[1] | Gibson NJ, Rossler W, Nighorn AJ, Oland LA, Hildebrand JG, et al. (2001) Neuron-glia communication via nitric oxide is essential in establishing antennal-lobe structure in Manduca sexta. Dev Biol 240: 326–339.
|
[2] | Oland LA, Tolbert LP (2003) Key interactions between neurons and glial cells during neural development in insects. Annu Rev Entomol 48: 89–110.
|
[3] | Tolbert LP, Oland LA, Tucker ES, Gibson NJ, Higgins MR, et al. (2004) Bidirectional influences between neurons and glial cells in the developing olfactory system. Prog Neurobiol 73: 73–105.
|
[4] | Gibson NJ, Tolbert LP (2006) Activation of epidermal growth factor receptor mediates receptor axon sorting and extension in the developing olfactory system of the moth Manduca sexta. J Comp Neurol 495: 554–572.
|
[5] | Treloar HB, Purcell AL, Greer CA (1999) Glomerular formation in the developing rat olfactory bulb. J Comp Neurol 413: 289–304.
|
[6] | Jhaveri D, Sen A, Rodrigues V (2000) Mechanisms underlying olfactory neuronal connectivity in Drosophila-the atonal lineage organizes the periphery while sensory neurons and glia pattern the olfactory lobe. Dev Biol 226: 73–87.
|
[7] | Parker RJ, Auld VJ (2004) Signaling in glial development: differentiation migration and axon guidance. Biochem Cell Biol 82: 694–707.
|
[8] | Parker RJ, Auld VJ (2006) Roles of glia in the Drosophila nervous system. Semin Cell Dev Biol 17: 66–77.
|
[9] | R?ssler W, Oland LA, Higgins MR, Hildebrand JG, Tolbert LP (1999) Development of a glia-rich axon-sorting zone in the olfactory pathway of the moth Manduca sexta. J Neurosci 19: 9865–9877.
|
[10] | Higgins MR, Gibson NJ, Eckholdt PA, Nighorn A, Copenhaver PF, et al. (2002) Different isoforms of Fasciclin II are expressed by a subset of developing olfactory receptor neurons and by olfactory-nerve glial cells during formation of glomeruli in the moth Manduca sexta. Dev Biol 244: 134–154.
|
[11] | Lemmon V, Farr KL, Lagenaur C (1989) L1-mediated axon outgrowth occurs via a homophilic binding mechanism. Neuron 2: 1597–1603.
|
[12] | Miragall F, Kadmon G, Schachner M (1989) Expression of L1 and N-CAM cell adhesion molecules during development of the mouse olfactory system. Dev Biol 135: 272–286.
|
[13] | Hortsch M (1996) The L1 family of neural cell adhesion molecules: old proteins performing new tricks. Neuron 17: 587–593.
|
[14] | Treloar H, Tomasiewicz H, Magnuson T, Key B (1997) The central pathway of primary olfactory axons is abnormal in mice lacking the N-CAM-180 isoform. J Neurobiol 32: 643–658.
|
[15] | Crossin KL, Krushel LA (2000) Cellular signaling by neural cell adhesion molecules of the immunoglobulin superfamily. Dev Dyn 218: 260–279.
|
[16] | Kamiguchi H, Lemmon V (2000) IgCAMs: bidirectional signals underlying neurite growth. Curr Opin Cell Biol 12: 598–605.
|
[17] | Hamlin JA, Fang H, Schwob JE (2004) Differential expression of the mammalian homologue of fasciclin II during olfactory development in vivo and in vitro. J Comp Neurol 474: 438–452.
|
[18] | Kiryushko D, Berezin V, Bock E (2004) Regulators of neurite outgrowth: role of cell adhesion molecules. Ann N Y Acad Sci 1014: 140–154.
|
[19] | Pike LJ (2006) Rafts defined: a report on the Keystone Symposium on Lipid Rafts and Cell Function. J Lipid Res 47: 1597–1598.
|
[20] | Brown DA, London E (1997) Structure of detergent-resistant membrane domains: does phase separation occur in biological membranes? Biochem Biophys Res Commun 240: 1–7.
|
[21] | Simons K, Ikonen E (1997) Functional rafts in cell membranes. Nature 387: 569–572.
|
[22] | Brown DA, London E (1998) Functions of lipid rafts in biological membranes. Annu Rev Cell Dev Biol 14: 111–136.
