dc.creatorCeita G.O.
dc.creatorCeita G.O.
dc.creatorVilas-Boas L.A.
dc.creatorCastilho M.S.
dc.creatorCarazzolle M.F.
dc.creatorPirovani C.P.
dc.creatorSelbach-Schnadelbach A.
dc.creatorGramacho K.P.
dc.creatorRamos P.I.P.
dc.creatorBarbosa L.V.
dc.creatorPereira G.A.G.
dc.creatorGoes-Neto A.
dc.date2014
dc.date2015-06-25T17:52:02Z
dc.date2015-11-26T14:12:46Z
dc.date2015-06-25T17:52:02Z
dc.date2015-11-26T14:12:46Z
dc.date.accessioned2018-03-28T21:13:27Z
dc.date.available2018-03-28T21:13:27Z
dc.identifier
dc.identifierGenetics And Molecular Biology. Brazilian Journal Of Genetics, v. 37, n. 4, p. 683 - 693, 2014.
dc.identifier14154757
dc.identifier
dc.identifierhttp://www.scopus.com/inward/record.url?eid=2-s2.0-84914703975&partnerID=40&md5=fa8add754f026cff86da645b689902d8
dc.identifierhttp://www.repositorio.unicamp.br/handle/REPOSIP/86196
dc.identifierhttp://repositorio.unicamp.br/jspui/handle/REPOSIP/86196
dc.identifier2-s2.0-84914703975
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1242097
dc.descriptionThe phytopathogenic fungus Moniliophthora perniciosa (Stahel) Aime & Philips-Mora, causal agent of witches’ broom disease of cocoa, causes countless damage to cocoa production in Brazil. Molecular studies have attempted to identify genes that play important roles in fungal survival and virulence. In this study, sequences deposited in the M. perniciosa Genome Sequencing Project database were analyzed to identify potential biological targets. For the first time, the ergosterol biosynthetic pathway in M. perniciosa was studied and the lanosterol 14α-demethylase gene (ERG11) that encodes the main enzyme of this pathway and is a target for fungicides was cloned, characterized molecularly and its phylogeny analyzed.ERG11 genomic DNA and cDNA were characterized and sequence analysis of the ERG11 protein identified highly conserved domains typical of this enzyme, such as SRS1, SRS4, EXXR and the heme-binding region (HBR). Comparison of the protein sequences and phylogenetic analysis revealed that the M. perniciosa enzyme was most closely related to that of Coprinopsis cinerea.
dc.description37
dc.description4
dc.description683
dc.description693
dc.descriptionAime, M.C., Phillips-Mora, W., The causal agents of witches’ broom and frost pod rot of cacao (chocolate, Theobroma cacao) from a new lineage of Marasmiaceae (2005) Mycologia, 97, pp. 1012-1022
dc.descriptionAlbertini, C., Thebaud, G., Fournier, E., Leroux, P., Eburicol 14α-demethylase gene (CYP51) polymorphism and speciation in Botrytis cinerea (2002) Mycol Res, 106, pp. 1171-1178
dc.descriptionAltschul, S.F., Gish, W., Miller, W., Myersewand Lipman, D.J., Basic local alignment search tool (1990) J Mol Biol, 215, pp. 403-410
dc.descriptionBak, S., Kahn, R.A., Oisen, C.E., Halkier, B.A., Cloning and expression in Escherichia coli of the obtusifoliol 14α-demethylase of Sorghum bicolor (L.) Moench, a cytochrome P450 orthologous to the sterol 14α demethylases (CYP51) from fungi and mammals (1997) Plant J, 11, pp. 191-201
dc.descriptionBarrett-Bee, K., Dixon, G., Ergosterol biosynthesis inhibition: A target for antifungal agents (1995) Acta Biochim Pol, 42, pp. 465-480
dc.descriptionBellamine, A., Mangla, A.T., Nes, W.D., Waterman, M.R., Characterization and catalytic properties of the sterol 14α-demethylase from Mycobacterium tuberculosis (1999) Proc Natl Acad Sci USA, 96, pp. 8937-8942
