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Items: 1 to 20 of 161

1.

Genome-wide modeling of complex phenotypes in Caenorhabditis elegans and Drosophila melanogaster.

De S, Zhang Y, Wolkow CA, Zou S, Goldberg I, Becker KG.

BMC Genomics. 2013 Aug 28;14:580. doi: 10.1186/1471-2164-14-580.

2.

Comparative analysis of function and interaction of transcription factors in nematodes: extensive conservation of orthology coupled to rapid sequence evolution.

Haerty W, Artieri C, Khezri N, Singh RS, Gupta BP.

BMC Genomics. 2008 Aug 27;9:399. doi: 10.1186/1471-2164-9-399.

3.

Comparison of complete nuclear receptor sets from the human, Caenorhabditis elegans and Drosophila genomes.

Maglich JM, Sluder A, Guan X, Shi Y, McKee DD, Carrick K, Kamdar K, Willson TM, Moore JT.

Genome Biol. 2001;2(8):RESEARCH0029.

4.

The Drosophila melanogaster flightless-I gene involved in gastrulation and muscle degeneration encodes gelsolin-like and leucine-rich repeat domains and is conserved in Caenorhabditis elegans and humans.

Campbell HD, Schimansky T, Claudianos C, Ozsarac N, Kasprzak AB, Cotsell JN, Young IG, de Couet HG, Miklos GL.

Proc Natl Acad Sci U S A. 1993 Dec 1;90(23):11386-90.

5.

Similarities and differences in genome-wide expression data of six organisms.

Bergmann S, Ihmels J, Barkai N.

PLoS Biol. 2004 Jan;2(1):E9.

6.

Gene-environment and protein-degradation signatures characterize genomic and phenotypic diversity in wild Caenorhabditis elegans populations.

Volkers RJ, Snoek LB, Hubar CJ, Coopman R, Chen W, Yang W, Sterken MG, Schulenburg H, Braeckman BP, Kammenga JE.

BMC Biol. 2013 Aug 19;11:93. doi: 10.1186/1741-7007-11-93.

7.

Genome-wide prediction of C. elegans genetic interactions.

Zhong W, Sternberg PW.

Science. 2006 Mar 10;311(5766):1481-4.

8.

Genetics. Revealing the dark matter of the genome.

Blaxter M.

Science. 2010 Dec 24;330(6012):1758-9. doi: 10.1126/science.1200700. No abstract available.

PMID:
21177977
9.

FlyBase: establishing a Gene Group resource for Drosophila melanogaster.

Attrill H, Falls K, Goodman JL, Millburn GH, Antonazzo G, Rey AJ, Marygold SJ; FlyBase Consortium..

Nucleic Acids Res. 2016 Jan 4;44(D1):D786-92. doi: 10.1093/nar/gkv1046.

10.

Molecular correlates of genes exhibiting RNAi phenotypes in Caenorhabditis elegans.

Cutter AD, Payseur BA, Salcedo T, Estes AM, Good JM, Wood E, Hartl T, Maughan H, Strempel J, Wang B, Bryan AC, Dellos M.

Genome Res. 2003 Dec;13(12):2651-7.

11.

Comparing genomic expression patterns across species identifies shared transcriptional profile in aging.

McCarroll SA, Murphy CT, Zou S, Pletcher SD, Chin CS, Jan YN, Kenyon C, Bargmann CI, Li H.

Nat Genet. 2004 Feb;36(2):197-204.

PMID:
14730301
12.
13.

Genomic sequencing: the complexity conundrum.

Brookfield JF.

Curr Biol. 2000 Jul 13;10(14):R514-5.

14.

Lessons from modENCODE.

Brown JB, Celniker SE.

Annu Rev Genomics Hum Genet. 2015;16:31-53. doi: 10.1146/annurev-genom-090413-025448. Review.

PMID:
26133010
15.

Modeling molecular networks: a systems biology approach to gene function.

Guffanti A.

Genome Biol. 2002 Sep 16;3(10):reports4031.

16.

Genomic analysis of gene expression in C. elegans.

Hill AA, Hunter CP, Tsung BT, Tucker-Kellogg G, Brown EL.

Science. 2000 Oct 27;290(5492):809-12.

17.

Expression of Caenorhabditis elegans RNA-directed RNA polymerase in transgenic Drosophila melanogaster does not affect morphological development.

Duan G, Saint RB, Helliwell CA, Behm CA, Waterhouse PM, Gordon KH.

Transgenic Res. 2010 Dec;19(6):1121-8. doi: 10.1007/s11248-010-9372-y.

PMID:
20140643
18.

Deep conservation of genes required for both Drosphila melanogaster and Caenorhabditis elegans sleep includes a role for dopaminergic signaling.

Singh K, Ju JY, Walsh MB, DiIorio MA, Hart AC.

Sleep. 2014 Sep 1;37(9):1439-51. doi: 10.5665/sleep.3990.

19.
20.

Slowed aging during reproductive dormancy is reflected in genome-wide transcriptome changes in Drosophila melanogaster.

Kučerová L, Kubrak OI, Bengtsson JM, Strnad H, Nylin S, Theopold U, Nässel DR.

BMC Genomics. 2016 Jan 13;17:50. doi: 10.1186/s12864-016-2383-1.

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