|
[23] | Brown DA, London E (1998) Structure and origin of ordered lipid domains in biological membranes. J Membr Biol 164: 103–114.
|
[24] | Brown DA, London E (2000) Structure and function of sphingolipid- and cholesterol-rich membrane rafts. J Biol Chem 275: 17221–17224.
|
[25] | Tsui-Pierchala BA, Encinas M, Milbrandt J, Johnson EM Jr (2002) Lipid rafts in neuronal signaling and function. Trends Neurosci 25: 412–417.
|
[26] | Allende D, Vidal A, McIntosh TJ (2004) Jumping to rafts: gatekeeper role of bilayer elasticity. Trends Biochem Sci 29: 325–330.
|
[27] | Golub T, Wacha S, Caroni P (2004) Spatial and temporal control of signaling through lipid rafts. Curr Opin Neurobiol 14: 542–550.
|
[28] | Allen JA, Halverson-Tamboli RA, Rasenick MM (2007) Lipid raft microdomains and neurotransmitter signalling. Nat Rev Neurosci 8: 128–140.
|
[29] | Simons K, Toomre D (2000) Lipid rafts and signal transduction. Nat Rev Mol Cell Biol 1: 31–39.
|
[30] | Tansey MG, Baloh RH, Milbrandt J, Johnson EM Jr (2000) GFRalpha-mediated localization of RET to lipid rafts is required for effective downstream signaling, differentiation, and neuronal survival. Neuron 25: 611–623.
|
[31] | Nakai Y, Kamiguchi H (2002) Migration of nerve growth cones requires detergent-resistant membranes in a spatially defined and substrate-dependent manner. J Cell Biol 159: 1097–1108.
|
[32] | Niethammer P, Delling M, Sytnyk V, Dityatev A, Fukami K, et al. (2002) Cosignaling of NCAM via lipid rafts and the FGF receptor is required for neuritogenesis. J Cell Biol 157: 521–532.
|
[33] | Pike LJ, Casey L (2002) Cholesterol levels modulate EGF receptor-mediated signaling by altering receptor function and trafficking. Biochemistry (Mosc) 41: 10315–10322.
|
[34] | Roepstorff K, Thomsen P, Sandvig K, van Deurs B (2002) Sequestration of epidermal growth factor receptors in non-caveolar lipid rafts inhibits ligand binding. J Biol Chem 277: 18954–18960.
|
[35] | Ma L, Huang YZ, Pitcher GM, Valtschanoff JG, Ma YH, et al. (2003) Ligand-dependent recruitment of the ErbB4 signaling complex into neuronal lipid rafts. J Neurosci 23: 3164–3175.
|
[36] | Ridyard MS, Robbins SM (2003) Fibroblast growth factor-2-induced signaling through lipid raft-associated fibroblast growth factor receptor substrate 2 (FRS2). J Biol Chem 278: 13803–13809.
|
[37] | Falk J, Thoumine O, Dequidt C, Choquet D, Faivre-Sarrailh C (2004) NrCAM coupling to the cytoskeleton depends on multiple protein domains and partitioning into lipid rafts. Mol Biol Cell 15: 4695–4709.
|
[38] | Takebayashi M, Hayashi T, Su TP (2004) Sigma-1 receptors potentiate epidermal growth factor signaling towards neuritogenesis in PC12 cells: potential relation to lipid raft reconstitution. Synapse 53: 90–103.
|
[39] | Yang XL, Xiong WC, Mei L (2004) Lipid rafts in neuregulin signaling at synapses. Life Sci 75: 2495–2504.
|
[40] | Gibson NJ, Hildebrand JG, Tolbert LP (2004) Glycosylation patterns are sexually dimorphic throughout development of the olfactory system in Manduca sexta. J Comp Neurol 476: 1–18.
|
[41] | Santuccione A, Sytnyk V, Leshchyns'ka I, Schachner M (2005) Prion protein recruits its neuronal receptor NCAM to lipid rafts to activate p59fyn and to enhance neurite outgrowth. J Cell Biol 169: 341–354.
|
[42] | Sanes JR, Hildebrand JG (1976) Structure and development of antennae in a moth, Manduca sexta. Dev Biol 51: 280–299.
