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    Results: 1 to 20 of 144

    1.

    In silico analysis of the cyclophilin repertoire of apicomplexan parasites.

    Krücken J, Greif G, von Samson-Himmelstjerna G.

    Parasit Vectors. 2009 Jun 25;2(1):27.PMID: 19555495 [PubMed - in process]Related articlesFree article

    2.

    Consistent and contrasting properties of lineage-specific genes in the apicomplexan parasites Plasmodium and Theileria.

    Kuo CH, Kissinger JC.

    BMC Evol Biol. 2008 Apr 11;8:108.PMID: 18405380 [PubMed - indexed for MEDLINE]Related articlesFree article

    3.

    Repeated secondary loss of adaptin complex genes in the Apicomplexa.

    Nevin WD, Dacks JB.

    Parasitol Int. 2009 Mar;58(1):86-94. Epub 2008 Dec 24.PMID: 19146987 [PubMed - indexed for MEDLINE]Related articles

    4.

    Divergence of the mitochondrial genome structure in the apicomplexan parasites, Babesia and Theileria.

    Hikosaka K, Watanabe YI, Tsuji N, Kita K, Kishine H, Arisue N, Palacpac NM, Kawazu SI, Sawai H, Horii T, Igarashi I, Tanabe K.

    Mol Biol Evol. 2009 Dec 24. [Epub ahead of print]PMID: 20034997 [PubMed - as supplied by publisher]Related articles

    5.

    Apicomplexa genes involved in the host cell invasion: the Cpa135 protein family.

    Tosini F, Trasarti E, Pozio E.

    Parassitologia. 2006 Jun;48(1-2):105-7.PMID: 16881408 [PubMed - indexed for MEDLINE]Related articles

    6.

    Comparative genomic and phylogenetic analyses of calcium ATPases and calcium-regulated proteins in the apicomplexa.

    Nagamune K, Sibley LD.

    Mol Biol Evol. 2006 Aug;23(8):1613-27. Epub 2006 Jun 2.PMID: 16751258 [PubMed - indexed for MEDLINE]Related articlesFree article

    7.

    Peptidyl-prolyl cis-trans isomerases (immunophilins) and their roles in parasite biochemistry, host-parasite interaction and antiparasitic drug action.

    Bell A, Monaghan P, Page AP.

    Int J Parasitol. 2006 Mar;36(3):261-76. Epub 2005 Dec 7. Review.PMID: 16443228 [PubMed - indexed for MEDLINE]Related articles

    8.

    In silico identification of specialized secretory-organelle proteins in apicomplexan parasites and in vivo validation in Toxoplasma gondii.

    Chen Z, Harb OS, Roos DS.

    PLoS One. 2008;3(10):e3611. Epub 2008 Oct 31.PMID: 18974850 [PubMed - indexed for MEDLINE]Related articlesFree article

    9.

    Properties of non-coding DNA and identification of putative cis-regulatory elements in Theileria parva.

    Guo X, Silva JC.

    BMC Genomics. 2008 Dec 3;9:582.PMID: 19055776 [PubMed - indexed for MEDLINE]Related articlesFree article

    10.

    Toxoplasma gondii: the model apicomplexan.

    Kim K, Weiss LM.

    Int J Parasitol. 2004 Mar 9;34(3):423-32. Review.PMID: 15003501 [PubMed - indexed for MEDLINE]Related articles

    11.

    Identification and comparative analysis of sixteen fungal peptidyl-prolyl cis/trans isomerase repertoires.

    Pemberton TJ.

    BMC Genomics. 2006 Sep 22;7:244.PMID: 16995943 [PubMed - indexed for MEDLINE]Related articlesFree article

    12.

    Global protein expression analysis in apicomplexan parasites: current status.

    Belli SI, Walker RA, Flowers SA.

    Proteomics. 2005 Mar;5(4):918-24. Review.PMID: 15759314 [PubMed - indexed for MEDLINE]Related articles

    13.

    A membrane-anchored Theileria parva cyclophilin with a non-cleaved amino-terminal signal peptide for entry into the endoplasmic reticulum.

    Ebel T, Pellé R, Janoo R, Lipp J, Bishop R.

    Vet Parasitol. 2004 May 7;121(1-2):65-77.PMID: 15110404 [PubMed - indexed for MEDLINE]Related articles

    14.

    The plant-type ferredoxin-NADP+ reductase/ferredoxin redox system as a possible drug target against apicomplexan human parasites.

    Seeber F, Aliverti A, Zanetti G.

    Curr Pharm Des. 2005;11(24):3159-72. Review.PMID: 16178751 [PubMed - indexed for MEDLINE]Related articles

    15.

    Comparative genome analysis reveals a conserved family of actin-like proteins in apicomplexan parasites.

    Gordon JL, Sibley LD.

    BMC Genomics. 2005 Dec 12;6:179.PMID: 16343347 [PubMed - indexed for MEDLINE]Related articlesFree article

    16.

    Deciphering the ubiquitin-mediated pathway in apicomplexan parasites: a potential strategy to interfere with parasite virulence.

    Ponts N, Yang J, Chung DW, Prudhomme J, Girke T, Horrocks P, Le Roch KG.

    PLoS One. 2008 Jun 11;3(6):e2386.PMID: 18545708 [PubMed - indexed for MEDLINE]Related articlesFree article

    17.

    Fatty acid biosynthesis as a drug target in apicomplexan parasites.

    Goodman CD, McFadden GI.

    Curr Drug Targets. 2007 Jan;8(1):15-30. Review.PMID: 17266528 [PubMed - indexed for MEDLINE]Related articles

    18.

    Inconsistencies of genome annotations in apicomplexan parasites revealed by 5'-end-one-pass and full-length sequences of oligo-capped cDNAs.

    Wakaguri H, Suzuki Y, Sasaki M, Sugano S, Watanabe J.

    BMC Genomics. 2009 Jul 15;10:312.PMID: 19602295 [PubMed - indexed for MEDLINE]Related articlesFree article

    19.

    The origins of apicomplexan sequence innovation.

    Wasmuth J, Daub J, Peregrín-Alvarez JM, Finney CA, Parkinson J.

    Genome Res. 2009 Jul;19(7):1202-13. Epub 2009 Apr 10.PMID: 19363216 [PubMed - indexed for MEDLINE]Related articlesFree article

    20.

    Mining the Arabidopsis and rice genomes for cyclophilin protein families.

    Opiyo SO, Moriyama EN.

    Int J Bioinform Res Appl. 2009;5(3):295-309.PMID: 19525202 [PubMed - indexed for MEDLINE]Related articlesFree article

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