dc.descriptionButler, G., Rasmussen, M.D., Lin, M.F., Santos, M.A., Sakthikumar, S., Munro, C.A., Rheinbay, E., Reedy, J.L., Evolution of pathogenicity and sexual reproduction in eight Candida genomes (2009) Nature, 459, pp. 657-662
dc.descriptionCarrillo-Muñoz, A.J., Giusiano, G., Ezkurra, P.A., Quindós, G., Antifungal agents: Mode of action in yeast cells (2006) Rev Esp Quim, 19, pp. 130-139
dc.descriptionCeita, G.O., Macedo, J.N., Santos, T.B., Alemanno, L., Gesteira, A.S., Micheli, F., Mariano, A.C., Meinhardt, L.W., Involvement of calcium oxalate degradation during programmed cell death in Theobroma cacao tissues triggered by the hemibiotrophic fungus Moniliophthora perniciosa (2007) Plant Sci, 173, pp. 106-117
dc.descriptionD’souza, C.A., Kronstad, J.W., Taylor, G., Warren, R., Yuen, M., Hu, G., Jung, W.H., Tangen, K., Genome variation in Cryptococcus gattii, an emerging pathogen of immunocompetent hosts (2011) MBio, 2, pp. e00342-e00410
dc.descriptionDélye, C., Laigret, F., Corio-Costet, M.F., Cloning and sequence analysis of the eburicol 14α-demethylase gene of the obligate biotrophic grape powdery mildew fungus (1997) Gene, 195, pp. 29-33
dc.descriptionDujon, B., Sherman, D., Fischer, G., Durrens, P., Casaregola, S., Lafontaine, I., De Montigny, J., Talla, E., Genome evolution in yeasts (2004) Nature, 430, pp. 35-44
dc.descriptionEvans, H.C., Cacao diseases - The trilogy revisited (2007) Phytopathology, 97, pp. 1640-1643
dc.descriptionFelsenstein, J., Confidence limits on phylogenies: An approach using the bootstrap (1985) Evolution, 39, pp. 783-791
dc.descriptionFormighieri, E.F., Tiburcio, R.A., Armas, E.D., Medrano, F.J., Shimo, H., Carels, N., GóEs Neto, A., Sardinha-Pinto, N., The mitochondrial genome of the phytopathogenic basidiomycete Moniliophthora perniciosa is 109 kb in size and contains a stable integrated plasmid (2008) Mycol Res, 112, pp. 1136-1152
dc.descriptionGasteiger, E., Hoogland, C., Gattiker, A., Duvaud, S., Wilkins, M.R., Appel, R.D., Bairoch, A., Protein identification and analysis tools on the ExPASy Server (2005) The Proteomics and Protocols Handbook, pp. 571-607. , In: Walker JM, Humana Press, Totowa
dc.descriptionGoffeau, A., Barrell, B.G., Bussey, H., Davis, R.W., Dujon, B., Feldmann, H., Galibert, F., Johnston, M., Life with 6000 genes (1996) Science, 265, pp. 2077-2082
dc.descriptionGriffith, G.W., Bravo-Velasquez, E., Wilson, F.J., Lewis, D.M., Hedger, J.N., Autecology and evolution of the witches’ broom pathogen (Crinipellis perniciosa) of cocoa (1994) The Ecology of Plant Pathogens, pp. 245-265. , In: Blakeman JP and Williamson B, CAB International, Wallingford
dc.descriptionGriffith, G.W., Nicholson, J., Neinninger, A., Birch, R., Witches’ brooms and frosty pods: Two major pathogens of cacao (2003) New Zeal J Bot, 41, pp. 423-435
dc.descriptionHall, T.A., BioEdit: A user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT (1999) Nucleic Acids Res, 41, pp. 95-98
dc.descriptionHof, H., Critical annotations to the use of azole antifungals for plant protection (2001) Antimicrob Agents Chemother, 45, pp. 2987-2990
dc.descriptionJackson, C.J., Lamb, D.C., Marczylo, T.H., Parker, J.E., Manning, N.L., Kelly, D.E., Kelly, S.L., Conservation and cloning of CYP51: A sterol 14α-demethylase from Mycobacterium smegmatis (2003) Biochem Biophys Res Commun, 301, pp. 558-563
dc.descriptionJames, T.Y., Kauff, F., Schoch, C.L., Matheny, P.B., Hofstetter, V., Cox, C.J., Celio, G., Miadlikowska, J., Reconstructing the early evolution of Fungi using a six-gene phylogeny (2006) Nature, 19, pp. 818-822