|
[43] | Tolbert LP, Matsumoto SG, Hildebrand JG (1983) Development of synapses in the antennal lobes of the moth Manduca sexta during metamorphosis. J Neurosci 3: 1158–1175.
|
[44] | Oland LA, Tolbert LP (1987) Glial patterns during early development of antennal lobes of Manduca sexta: a comparison between normal lobes and lobes deprived of antennal axons. J Comp Neurol 255: 196–207.
|
[45] | Tucker ES, Oland LA, Tolbert LP (2004) In vitro analyses of interactions between olfactory receptor growth cones and glial cells that mediate axon sorting and glomerulus formation. J Comp Neurol 472: 478–495.
|
[46] | Oland LA, Muller T, Kettenmann H, Hayashi J (1996) Preparation of primary cultures and acute slices of the nervous system of the moth Manduca sexta. J Neurosci Methods 69: 103–112.
|
[47] | Sanes JR, Prescott DJ, Hildebrand JG (1977) Cholinergic neurochemical development of normal and deafferented antennal lobes during metamorphosis of the moth, Manduca sexta. Brain Res 119: 389–402.
|
[48] | Kent K (1985) Metamorphosis of the antennal center and the influence of sensory innervation on the formation of glomeruli in the hawkmoth Manduca sexta.PhD dissertation, Harvard University.
|
[49] | Kent KS, Harrow ID, Quartararo P, Hildebrand JG (1986) An accessory olfactory pathway in Lepidoptera: the labial pit organ and its central projections in Manduca sexta and certain other sphinx moths and silk moths. Cell Tissue Res 245: 237–245.
|
[50] | Kent KS, Oland LA, Hildebrand JG (1999) Development of the labial pit organ glomerulus in the antennal lobe of the moth Manduca sexta: the role of afferent projections in the formation of identifiable olfactory glomeruli. J Neurobiol 40: 28–44.
|
[51] | Nardi JB (1993) Modulated expression of a surface epitope on migrating germ cells of Manduca sexta embryos. Development 118: 967–975.
|
[52] | Nardi JB (1994) Rearrangement of epithelial cell types in an insect wing monolayer is accompanied by differential expression of a cell surface protein. Dev Dyn 199: 315–325.
|
[53] | Nardi JB, Pilas B, Bee CM, Zhuang S, Garsha K, et al. (2006) Neuroglian-positive plasmatocytes of Manduca sexta and the initiation of hemocyte attachment to foreign surfaces. Dev Comp Immunol 30: 447–462.
|
[54] | Chen CL, Lampe DJ, Robertson HM, Nardi JB (1997) Neuroglian is expressed on cells destined to form the prothoracic glands of Manduca embryos as they segregate from surrounding cells and rearrange during morphogenesis. Dev Biol 181: 1–13.
|
[55] | Wright JW, Snyder MA, Schwinof KM, Combes S, Copenhaver PF (1999) A role for fasciclin II in the guidance of neuronal migration. Development 126: 3217–3228.
|
[56] | Biscardi JS, Maa MC, Tice DA, Cox ME, Leu TH, et al. (1999) c-Src-mediated phosphorylation of the epidermal growth factor receptor on Tyr845 and Tyr1101 is associated with modulation of receptor function. J Biol Chem 274: 8335–8343.
|
[57] | Tucker ES, Tolbert LP (2003) Reciprocal interactions between olfactory receptor axons and olfactory nerve glia cultured from the developing moth Manduca sexta. Dev Biol 260: 9–30.
|
[58] | Hayashi JH, Hildebrand JG (1990) Insect olfactory neurons in vitro: morphological and physiological characterization of cells from the developing antennal lobes of Manduca sexta. J Neurosci 10: 848–859.
|
[59] | Sinakevitch I, Farris SM, Strausfeld NJ (2001) Taurine-, aspartate- and glutamate-like immunoreactivity identifies chemically distinct subdivisions of Kenyon cells in the cockroach mushroom body. J Comp Neurol 439: 352–367.
|
[60] | Tolbert LP, Hildebrand JG (1981) Organization and synaptic ultrastructure of glomeruli in the antennal lobes of the moth Manduca sexta: a study using thin sections and freeze-fracture. Proc Roy Soc Lond B 213: 279–301.
|
[61] | Hering H, Lin CC, Sheng M (2003) Lipid rafts in the maintenance of synapses, dendritic spines, and surface AMPA receptor stability. J Neurosci 23: 3262–3271.
