Using Rotary Shadow Electron Microscopy to Characterize Semaphorin-Mediated Growth Cone Collapse
Publisher
Springer New York
Reference16 articles.
1. Fan J, Mansfield SG, Redman T, Phillip R, Gordon-Weeks PR, Raper JA (1993) The organization of F-actin and microtubules in growth cones exposed to a brain-derived collapsing factor. J Cell Biol 121:867–878
2. Kapfhammer JP, Xu H, Raper JA (2007) The detection and quantification of growth cone collapsing activities. Nat Protoc 2(8):2005–2011, doi:nprot.2007.295 [pii]10.1038/nprot.2007.295
3. Rauch P, Heine P, Goettgens B, Kas JA (2013) Different modes of growth cone collapse in NG 108-15 cells. Eur Biophys J 42(8):591–605. doi:
10.1007/s00249-013-0907-z
4. Marx A, Godinez WJ, Tsimashchuk V, Bankhead P, Rohr K, Engel U (2013) Xenopus cytoplasmic linker-associated protein 1 (XCLASP1) promotes axon elongation and advance of pioneer microtubules. Mol Biol Cell 24(10):1544–1558, doi:mbc.E12-08-0573 [pii]10.1091/mbc.E12-08-0573
5. Brown JA, Bridgman PC (2009) Disruption of the cytoskeleton during Semaphorin 3A induced growth cone collapse correlates with differences in actin organization and associated binding proteins. Dev Neurobiol 69(10):633–646. doi:
10.1002/dneu.20732