dc.descriptionJones, T., Federspiel, N.A., Chibana, H., Dungan, J., Kalman, S., Magee, B.B., Newport, G., Magee, P.T., The diploid genome sequence of Candida albicans (2004) Proc Natl Acad Sci USA, 101, pp. 7329-7334
dc.descriptionKairuz, P.B., Zuber, J.P., Jaunin, P., Buchman, T.G., Bille, J., Rossier, M., Rapid detection and identification of Candida albicans and Torulopsis (Candida) glabrata in clinical specimens by species-specific nested PCR amplification of a cytochrome P-450 lanosterol-α-demethylase (L1A1) gene fragment (1994) J Clin Microbiol, 32, pp. 1902-1907
dc.descriptionKalb, V.F., Woods, C.W., Turi, T.G., Dey, C.R., Sutter, T.R., Loper, J.C., Primary structure of the P450 lanosterol demethylase gene from Saccharomyces cerevisiae (1987) DNA, 6, pp. 529-537
dc.descriptionKall, L., Krogh, A., Sonnhammer, E.L., Advantages of combined transmembrane topology and signal peptide prediction- the Phobius web server (2007) Nucleic Acids Res 35:429-, p. 432
dc.descriptionKim, D., Lim, Y.R., Ohk, S.O., Kim, B.J., Chun, Y.J., Functional expression and characterization of CYP51 from dandruffcausing Malassezia globosa (2011) FEMS Yeast Res, 11, pp. 80-87
dc.descriptionLai, M.H., Kirsch, D.R., Nucleotide sequence of cytochrome P450 L1A1 (lanosterol 14α-demethylase) from Candida albicans (1989) Nucleic Acids Res, 17, p. 804
dc.descriptionLamb, D.C., Kelly, D.E., Manning, N.M., Hollomon, D.W., Kelly, S.L., Expression, purification, reconstitution and inhibition of Ustilago maydis sterol 14α-demethylase (CYP 51
dc.descriptionP450) (1998) FEMS Microbiol Lett, 169, pp. 369-373
dc.descriptionLee, C.H., Hsu, K.H., Wang, S.Y., Chang, T.T., Chu, F.H., Shaw, J.F., Cloning and characterization of the lanosterol 14α-demethylase gene from Antrodia cinnamomea (2010) J Agr Food Chem, 58, pp. 4800-4807
dc.descriptionLees, N.D., Skaggs, B., Kirsch DR and BirdM(1995) Cloning of the late genes in the ergosterol biosynthetic pathway of Saccharomyces cerevisiae - A review Lipids, 30, pp. 221-226
dc.descriptionLepesheva, G.I., Waterman, M.R., Sterol 14α-demethylase cytochrome P450 (CYP51), a P450 in all biological kingdoms (2007) Biochim Biophys Acta, 3, pp. 467-477
dc.descriptionLuo, C.X., Schnabel, G., The cytochrome P450 lanosterol 14α-demethylase gene is a demethylation inhibitor fungicide resistance determinant in Monilia fructicola field isolates from Georgia (2008) Appl Environ Microb, 74, pp. 359-366
dc.descriptionMartin, F., Aerts, A., Ahrén, D., Brun, A., Danchin, E.G., Duchaussoy, F., Gibon, J., Pereda, V., The genome of Laccaria bicolor provides insights into mycorrhizal symbiosis (2008) Nature, 452, pp. 88-92
dc.descriptionMcQuilken, M.P., Rudgard, S.A., Sensitivity of Crinipellis periciosa to two triazole fungicides in vitro and their effect on development of the fungus in cocoa (1988) Plant Pathol, 37, pp. 499-506
dc.descriptionMeinhardt, L.W., Bellato, C.M., Rincones, J., Azevedo, R.A., Cascardo, J.C.M., Pereira, G.A.G., In vitro production of biotrophic- like cultures of Crinipellis perniciosa, the causal agent of Witches’ broom disease of Theobroma cacao (2006) Curr Microbiol, 52, pp. 191-196
dc.descriptionMellado, E., Guerra, T.M.D., Estrela, M.C., Tudela, J.L.R., Identification of two different 14α-sterol demethylase related genes (cyp51A and cyp51B) in Aspergillus fumigatus and other Aspergillus species (2001) J Clin Microbiol 39:2431-, p. 2438