|
[62] | Fry DW, Bridges AJ, Denny WA, Doherty A, Greis KD, et al. (1998) Specific, irreversible inactivation of the epidermal growth factor receptor and erbB2, by a new class of tyrosine kinase inhibitor. Proc Natl Acad Sci U S A 95: 12022–12027.
|
[63] | Abeytunga DT, Glick JJ, Gibson NJ, Oland LA, Somogyi A, et al. (2004) Presence of unsaturated sphingomyelins and changes in their composition during the life cycle of the moth Manduca sexta. J Lipid Res 45: 1221–1231.
|
[64] | Oland LA, Tolbert LP (1996) Multiple factors shape development of olfactory glomeruli: insights from an insect model system. J Neurobiol 30: 92–109.
|
[65] | Hildebrand JG, Shepherd GM (1997) Mechanisms of olfactory discrimination: converging evidence for common principles across phyla. Annu Rev Neurosci 20: 595–631.
|
[66] | Oland LA, Orr G, Tolbert LP (1990) Construction of a protoglomerular template by olfactory axons initiates the formation of olfactory glomeruli in the insect brain. J Neurosci 10: 2096–2112.
|
[67] | Tolbert LP, Sirianni PA (1990) Requirement for olfactory axons in the induction and stabilization of olfactory glomeruli in an insect. J Comp Neurol 298: 69–82.
|
[68] | Baumann PM, Oland LA, Tolbert LP (1996) Glial cells stabilize axonal protoglomeruli in the developing olfactory lobe of the moth Manduca sexta. J Comp Neurol 373: 118–128.
|
[69] | Jacobson K, Mouritsen OG, Anderson RG (2007) Lipid rafts: at a crossroad between cell biology and physics. Nat Cell Biol 9: 7–14.
|
[70] | Ledesma MD, Simons K, Dotti CG (1998) Neuronal polarity: essential role of protein-lipid complexes in axonal sorting. Proc Natl Acad Sci U S A 95: 3966–3971.
|
[71] | Madore N, Smith KL, Graham CH, Jen A, Brady K, et al. (1999) Functionally different GPI proteins are organized in different domains on the neuronal surface. EMBO J 18: 6917–6926.
|
[72] | Manes S, Mira E, Gomez-Mouton C, Lacalle RA, Keller P, et al. (1999) Membrane raft microdomains mediate front-rear polarity in migrating cells. EMBO J 18: 6211–6220.
|
[73] | Gomez-Mouton C, Abad JL, Mira E, Lacalle RA, Gallardo E, et al. (2001) Segregation of leading-edge and uropod components into specific lipid rafts during T cell polarization. Proc Natl Acad Sci U S A 98: 9642–9647.
|
[74] | Gomez-Mouton C, Lacalle RA, Mira E, Jimenez-Baranda S, Barber DF, et al. (2004) Dynamic redistribution of raft domains as an organizing platform for signaling during cell chemotaxis. J Cell Biol 164: 759–768.
|
[75] | Vyas KA, Patel HV, Vyas AA, Schnaar RL (2001) Segregation of gangliosides GM1 and GD3 on cell membranes, isolated membrane rafts, and defined supported lipid monolayers. Biol Chem 382: 241–250.
|
[76] | Brown DA, Rose JK (1992) Sorting of GPI-anchored proteins to glycolipid-enriched membrane subdomains during transport to the apical cell surface. Cell 68: 533–544.
|
[77] | Guirland C, Suzuki S, Kojima M, Lu B, Zheng JQ (2004) Lipid rafts mediate chemotropic guidance of nerve growth cones. Neuron 42: 51–62.
|
[78] | Hérincs Z, Corset V, Cahuzac N, Furne C, Castellani V, et al. (2005) DCC association with lipid rafts is required for netrin-1-mediated axon guidance. J Cell Sci 118: 1687–1692.
|
[79] | Hou Q, Huang Y, Amato S, Snyder SH, Huganir RL, et al. (2008) Regulation of AMPA receptor localization in lipid rafts. Mol Cell Neurosci 38: 213–223.
|
[80] | Canavoso LE, Jouni ZE, Karnas KJ, Pennington JE, Wells MA (2001) Fat metabolism in insects. Annu Rev Nutr 21: 23–46.
