Biology Reference
In-Depth Information
Maurer, S. P., Fourniol, F. J., Bohner, G., Moores, C. A., & Surrey, T. (2012). EBs recognize a
nucleotide-dependent structural cap at growing microtubule ends. Cell , 149 , 371-382.
McIntosh, J. R., Morphew, M. K., Grissom, P. M., Gilbert, S. P., &Hoenger, A. (2009). Lattice
structure of cytoplasmic microtubules in a cultured Mammalian cell. Journal of Molecular
Biology , 394 (2), 177-182.
Meng, H., Smith, S. D., Hager, K., Held, M., Liu, J., Olson, R. K., et al. (2005). DCDC2
is associated with reading disability and modulates neuronal development in the brain.
Proceedings of the National Academy of Sciences of the United States of America , 102 ,
18763.
Moores, C. A., Perderiset, M., Francis, F., Chelly, J., Houdusse, A., & Milligan, R. A. (2004).
Mechanism of microtubule stabilisation by doublecortin. Molecular Cell , 18 , 833-839.
Moores, C. A., Perderiset, M., Kappeler, C., Kain, S., Drummond, D., Perkins, S. J., et al.
(2006). Distinct roles of doublecortin modulating the microtubule cytoskeleton. EMBO
Journal , 25 , 4448-4457.
Nogales, E., Wolf, S. G., & Downing, K. H. (1998). Structure of the alpha beta tubulin dimer
by electron crystallography. Nature , 391 (6663), 199-203.
Pettersen, E. F., Goddard, T. D., Huang, C. C., Couch, G. S., Greenblatt, D. M., Meng, E. C.,
et al. (2004). UCSF Chimera—A visualization system for exploratory research and anal-
ysis. Journal of Computational Chemistry , 25 (13), 1605-1612.
Reiner, O., Coquelle, F. M., Peter, B., Levy, T., Kaplan, A., Sapir, T., et al. (2006). The evolv-
ing doublecortin (DCX) superfamily. BMC Genomics , 7 , 188.
Reiner, O., Gdalyahu, A., Ghosh, I., Levy, T., Sapoznik, S., Nir, R., et al. (2004). DCX's phos-
phorylation by not just another kinase (JNK). Cell Cycle , 3 , 747-751.
Sapir, T., Horesh, D., Caspi, M., Atlas, R., Burgess, H. A., Wolf, S. G., et al. (2000). Double-
cortin mutations cluster in evolutionarily conserved functional domains. Human Molecular
Genetics , 9 , 703-712.
Sindelar, C. V., & Downing, K. H. (2007). The beginning of kinesin's force-generating cycle
visualized at 9- ˚ resolution. The Journal of Cell Biology , 177 , 377-385.
Sindelar, C. V., & Downing, K. H. (2010). An atomic-level mechanism for activation of the
kinesin molecular motors. Proceedings of the National Academy of Sciences of the United
States of America , 107 (9), 4111-4116.
Sui, H., &Downing, K. H. (2010). Structural basis of interprotofilament interaction and lateral
deformation of microtubules. Structure , 18 (8), 1022-1031.
Taylor, K. R., Holzer, A. K., Bazan, J. F., Walsh, C. A., & Gleeson, J. G. (2000). Patient mu-
tations in doublecortin define a repeated tubulin-binding domain. Journal of Biological
Chemistry , 275 , 34442-34450.
Tilney, L. G., Bryan, J., Bush, D. J., Fujiwara, K., Mooseker, M. S., Murphy, D. B., et al.
(1973). Microtubules: Evidence for 13 protofilaments. The Journal of Cell Biology , 59 ,
267-275.
Tint, I., Jean, D., Baas, P. W., & Black, M. M. (2009). Doublecortin associates with micro-
tubules preferentially in regions of the axon displaying actin-rich protrusive structures.
Journal of Neuroscience , 29 , 10995-11010.
Topf, M., Lasker, K., Webb, B., Wolfson, H., Chiu, W., & Sali, A. (2008). Protein structure
fitting and refinement guided by cryo-EM density. Structure , 16 (2), 295-307.
Wade, R. H., & Chr ´ tien, D. (1993). Cryoelectron microscopy of microtubules. Journal of
Structural Biology , 110 , 1-27.
Search WWH ::




Custom Search