dc.descriptionMondego, J.M.C., Carazzolle, M.F., Costa, G.G.L., Formighieri, E.F., Parizzi, L.P., Rincones, J., Cotomacci, C., Carrer, H., A genome survey of Moniliophthora perniciosa gives new insights into Witches’ broom disease of cacao (2008) BMC Genomics, 9, pp. 1-25
dc.descriptionMorales, I.J., Vohra, P.K., Puri, V., Kottom, T.J., Limper, A.H., Thomas, C.F., Characterization of a lanosterol 14α demethylase from Pneumocystis carinii (2003) Am J Resp Cell Mol, 29, pp. 232-238
dc.descriptionMota, S.G.R., Barros, T.F., Castilho, M.S., In vitro screening and chemometrics analysis on a series of azole derivativeswith fungicide activity against Moniliophthora perniciosa (2010) J Braz Chem Soc, 21, pp. 510-519
dc.descriptionNierman, W.C., Pain, A., Anderson, M.J., Wortman, J.R., Kim, H.S., Arroyo, J., Berriman, M., Bermejo, C., Genomic sequence of the pathogenic and allergenic filamentous fungus Aspergillus fumigatus (2005) Nature, 438, pp. 1151-1156
dc.descriptionPage, R.D.M., TREEVIEW: An application to display phylogenetic trees on personal computers (1996) Comput Appl Biosci, 12, pp. 357-358
dc.descriptionPark, H.G., Lee, I.S., Chun, Y.J., Yun, C.H., Johnston, J.B., Montellano, P.R.O., Kim, D., Heterologous expression and characterization of the sterol 14α-demethylase CYP51F from Candida albicans (2011) Arch Biochem Biophys, 509, pp. 9-15
dc.descriptionPereira, J.L., Ram, A., Figueiredo, J.M., Almeida, L.C.C., Primeira ocorrência de vassoura-de-bruxa na principal região produtora de cacau do Brasil (1989) Agrotrópica, 1, pp. 79-81
dc.descriptionPetersen, T.N., Brunak, S., Heijne, G., Nielsen, H., SignalIP 4.0: Discriminating signal peptides from transmembrane regions (2011) Nat Methods, 10, pp. 785-786
dc.descriptionPietila, M.P., Vohra, P.K., Sanyat, B., Wengenack, N.L., Raghavakaimal, S., Thomas, C.F., Cloning and characterization of CYP51 from Mycobacterium avium (2006) Am J Resp Cell Mol, 35, pp. 236-240
dc.descriptionPires, A.B.L., Gramacho, K.P., Silva, D.C., Góes-Neto, A., Silva, M.M., Muniz-Sobrinho, J.S., Porto, R.F., Cascardo, J.C.M., Early development of Moniliophthora perniciosa basidiomata and developmentally regulated genes (2009) BMC Microbiol, 9, p. e158
dc.descriptionPurdy, L.H., Schimidt, R.A., Status of cacao witches’ broom: Biology, epidemiology, and management (1996) Annu Rev Phytopathol, 34, pp. 573-594
dc.descriptionRaeder, U., Broda, P., Rapid preparation of DNA from filamentous fungi (1985) Lett Appl Microbiol, 1, pp. 17-20
dc.descriptionRevankar, S.G., Fu, J., Rinaldi, M.G., Kelly, S.L., Kelly, D.E., Lamb, D.C., Keller, S.M., Wickes, B.L., Cloning and characterization of the lanosterol 14α-demethylase (ERG11) gene in Cryptococcus neoformans (2004) Biochem Biophys Res Commun, 324, pp. 719-728
dc.descriptionRincones, J., Scarpari, L.M., Carazzolle, M.F., Mondego, J.M.C., Formighieri, E.F., Barau, J.G., Costa, G.G.L., Vilas-Boas, L.A., Differential gene expression between the biotrophic-like and saprotrophic mycelia of the witches’ broom pathogen Moniliophthora perniciosa (2008) Mol Plant Microbe Int, 21, pp. 891-908
dc.descriptionRio, M.C.S., Oliveira, B.V., Tomazella, D.P.T., Silva, J.A.F., Pereira, G.A.G., Production of calcium oxalate crystals by the basidiomycete Moniliophthora perniciosa, the causal agent of witches’ broom disease of cacao (2008) Curr Microbiol, 56, pp. 363-370