|
[81] | Rospars JP, Hildebrand JG (1992) Anatomical identification of glomeruli in the antennal lobes of the male sphinx moth Manduca sexta. Cell Tissue Res 270: 205–227.
|
[82] | Rospars JP, Hildebrand JG (2000) Sexually dimorphic and isomorphic glomeruli in the antennal lobes of the sphinx moth Manduca sexta. Chem Senses 25: 119–129.
|
[83] | Huetteroth W, Schachtner J (2005) Standard three-dimensional glomeruli of the Manduca sexta antennal lobe: a tool to study both developmental and adult neuronal plasticity. Cell Tissue Res 319: 513–524.
|
[84] | Hildebrand JG, Hall LM, Osmond BC (1979) Distribution of binding sites for 125I-labeled alpha-bungarotoxin in normal and deafferented antennal lobes of Manduca sexta. Proc Natl Acad Sci U S A 76: 499–503.
|
[85] | Oland LA, Tolbert LP (1998) Glomerulus development in the absence of a set of mitral-like neurons in the insect olfactory lobe. J Neurobiol 36(1): 41–52.
|
[86] | Harrelson AL, Goodman CS (1988) Growth cone guidance in insects: fasciclin II is a member of the immunoglobulin superfamily. Science 242: 700–708.
|
[87] | Grenningloh G, Bieber AJ, Rehm EJ, Snow PM, Traquina ZR, et al. (1990) Molecular genetics of neuronal recognition in Drosophila: evolution and function of immunoglobulin superfamily cell adhesion molecules. Cold Spring Harb Symp Quant Biol 55: 327–340.
|
[88] | Lin DM, Fetter RD, Kopczynski C, Grenningloh G, Goodman CS (1994) Genetic analysis of Fasciclin II in Drosophila: defasciculation, refasciculation, and altered fasciculation. Neuron 13: 1055–1069.
|
[89] | Lin DM, Goodman CS (1994) Ectopic and increased expression of Fasciclin II alters motoneuron growth cone guidance. Neuron 13: 507–523.
|
[90] | Schuster CM, Davis GW, Fetter RD, Goodman CS (1996) Genetic dissection of structural and functional components of synaptic plasticity. II. Fasciclin II controls presynaptic structural plasticity. Neuron 17: 655–667.
|
[91] | Schuster CM, Davis GW, Fetter RD, Goodman CS (1996) Genetic dissection of structural and functional components of synaptic plasticity. I. Fasciclin II controls synaptic stabilization and growth. Neuron 17: 641–654.
|
[92] | Davis GW, Schuster CM, Goodman CS (1997) Genetic analysis of the mechanisms controlling target selection: target-derived Fasciclin II regulates the pattern of synapse formation. Neuron 19: 561–573.
|
[93] | Forni JJ, Romani S, Doherty P, Tear G (2004) Neuroglian and Fasciclin II can promote neurite outgrowth via the FGF receptor Heartless. Mol Cell Neurosci 26: 282–291.
|
[94] | Oland LA, Tolbert LP, Mossman KL (1988) Radiation-induced reduction of the glial population during development disrupts the formation of olfactory glomeruli in an insect. J Neurosci 8: 353–367.
|
[95] | Oland LA, Pott WM, Higgins MR, Tolbert LP (1998) Targeted ingrowth and glial relationships of olfactory receptor axons in the primary olfactory pathway of an insect. J Comp Neurol 398: 119–138.
|
[96] | Bieber AJ, Snow PM, Hortsch M, Patel NH, Jacobs JR, et al. (1989) Drosophila neuroglian: a member of the immunoglobulin superfamily with extensive homology to the vertebrate neural adhesion molecule L1. Cell 59: 447–460.
|
[97] | Harper JR, Prince JT, Healy PA, Stuart JK, Nauman SJ, et al. (1991) Isolation and sequence of partial cDNA clones of human L1: homology of human and rodent L1 in the cytoplasmic region. J Neurochem 56: 797–804.
|
[98] | Dubreuil RR, MacVicar G, Dissanayake S, Liu C, Homer D, et al. (1996) Neuroglian-mediated cell adhesion induces assembly of the membrane skeleton at cell contact sites. J Cell Biol 133: 647–655.
|
[99] | Winckler B, Forscher P, Mellman I (1999) A diffusion barrier maintains distribution of membrane proteins in polarized neurons. Nature 397: 698–701.
