Evolutionary and geographical history of the Leishmania donovani complex with a revision of current taxonomy
Jazyk angličtina Země Spojené státy americké Médium print-electronic
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
17517634
PubMed Central
PMC1890502
DOI
10.1073/pnas.0703678104
PII: 0703678104
Knihovny.cz E-zdroje
- MeSH
- biologická evoluce * MeSH
- časové faktory MeSH
- genetické markery MeSH
- Leishmania donovani klasifikace genetika MeSH
- vznik druhů (genetika) MeSH
- zeměpis * MeSH
- zvířata MeSH
- Check Tag
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Názvy látek
- genetické markery MeSH
Leishmaniasis is a geographically widespread severe disease, with an increasing incidence of two million cases per year and 350 million people from 88 countries at risk. The causative agents are species of Leishmania, a protozoan flagellate. Visceral leishmaniasis, the most severe form of the disease, lethal if untreated, is caused by species of the Leishmania donovani complex. These species are morphologically indistinguishable but have been identified by molecular methods, predominantly multilocus enzyme electrophoresis. We have conducted a multifactorial genetic analysis that includes DNA sequences of protein-coding genes as well as noncoding segments, microsatellites, restriction-fragment length polymorphisms, and randomly amplified polymorphic DNAs, for a total of approximately 18,000 characters for each of 25 geographically representative strains. Genotype is strongly correlated with geographical (continental) origin, but not with current taxonomy or clinical outcome. We propose a new taxonomy, in which Leishmania infantum and L. donovani are the only recognized species of the L. donovani complex, and we present an evolutionary hypothesis for the origin and dispersal of the species. The genus Leishmania may have originated in South America, but diversified after migration into Asia. L. donovani and L. infantum diverged approximately 1 Mya, with further divergence of infraspecific genetic groups between 0.4 and 0.8 Mya. The prevailing mode of reproduction is clonal, but there is evidence of genetic exchange between strains, particularly in Africa.
Zobrazit více v PubMed
Desjeux P. Trans R Soc Trop Med Hyg. 2001;95:239–243. PubMed
Dujardin JC. Trends Parasitol. 2006;22:4–6. PubMed
Lainson R, Shaw JJ. In: The Leishmaniases in Biology and Medicine. Peters W, Killick-Kendrick R, editors. London: Academic; 1987. pp. 1–120.
Rioux J-A, Lanotte G, Serres E, Pratlong F, Bastien P, Perieres J. Ann Parasitol Hum Comp. 1990;65:111–125. PubMed
Pratlong F, Dereure J, Bucheton B, El-Safi S, Dessein A, Lanotte G, Dedet JP. Parasitology. 2001;122:599–605. PubMed
Mauricio IL, Stothard JR, Miles MA. Parasitol Today. 2000;16:188–189. PubMed
Lewin S, Schönian G, El Tai N, Oskam L, Bastien P, Presber W. Int J Parasitol. 2002;32:1267–1276. PubMed
Jamjoon MB, Ashford RW, Bates PA, Chance ML, Kemp SJ, Watts PC, Noyes HA. Parasitology. 2004;129:1–11. PubMed
Mauricio IL, Stothard JR, Miles MA. Parasitology. 2004;128:263–267. PubMed
Kuhls K, Mauricio IL, Pratlong F, Presber W, Schönian G. Microbes Infect. 2005;7:1224–1234. PubMed
Quispe-Tintaya KW, Laurent T, Decuypere S, Hide H, Banuls AL, De Doncker S, Rijal S, Canavate C, Camping L, Dujardin JC. J Infect Dis. 2005;192:685–692. PubMed
Zemanová E, Jirků M, Mauricio IL, Horák A, Miles MA, Lukeš J. Int J Parasitol. 2007;37:149–160. PubMed
Mauricio I, Gaunt MW, Stothard JR, Miles MA. Int J Parasitol. 2007;37:565–576. PubMed
