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Items 1 - 20 of 110
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1:

A combinatorial optimization approach for diverse motif finding applications.

Zaslavsky E, Singh M.

Algorithms Mol Biol. 2006 Aug 17;1:13.

PMID: 16916460 [PubMed]

2:

A correlated motif approach for finding short linear motifs from protein interaction networks.

Tan SH, Hugo W, Sung WK, Ng SK.

BMC Bioinformatics. 2006 Nov 16;7:502.

PMID: 17107624 [PubMed - indexed for MEDLINE]

3:

MotifCut: regulatory motifs finding with maximum density subgraphs.

Fratkin E, Naughton BT, Brutlag DL, Batzoglou S.

Bioinformatics. 2006 Jul 15;22(14):e150-7.

PMID: 16873465 [PubMed - indexed for MEDLINE]

4:

Discovering motifs in ranked lists of DNA sequences.

Eden E, Lipson D, Yogev S, Yakhini Z.

PLoS Comput Biol. 2007 Mar 23;3(3):e39.

PMID: 17381235 [PubMed - indexed for MEDLINE]

5:

Graphical approach to weak motif recognition.

Yang X, Rajapakse JC.

Genome Inform. 2004;15(2):52-62.

PMID: 15706491 [PubMed - indexed for MEDLINE]

6:

Detection of generic spaced motifs using submotif pattern mining.

Wijaya E, Rajaraman K, Yiu SM, Sung WK.

Bioinformatics. 2007 Jun 15;23(12):1476-85. Epub 2007 May 5.

PMID: 17483509 [PubMed - indexed for MEDLINE]

8:

Bases of motifs for generating repeated patterns with wild cards.

Pisanti N, Crochemore M, Grossi R, Sagot MF.

IEEE/ACM Trans Comput Biol Bioinform. 2005 Jan-Mar;2(1):40-50.

PMID: 17044163 [PubMed - indexed for MEDLINE]

9:

rMotifGen: random motif generator for DNA and protein sequences.

Rouchka EC, Hardin CT.

BMC Bioinformatics. 2007 Aug 7;8:292.

PMID: 17683637 [PubMed - indexed for MEDLINE]

10:

MUSA: a parameter free algorithm for the identification of biologically significant motifs.

Mendes ND, Casimiro AC, Santos PM, Sá-Correia I, Oliveira AL, Freitas AT.

Bioinformatics. 2006 Dec 15;22(24):2996-3002. Epub 2006 Oct 26.

PMID: 17068086 [PubMed - indexed for MEDLINE]

11:

Finding linear motif pairs from protein interaction networks: a probabilistic approach.

Leung HC, Siu MH, Yiu SM, Chin FY, Sung KW.

Comput Syst Bioinformatics Conf. 2007;6:111-9.

PMID: 17951817 [PubMed - indexed for MEDLINE]

12:

Finding subtle motifs with variable gaps in unaligned DNA sequences.

Hu YJ.

Comput Methods Programs Biomed. 2003 Jan;70(1):11-20.

PMID: 12468123 [PubMed - indexed for MEDLINE]

13:

Revealing divergent evolution, identifying circular permutations and detecting active-sites by protein structure comparison.

Chen L, Wu LY, Wang Y, Zhang S, Zhang XS.

BMC Struct Biol. 2006 Sep 2;6:18.

PMID: 16948858 [PubMed - indexed for MEDLINE]

14:

Refining motifs by improving information content scores using neighborhood profile search.

Reddy CK, Weng YC, Chiang HD.

Algorithms Mol Biol. 2006 Nov 27;1:23.

PMID: 17129371 [PubMed]

16:

Self-organizing neural networks to support the discovery of DNA-binding motifs.

Mahony S, Benos PV, Smith TJ, Golden A.

Neural Netw. 2006 Jul-Aug;19(6-7):950-62. Epub 2006 Jul 12.

PMID: 16839740 [PubMed - indexed for MEDLINE]

17:

Learning position weight matrices from sequence and expression data.

Chen X, Guo L, Fan Z, Jiang T.

Comput Syst Bioinformatics Conf. 2007;6:249-60.

PMID: 17951829 [PubMed - indexed for MEDLINE]

18:

Finding regulatory elements and regulatory motifs: a general probabilistic framework.

van Nimwegen E.

BMC Bioinformatics. 2007 Sep 27;8 Suppl 6:S4. Review.

PMID: 17903285 [PubMed - indexed for MEDLINE]

19:

Comparative analysis of regulatory motif discovery tools for transcription factor binding sites.

Wei W, Yu XD.

Genomics Proteomics Bioinformatics. 2007 May;5(2):131-42.

PMID: 17893078 [PubMed - indexed for MEDLINE]

20:

Combinatorial approaches to finding subtle signals in DNA sequences.

Pevzner PA, Sze SH.

Proc Int Conf Intell Syst Mol Biol. 2000;8:269-78.

PMID: 10977088 [PubMed - indexed for MEDLINE]

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