dc.descriptionRozman, D., Stromstedt, M., Tsui, L.C., Scherer, S.W., Waterman, M.R., Structure and mapping of the human lanosterol 14α-demethylase gene (CYP51) encoding the cytochrome P450 involved in cholesterol biosynthesis: Comparison of exon/intron organization with other mammalian and fungal CYP genes (1996) Genomics, 38, pp. 371-381
dc.descriptionSheng, C., Miao, Z., Ji, H., Yao, J., Wang, W., Che, X., Dong, G., Zhang, W., Three-dimensional model of lanosterol 14α-demethylase from Cryptococcus neoformans: Active- site characterization and insights into azole binding (2009) Antimicrob Agents Chemother, 53, pp. 3487-3495
dc.descriptionSigrist, C.J.A., Cerutti, L., Castro, E., Langendijk-Genevaux, P.S., Bulliard, V., Bairoch, A., Hulo, N., PROSITE, a protein domain database for functional characterization and annotation (2009) Nucleic Acids Res, 38, pp. 161-166
dc.descriptionStajich, J.E., Wilke, S.K., Ahrén, D., Au, C.H., Birren, B.W., Borodovsky, M., Burns, C., Cheng, C.K., Insights into evolution of multicellular fungi from the assembled chromosomes of the mushroom Coprinopsis cinerea (Coprinus cinereus) (2010) Proc Natl Acad Sci USA, 107, pp. 11889-11894
dc.descriptionStanke, M., Keller, O., Gunduz, I., Hayes, A., Waack, S., Morgenstern, B., AUGUSTUS: Ab initio prediction of alternative transcripts (2006) Nucleic Acids Res, 34, pp. 435-439
dc.descriptionSwofford, D.L., PAUP - Phylogenetic Analysis Using Parsimony (and other methods). Version 4.0b10 (2002) Sinauer Associates, , Sunderland, MA
dc.descriptionTer-Hovhannisyan, V., Lomsadze, L., Chernoff, Y.O., Borodovsky, M., Gene prediction in novel fungal genomes using an ab initio algorithm with unsupervised training (2008) Genome Res, 18, pp. 1979-1990
dc.descriptionThompson, J.D., Higgins, D.G., Gibson, T.J., CLUSTAL W: Improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position specific gap penalties and weigh matrix choice (1994) Nucleic Acids Res, 22, pp. 4673-4680
dc.descriptionVeen, M., Lang, C., Interactions of the ergosterol biosynthetic pathway with other lipid pathways (2005) Biochem Soc Trans, 33, pp. 1178-1181
dc.descriptionWarrilow, A.G.S., Melo, N., Martel, C.M., Parker, J.E., Nes, W.D., Kelly, S.L., Kelly, D.E., Expression, purification and characterization of Aspergillus fumigatus sterol 14α demethylase (CYP51) isoenzymes A and B (2010) Antimicrob Agents Chemother, 54, pp. 4225-4234
dc.descriptionWaterman, M.R., Lepesheva, G.I., Sterol 14 _-demethylase, an abundant and essential mixed-function oxidase (2005) Biochem Biophys Res Commun, 338, pp. 418-422
dc.descriptionWood, H.M., Dickinson, M.J., Lucas, J.A., Dyer, P.S., Cloning of the CYP51 gene from the eyespot pathogen Tapesia yallundae indicates that resistance to the DMI fungicide prochloraz is not related to sequence changes in the gene encoding the target site enzyme (2001) FEMS Microbiol Lett, 196, pp. 183-187
dc.descriptionZhao, L., Liu, D., Zhang, Q., Zhang, S., Wan J and XiaoW(2007) Expression and homology modeling of sterol 14α-demethylase from Penicillium digitatium FEMS Microbiol Lett, 277, pp. 37-43
dc.languageen
dc.publisherBrazilian Journal of Genetics
dc.relationGenetics and Molecular Biology
dc.rightsaberto
dc.sourceScopus
dc.titleAnalysis Of The Ergosterol Biosynthesis Pathway Cloning, Molecular Characterization And Phylogeny Of Lanosterol 14 α-demethylase (erg11) Gene Of Moniliophthora Perniciosa
dc.typeArtículos de revistas


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