Mauricio IL, Yeo M, Baghaei M, Doto D, Silk R, Pratlong F, Zemanová E, Dedet J- P, Lukeš J, Miles MA. Int J Parasitol. 2006;36:757–769. PubMed
Kuhls K, Keilonat L, Ochsenreiter S, Schaar M, Schweynoch C, Presber W, Schönian G. Microbes Infect. 2007;9:334–343. PubMed
Backeljau T, De Bruyn L, De Wolf H, Jordaens K, Van Dongen S, Verhagen R, Winnepenninckx B. Cladistics. 1995;11:119–130. PubMed
Hampl V, Pavlíček A, Flegr J. Int J Syst Evol Microbiol. 2001;51:731–735. PubMed
Simpson AGB, Stevens JR, Lukeš J. Trends Parasitol. 2006;22:168–174. PubMed
Sanderson MJ. Bioinform Appl Note. 2003;19:301–302. PubMed
Langley CH, Fitch WM. J Mol Evol. 1974;3:161–177. PubMed
Desjeux P. Comp Immunol Microbiol Infect Dis. 2004;27:305–318. PubMed
Quispe-Tintaya KW, Ying X, Dedet J-P, Rijal S, De Bolle X, Dujardin JC. J Infect Dis. 2004;189:1035–1043. PubMed
Waki K, Dutta S, Ray D, Kolli BK, Akman L, Kawazu S-I, Lin C-P, Chang K-P. Eukaryot Cell. 2007;6:198–210. PubMed PMC
Kerr SF. Mem Inst Osw Cruz. 2000;95:75–80. PubMed
Momen H, Cupolillo E. Mem Inst Oswaldo Cruz. 2000;95:583–588. PubMed
Noyes HA, Arana BA, Chance ML, Maignon R. J Euk Microbiol. 1997;44:511–517. PubMed
Noyes HA. Mem Inst Oswaldo Cruz. 1998;93:657–661. PubMed
Stevens JR, Noyes HA, Schofield CJ, Gibson W. Adv Parasitol. 2001;48:1–56. PubMed
Yurchenko VA, Lukeš J, Jirků M, Zeledón R, Maslov DA. Parasitology. 2006;133:537–546. PubMed
Stevens JR, Rambaut A. Infect Genet Evol. 2001;1:143–150. PubMed
Fernandes AP, Nelson K, Beverley SM. Proc Natl Acad Sci USA. 1993;90:11608–11612. PubMed PMC
Croan DG, Morrison DA, Ellis JT. Mol Biochem Parasitol. 1997;89:149–159. PubMed
Sang DK, Pratlong F, Ashford RW. Trans R Soc Trop Med Hyg. 1992;86:621–622. PubMed
Ashford RW. Int J Parasitol. 2000;30:1269–1281. PubMed
Ibrahim ME, Barker DC. Inf Gen Evol. 2001;1:61–68. PubMed
Ashford RW, Seaman J, Schorscher J, Pratlong F. Trans R Soc Trop Med Hyg. 1992;86:379–380. PubMed
Ochsenreither S, Kuhls K, Schaar M, Presber W, Schönian G. J Clin Microbiol. 2006;44:495–503. PubMed PMC
Botilde Y, Laurent T, Quispe-Tintaya W, Chicharro C, Canavate C, Cruz I, Kuhls K, Schönian G, Dujardin JC. Infect Genet Evol. 2006;6:440–446. PubMed
Dereure J, El-Safi SH, Bucheton B, Boni M, Kheir MM, Davoust B, Pratlong F, Feugier E, Lambert M, Dessein A, et al. Microbes Infect. 2003;5:1103–1108. PubMed
Ravel C, Cortes S, Pratlong F, Morio F, Dedet J-P, Campino L. Int J Parasit. 2006;36:1383–1388. PubMed
Grigg ME, Bonnefoy S, Hehl AB, Suzuki Y, Boothroyd JC. Science. 2001;294:161–165. PubMed
Boyle JP, Rajasekar B, Saei JPJ, Ajoka JW, Berriman M, Paulsen I, Roos DS, Sibley LD, White MW, Boothroyd J. Proc Natl Acad Sci USA. 2006;103:10514–10519. PubMed PMC
Swofford DL. PAUP*: Phylogenetic Analysis Using Parsimony (* and Other Methods) Sunderland, MA: Sinauer; 2003. Version 4.
Clement M, Posada D, Crandall KA. Mol Ecol. 2000;9:1657–1659. PubMed
Tajima F. Genetics. 1989;123:585–595. PubMed PMC
Fu XY, Li W-H. Genetics. 1993;133:693–709. PubMed PMC
Nei M. Proc Natl Acad Sci USA. 1973;70:3321–3323. PubMed PMC
Rozas J, Sanchez-DelBarrio JC, Messeguer X, Rozas R. Bioinformatics. 2003;19:2496–2497. PubMed
Felsenstein J. J Mol Evol. 1981;17:368–376. PubMed
Revisiting epidemiology of leishmaniasis in central Asia: lessons learnt
Leishmania tarentolae: A new frontier in the epidemiology and control of the leishmaniases
Frequent Recombination Events in Leishmania donovani: Mining Population Data
Novel Trypanosomatid-Bacterium Association: Evolution of Endosymbiosis in Action
Exposure to Leishmania spp. and sand flies in domestic animals in northwestern Ethiopia