|
[100] | Gil OD, Sakurai T, Bradley AE, Fink MY, Cassella MR, et al. (2003) Ankyrin binding mediates L1CAM interactions with static components of the cytoskeleton and inhibits retrograde movement of L1CAM on the cell surface. J Cell Biol 162: 719–730.
|
[101] | Godenschwege TA, Kristiansen LV, Uthaman SB, Hortsch M, Murphey RK (2006) A conserved role for Drosophila Neuroglian and human L1-CAM in central-synapse formation. Curr Biol 16: 12–23.
|
[102] | Boiko T, Vakulenko M, Ewers H, Yap CC, Norden C, et al. (2007) Ankyrin-dependent and -independent mechanisms orchestrate axonal compartmentalization of L1 family members neurofascin and L1/neuron-glia cell adhesion molecule. J Neurosci 27: 590–603.
|
[103] | Shilo BZ (2003) Signaling by the Drosophila epidermal growth factor receptor pathway during development. Exp Cell Res 284: 140–149.
|
[104] | Wong RWC, Guillaud L (2004) The role of epidermal growth factor and its receptors in mammalian CNS. Cytokine & Growth Factor Reviews 15: 147–156.
|
[105] | Islam R, Kristiansen LV, Romani S, Garcia-Alonso L, Hortsch M (2004) Activation of EGF Receptor Kinase by L1-mediated Homophilic Cell Interactions. Mol Biol Cell 15: 2003–2012.
|
[106] | Whittard JD, Sakurai T, Cassella MR, Gazdoiu M, Felsenfeld DP (2006) MAP kinase pathway-dependent phosphorylation of the L1-CAM ankyrin binding site regulates neuronal growth. Mol Biol Cell 17: 2696–2706.
|
[107] | Brown DA (2006) Lipid rafts, detergent-resistant membranes, and raft targeting signals. Physiology (Bethesda) 21: 430–439.
|
[108] | McIntosh TJ, Simon SA (2006) Roles of bilayer material properties in function and distribution of membrane proteins. Annu Rev Biophys Biomol Struct 35: 177–198.
|
[109] | McIntosh TJ, Vidal A, Simon SA (2003) Sorting of lipids and transmembrane peptides between detergent-soluble bilayers and detergent-resistant rafts. Biophys J 85: 1656–1666.
|
[110] | Stulnig TM, Huber J, Leitinger N, Imre EM, Angelisova P, et al. (2001) Polyunsaturated eicosapentaenoic acid displaces proteins from membrane rafts by altering raft lipid composition. J Biol Chem 276: 37335–37340.
|
[111] | Zidovetzki R, Levitan I (2007) Use of cyclodextrins to manipulate plasma membrane cholesterol content: evidence, misconceptions and control strategies. Biochim Biophys Acta 1768: 1311–1324.
|
[112] | Morton DB, Truman JW (1985) Steroid regulation of the peptide-mediated increase in cyclic GMP in the nervous system of the hawkmoth, Manduca sexta. J Comp Physiol [A] 157: 423–432.
|
[113] | Oland LA, Tolbert LP (1989) Patterns of glial proliferation during formation of olfactory glomeruli in an insect. Glia 2: 10–24.
|
[114] | Nishimura K, Yoshihara F, Tojima T, Ooashi N, Yoon W, et al. (2003) L1-dependent neuritogenesis involves ankyrinB that mediates L1-CAM coupling with retrograde actin flow. J Cell Biol 163: 1077–88.
|
[115] | Bazley LA, Gullick WJ (2005) The epidermal growth factor receptor family. Endocr Relat Cancer 12: Suppl 1S17–27.
|
[116] | Garcia-Alonso L, Romani S, Jimenez F (2000) The EGF and FGF receptors mediate neuroglian function to control growth cone decisions during sensory axon guidance in Drosophila. Neuron 28: 741–752.
|
[117] | Kristiansen LV, Velasquez E, Romani S, Baars S, Berezin V, et al. (2005) Genetic analysis of an overlapping functional requirement for L1- and NCAM-type proteins during sensory axon guidance in Drosophila. Mol Cell Neurosci 28: 141–152.
|
[118] | Hall SG, Bieber AJ (1997) Mutations in the Drosophila neuroglian cell adhesion molecule affect motor neuron pathfinding and peripheral nervous system patterning. J Neurobiol 32: 325–340.
