Biology Reference
In-Depth Information
Ludewig, A. H., Kober-Eisermann, C., Weitzel, C., Bethke, A., Neubert, K., &
Gerisch, B.
(2004). A novel nuclear
receptor/coregulator
complex controls
C. elegans lipid metabolism,
larval development, and aging. Genes & Development ,
18 (17), 2120-2133.
Migliori, M. L., Simonetta, S. H., Romanowski, A., & Golombek, D. A. (2011). Circadian
rhythms in metabolic variables in Caenorhabditis elegans . Physiology and Behavior , 103 (3-4),
315-320. http://dx.doi.org/10.1016/j.physbeh.2011.01.026 .
Miska, E. A., Alvarez-Saavedra, E., Abbott, A. L., Lau, N. C., Hellman, A. B., &
McGonagle, S. M. (2007). Most Caenorhabditis elegans microRNAs are individually
not essential for development or viability. PLoS Genetics , 3 (12), e215. http://dx.doi.
org/10.1371/journal.pgen.0030215 .
Monsalve, G. C., Van Buskirk, C., & Frand, A. R. (2011). LIN-42/PERIOD controls cycli-
cal and developmental progression of C. elegans molts. Current Biology , 21 (24),
2033-2045. http://dx.doi.org/10.1016/j.cub.2011.10.054 .
Moss, E. G., Lee, R. C., &Ambros, V. (1997). The cold shock domain protein LIN-28 controls
developmental timing in C. elegans and is regulated by the lin-4 RNA. Cell , 88 , 637-646.
Motola, D. L., Cummins, C. L., Rottiers, V., Sharma, K. K., Li, T., & Li, Y. (2006). Iden-
tification of ligands for DAF-12 that govern dauer formation and reproduction in
C. elegans . Cell , 124 (6), 1209-1223.
Niwa, R., & Hada, K. (2010). Identification of a spatio-temporal enhancer element for the
Alzheimer's amyloid precursor protein-like-1 gene in the nematode Caenorhabditis
elegans . Bioscience, Biotechnology, and Biochemistry , 74 (12), 2497-2500. http://dx.doi.
org/10.1271/bbb.100450 .
Niwa, R., Zhou, F., Li, C., & Slack, F. J. (2008). The expression of the Alzheimer's amyloid
precursor protein-like gene is regulated by developmental timing microRNAs and their
targets in Caenorhabditis elegans . Developmental Biology , 315 (2), 418-425. http://dx.doi.
org/10.1016/j.ydbio.2007.12.044 .
Olmedo, M., O'Neill, J. S., Edgar, R. S., Valekunja, U. K., Reddy, A. B., & Merrow, M.
(2012). Circadian regulation of olfaction and an evolutionarily conserved, non-
transcriptional marker in Caenorhabditis elegans . Proceedings of the National Academy of Sci-
ences of the United States of America , 109 (50), 20479-20484. http://dx.doi.org/10.1073/
pnas.1211705109 .
Pepper, A. S., McCane, J. E., Kemper, K., Yeung, D. A., Lee, R. C., &Ambros, V. (2004). The
C. elegans heterochronic gene lin-46 affects developmental timing at two larval stages and
encodes a relative of the scaffolding protein gephyrin. Development , 131 (9), 2049-2059.
Reinhart, B. J., Slack, F. J., Basson, M., Pasquinelli, A. E., Bettinger, J. C., & Rougvie, A. E.
(2000). The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis
elegans . Nature , 403 (6772), 901-906.
Ren, H., & Zhang, H. (2010). Wnt signaling controls temporal identities of seam cells in
Caenorhabditis elegans . Developmental Biology , 345 (2), 144-155. http://dx.doi.org/
10.1016/j.ydbio.2010.07.002 .
Rougvie, A. E., & Ambros, V. (1995). The heterochronic gene lin-29 encodes a zinc finger
protein that controls a terminal differentiation event in C. elegans . Development , 121 ,
2491-2500.
Ruvkun, G., & Giusto, J. (1989). The Caenorhabditis elegans heterochronic gene lin-14
encodes a nuclear protein that
forms a temporal developmental
switch. Nature ,
338 (6213), 313-319.
Schulman, B. R., Esquela-Kerscher, A., & Slack, F. J. (2005). Reciprocal expression of lin-41
and the microRNAs let-7 and mir-125 during mouse embryogenesis. Developmental
Dynamics , 234 (4), 1046-1054. http://dx.doi.org/10.1002/dvdy.20599 .
Seggerson, K., Tang, L., &Moss, E. G. (2002). Two genetic circuits repress the Caenorhabditis
elegans heterochronic gene lin-28 after translation initiation. Developmental Biology ,
243 (2), 215-225.
 
 
 
Search WWH ::




Custom Search