding to the p75 receptor modulates Rho activity and axonal outgrowth. Neuron24, 585–593 (1999). ArticleCAS Google Scholar
Davies, A.M. Neurotrophins: neurotrophic modulation of neurite growth. Curr. Biol.10, 198–200 (2000). Article Google Scholar
Schmidt, A. & Hall, A. Guanine nucleotide exchange factors for Rho GTPases: turning on the switch. Genes Dev.16, 1587–1609 (2002). ArticleCAS Google Scholar
Yamashita, T., Higuchi, H. & Tohyama, M. The p75 receptor transduces the signal from myelin-associated glycoprotein to Rho. J. Cell Biol.157, 565–570 (2002). ArticleCAS Google Scholar
Wang, K.C., Kim, J.A., Sivasankaran, R., Segal, R. & He, Z. p75 interacts with the Nogo receptor as a co-receptor for Nogo, MAG and OMgp. Nature420, 74–78 (2002). ArticleCAS Google Scholar
Wong, S.T. et al. p75(NTR) and Nogo receptor complex mediates repulsive signaling by myelin-associated glycoprotein. Nat. Neurosci.5, 1302–1308 (2002). ArticleCAS Google Scholar
Sasaki, T. & Takai, Y. The Rho small G protein family–Rho GDI system as a temporal and spatial determinant for cytoskeletal control. Biochem. Biophys. Res. Commun.245, 641–645 (1998). ArticleCAS Google Scholar
Fournier, A.E., GrandPre, T. & Strittmatter, S.M. Identification of a receptor mediating Nogo-66 inhibition of axonal regeneration. Nature409, 341–346 (2001). ArticleCAS Google Scholar
Masuda, T. et al. Molecular cloning and characterization of yeast rho GDP dissociation inhibitor. J. Biol. Chem.269, 19713–19718 (1994). CASPubMed Google Scholar
Feinstein, D.L. & Larhammar, D. Identification of a conserved protein motif in a group of growth factor receptors. FEBS Lett.272, 7–11 (1990). ArticleCAS Google Scholar
Koch, G., Haberman, B., Mohr, C., Just, I. & Aktories, K. Interaction of mastoparan with the low molecular mass GTP-binding proteins rho/rac. FEBS Lett.291, 336–340 (1991). ArticleCAS Google Scholar
Takahashi, K. et al. Direct interaction of the Rho GDP dissociation inhibitor with ezrin/radixin/moesin initiates the activation of the Rho small G protein. J. Biol. Chem.272, 23371–23375 (1997). ArticleCAS Google Scholar
Yaku, H., Sasaki, T. & Takai, Y. The Dbl oncogene product as a GDP/GTP exchange protein for the Rho family: its properties in comparison with those of Smg GDS. Biochem. Biophys. Res. Commun.198, 811–817 (1994). ArticleCAS Google Scholar
Ilag, L.L. et al. Selection of a peptide ligand to the p75 neurotrophin receptor death domain and determination of its binding sites by NMR. Biochem. Biophys. Res. Commun.255, 104–109 (1999). ArticleCAS Google Scholar
Schwarze, S.R., Ho, A., Vocero-Akbani, A. & Dowdy, S.F. In vivo protein transduction: delivery of a biologically active protein into the mouse. Science285, 1569–1572 (1999). ArticleCAS Google Scholar
Bentley, C.A. & Lee, K.F. p75 is important for axon growth and Schwann cell migration during development. J. Neurosci.20, 7706–7715 (2000). ArticleCAS Google Scholar
Walsh, G.S., Krol, K.M., Crutcher, K.A. & Kawaja, M.D. Enhanced neurotrophin-induced axon growth in myelinated portions of the CNS in mice lacking the p75 neurotrophin receptor. J. Neurosci.19, 4155–4168 (1999). ArticleCAS Google Scholar
Lee, K.F., Bachman, K., Landis, S. & Jaenisch, R. Dependence on p75 for innervation of some sympathetic targets. Science263, 1447–1449 (1994). ArticleCAS Google Scholar
McQuillen, P.S., DeFreitas, M.F., Zada, G. & Shatz, C.J. A novel role for p75NTR in subplate growth cone complexity and visual thalamocortical innervation. J. Neurosci.22, 3580–3593 (2000). Article Google Scholar
Del Pozo, M.A. et al. Integrins regulate GTP-Rac localized effector interactions through dissociation of Rho-GDI. Nat. Cell Biol.4, 232–239 (2002). ArticleCAS Google Scholar
von Schack, D. et al. Complete ablation of the neurotrophin receptor p75NTR causes defects both in the nervous and the vascular system. Nat. Neurosci.4, 977–978 (2001). ArticleCAS Google Scholar
Lee, K.F. et al. Targeted mutation of the gene encoding the low affinity NGF receptor p75 leads to deficits in the peripheral sensory nervous system. Cell69, 737–749 (1992). ArticleCAS Google Scholar
Liepinsh, E., Ilag, L.L., Otting, G. & Ibanez, C.F. NMR structure of the death domain of the p75 neurotrophin receptor. EMBO J.16, 4999–5005 (1997). ArticleCAS Google Scholar
Ren, X.D., Kiosses, W.B. & Schwartz, M.A. Regulation of the small GTP-binding protein Rho by cell adhesion and the cytoskelton. EMBO J.18, 578–585 (1999). ArticleCAS Google Scholar
Forget, M.A., Desrosiers, R.R., Gingras, D. & Beliveau, R. Phosphorylation states of Cdc42 and RhoA regulate their interactions with Rho GDP dissociation inhibitor and their extraction from biological membranes. Biochem. J.361, 243–254 (2002). ArticleCAS Google Scholar
Hart, M.J., Eva, A., Evans, T., Aaronson, S.A. & Cerione, R.A. Catalysis of guanine nucleotide exchange on the CDC42Hs protein by the dbl oncogene product. Nature354, 311–314 (1991). ArticleCAS Google Scholar
Cai, D., Shen, Y., De Bellard, M., Tang, S. & Filbin, M.T. Prior exposure to neurotrophins blocks inhibition of axonal regeneration by MAG and myelin via a cAMP-dependent mechanism. Neuron22, 89–101 (1999). ArticleCAS Google Scholar