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Armstrong, N., Hardin, J. and McClay, D. R (1993). Cell-cell interactions regulate skeleton formation in the sea urchin embryo. Development 119, 833-840.[Abstract/Free Full Text]

Armstrong, N. and McClay, D. R (1994). Skeletal pattern is specified autonomously by the primary mesenchyme cells in sea urchin embryos. Dev. Biol 162, 329-338.[Medline]

Caudy, M. and Bentley, D (1986). Pioneer growth cone steering along a series of neuronal and non-neuronal cues of different affinities. J. Neurosci 6, 1781-1795.[Abstract]

Davenport, R. W., Dou, P., Rehder, V. and Kater, S. B (1993). A sensory role for neuronal growth cone filopodia. Nature 361, 721-724.[Medline]

Ettensohn, C. A. and McClay, D. R (1986). The regulation of primary mesenchyme cell migration in the sea urchin embryo: transplantations of cells and latex beads. Dev. Biol 117, 380-391.[Medline]

Ettensohn, C. A. and McClay, D. R (1988). Cell lineage conversion in the sea urchin embryo. Dev. Biol 125, 396-409.[Medline]

Ettensohn, C. A (1990). Cell interactions in the sea urchin embryo studied by fluorescence photoablation. Science 248, 1115-1118.[Abstract/Free Full Text]

Ettensohn, C. A (1990). The regulation of primary mesenchyme cell patterning. Dev. Biol 140, 261-271.[Medline]

Gibbins, J. R., Tilney, L. G. and Porter, K. R (1969). Microtubules in the formation and development of the primary mesenchyme in Arbacia punctulata . I. The distribution of microtubules. J. Cell Biol 41, 201-226.[Abstract/Free Full Text]

Gustafson, T. and Wolpert, L (1961). Studies on the cellular basis of morphogenesis in the sea urchin embryo; directed movements of primary mesenchyme cells in normal and vegetalized larvae. Exp. Cell Res 24, 64-79.[Medline]

Gustafson, T (1963). Cellular mechanisms in the morphogenesis of the seaurchin embryo. Cell contacts within the ectoderm and between mesenchyme and ectoderm cells. Exp. Cell Res 32, 570-589.[Medline]

Gustafson, T. and Wolpert, L (1967). Cellular movement and contact in sea urchin morphogenesis. Biol. Rev 42, 442-498.[Medline]

Hardin, J. D. and Cheng, L. Y (1986). The mechanisms and mechanics of archenteron elongation during sea urchin gastrulation. Dev. Biol 115, 490-501.

Hardin, J. D (1987). Archenteron elongation in the sea urchin embryo is a microtubule-independent process. Dev. Biol 121, 253-262.[Medline]

Hardin, J (1988). The role of secondary mesenchyme cells during sea urchin gastrulation studied by laser ablation. Development 103, 317-324.[Abstract]

Hardin, J., Coffman, J. A., Black, S. D. and McClay, D. R (1992). Commitment along the dorsoventral axis of the sea urchin embryo is altered in response to NiCl2. Development 116, 671-685.[Abstract]

Hardin, J. and McClay, D. R (1990). Target recognition by the archenteron during sea urchin gastrulation. Dev. Biol 142, 86-102.[Medline]

Karp, G. C. and Solursh, M (1985). Dynamic activity of the filopodia of sea urchin embryonic cells and their role in directed migration of the primary mesenchyme in vitro. Dev. Biol 112, 276-283.[Medline]

Leaf, D. S., Anstrom, J. A., Chin, J. E., Harkey, M. A. and Raff, R. A (1987). Antibodies to a fusion protein identify a cDNA clone encoding msp130, a primary mesenchyme-specific cell surface protein of the sea urchin embryo. Dev. Biol 121, 29-40.[Medline]

Lemmon, V., Burden, S. M., Payne, H. R., Elmslie, G. W. and Hlavin, S (1992). Neurite growth on different substrates: permissive versus instructive influences and the role of adhesive strength. J. Neurosci 12, 818-826.[Abstract]

Marsh, L. and Letourneau, P. C (1984). Growth of neurites without filopodial or lamellapodial activity in the presence of cytochalasin B. J. Cell Biol 99, 2041-2047.[Abstract/Free Full Text]

McClay, D. R., Armstrong, N. A. and Hardin, J (1992). Pattern formation during gastrulation in the sea urchin embryo. Development 1992, 33-41.

Myers, P. Z. and Bastiani, M. J (1993). Growth cone dynamics during the migration of an identified commisural growth cone. J. Neurosci 13, 127-143.[Abstract]

Oakley, R. A. and Tosney, K. W (1993). Contact-mediated mechanisms of motor axon segmentation. J. Neurosci 13, 3773-3792.[Abstract]

Sheetz, M. P., Baumrind, N. L., Wayne, D. B. and Pearlman, A. L (1990). Concentrations of membrane antigens by forward transport and trapping in neuronal growth cones. Cell 61, 231-241.[Medline]

Sheetz, M. P., Wayne, D. B. and Pearlman, A. L (1992). Extension of filopodia by motor-dependent actin assembly. Cell Motil.Cytoskeleton 22, 160-169.[Medline]

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This Article
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