|
[119] | Sepp KJ, Auld VJ (2003) Reciprocal interactions between neurons and glia are required for Drosophila peripheral nervous system development. J Neurosci 23: 8221–8230.
|
[120] | Chang MC, Wisco D, Ewers H, Norden C, Winckler B (2006) Inhibition of sphingolipid synthesis affects kinetics but not fidelity of L1/NgCAM transport along direct but not transcytotic axonal pathways. Mol Cell Neurosci 31: 525–538.
|
[121] | Kadmon G, Kowitz A, Altevogt P, Schachner M (1990) The neural cell adhesion molecule N-CAM enhances L1-dependent cell-cell interactions. J Cell Biol 110: 193–208.
|
[122] | Davis JQ, Bennett V (1994) Ankyrin binding activity shared by the neurofascin/L1/NrCAM family of nervous system cell adhesion molecules. J Biol Chem 269: 27163–27166.
|
[123] | Hortsch M, Homer D, Malhotra JD, Chang S, Frankel J, et al. (1998) Structural requirements for outside-in and inside-out signaling by Drosophila neuroglian, a member of the L1 family of cell adhesion molecules. J Cell Biol 142: 251–261.
|
[124] | Schaefer AW, Kamei Y, Kamiguchi H, Wong EV, Rapoport I, et al. (2002) L1 endocytosis is controlled by a phosphorylation-dephosphorylation cycle stimulated by outside-in signaling by L1. J Cell Biol 157: 1223–1232.
|
[125] | Schaefer AW, Kamiguchi H, Wong EV, Beach CM, Landreth G, et al. (1999) Activation of the MAPK signal cascade by the neural cell adhesion molecule L1 requires L1 internalization. J Biol Chem 274: 37965–37973.
|
[126] | Jefford G, Dubreuil RR (2000) Receptor clustering drives polarized assembly of ankyrin. J Biol Chem 275: 27726–27732.
|
[127] | Jenkins SM, Kizhatil K, Kramarcy NR, Sen A, Sealock R, et al. (2001) FIGQY phosphorylation defines discrete populations of L1 cell adhesion molecules at sites of cell-cell contact and in migrating neurons. J Cell Sci 114: 3823–3835.
|
[128] | Dickson TC, Mintz CD, Benson DL, Salton SR (2002) Functional binding interaction identified between the axonal CAM L1 and members of the ERM family. J Cell Biol 157: 1105–1112.
|
[129] | Kizhatil K, Wu YX, Sen A, Bennett V (2002) A new activity of doublecortin in recognition of the phospho-FIGQY tyrosine in the cytoplasmic domain of neurofascin. J Neurosci 22: 7948–7958.
|
[130] | Mintz CD, Dickson TC, Gripp ML, Salton SR, Benson DL (2003) ERMs colocalize transiently with L1 during neocortical axon outgrowth. J Comp Neurol 464: 438–448.
|
[131] | Moores CA, Perderiset M, Francis F, Chelly J, Houdusse A, et al. (2004) Mechanism of microtubule stabilization by doublecortin. Mol Cell 14: 833–839.
|
[132] | Cheng L, Itoh K, Lemmon V (2005) L1-mediated branching is regulated by two ezrin-radixin-moesin (ERM)-binding sites, the RSLE region and a novel juxtamembrane ERM-binding region. J Neurosci 25: 395–403.
|
[133] | Sprong H, van der Sluijs P, van Meer G (2001) How proteins move lipids and lipids move proteins. Nat Rev Mol Cell Biol 2: 504–513.
|
[134] | Kamiguchi H (2006) The region-specific activities of lipid rafts during axon growth and guidance. J Neurochem 98: 330–335.
|
[135] | Fullekrug J, Simons K (2004) Lipid rafts and apical membrane traffic. Ann N Y Acad Sci 1014: 164–169.
|
[136] | Wisco D, Anderson ED, Chang MC, Norden C, Boiko T, et al. (2003) Uncovering multiple axonal targeting pathways in hippocampal neurons. J Cell Biol 162: 1317–1328.
|
[137] | Oland LA, Marrero HG, Burger I (1999) Glial cells in the developing and adult olfactory lobe of the moth Manduca sexta. Cell Tissue Res 297(3): 527–545.
|