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Differentiation and Gene Flow among European Populations of Leishmania infantum MON-1

DOI: 10.1371/journal.pntd.0000261

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Abstract:

Background Leishmania infantum is the causative agent of visceral and cutaneous leishmaniasis in the Mediterranean region, South America, and China. MON-1 L. infantum is the predominating zymodeme in all endemic regions, both in humans and dogs, the reservoir host. In order to answer important epidemiological questions it is essential to discriminate strains of MON-1. Methodology/Principal Findings We have used a set of 14 microsatellite markers to analyse 141 strains of L. infantum mainly from Spain, Portugal, and Greece of which 107 strains were typed by MLEE as MON-1. The highly variable microsatellites have the potential to discriminate MON-1 strains from other L. infantum zymodemes and even within MON-1 strains. Model- and distance-based analysis detected a considerable amount of structure within European L. infantum. Two major monophyletic groups—MON-1 and non-MON-1—could be distinguished, with non-MON-1 being more polymorphic. Strains of MON-98, 77, and 108 were always part of the MON-1 group. Among MON-1, three geographically determined and genetically differentiated populations could be identified: (1) Greece; (2) Spain islands–Majorca/Ibiza; (3) mainland Portugal/Spain. All four populations showed a predominantly clonal structure; however, there are indications of occasional recombination events and gene flow even between MON-1 and non-MON-1. Sand fly vectors seem to play an important role in sustaining genetic diversity. No correlation was observed between Leishmania genotypes, host specificity, and clinical manifestation. In the case of relapse/re-infection, only re-infections by a strain with a different MLMT profile can be unequivocally identified, since not all strains have individual MLMT profiles. Conclusion In the present study for the first time several key epidemiological questions could be addressed for the MON-1 zymodeme, because of the high discriminatory power of microsatellite markers, thus creating a basis for further epidemiological investigations.

References

[1]  Mauricio I, Stothard JR, Miles MA (2000) The strange case of Leishmania chagasi. Parasitol Today 16: 188–189. doi: 10.1016/S0169-4758(00)01637-9
[2]  Gradoni L, Gramiccia M, Scalone A (2003) Visceral leishmaniasis treatment, Italy. Emerg Inf Dis 9: 1617–1620. doi: 10.3201/eid0912.030178
[3]  Fenech F (1997) Leishmaniasis in Malta and the Mediterranean basin. Ann Trop Med Parasitol 91: 747–754. doi: 10.1080/00034989760491
[4]  World Health Organization (2002) Urbanization: an increasing risk factor for leishmaniasis. Wkly Epidemiol Rec 77: 365–372.
[5]  World Health Organization (1999) Leishmania/HIV co-infection, south-western Europe, 1990–1998. Retrospective analysis of 965 cases. Wkly Epidemiol Rec 74: 365–375.
[6]  Alvar J (1994) Leishmaniasis and AIDS co-infection: the Spanish example. Parasitol Today 10: 160–163. doi: 10.1016/0169-4758(94)90270-4
[7]  Desjeux P, Alvar J (2003) Leishmania/HIV co-infections: epidemiology in Europe. Ann Trop Med Parasitol 97: Suppl. 13–15. doi: 10.1179/000349803225002499
[8]  Cruz I, Nieto J, Moreno J, Ca?avate C, Desjeux P, et al. (2006) Leishmania/HIV co-infections in the second decade. Indian J Med Res 123: 357–388.
[9]  Jiménez M, Ferrer-Dufol M, Ca?avate C, Gutiérrez-Solar B, Molina R, et al. (1995a) Variability of Leishmania (Leishmania) infantum among stocks from immuno-compromised, immunocompetent patients and dogs in Spain. FEMS Microbiol Letters 131: 197–204. doi: 10.1016/0378-1097(95)00259-8
[10]  Alvar J, Gutiérrez-Solar B, Pachón I, Calbacho E, Ramírez M, et al. (1996) AIDS and Leishmania infantum. New approaches for a new epidemiological problem. Clin Dermatol 14: 541–546. doi: 10.1016/0738-081X(96)00046-6
[11]  Alvar J, Ca?avate C, Gutiérrez-Solar B, Jiménez MI, Laguna F, et al. (1997) Leishmania and human immunodeficiency virus coinfection: the first 10 years. Clin Microbiol Rev 10: 298–319.
[12]  Cruz I, Morales MA, Noguer I, Rodriguez A, Alvar J (2002) Leishmania in discarded syringes from intravenous drug users. The Lancet 359: 1124–1125. doi: 10.1016/s0140-6736(02)08160-6
[13]  Morales MA, Chicharro C, Ares M, Ca?avate C, Barker DC, et al. (2001) Molecular tracking of infections by Leishmania infantum. Trans R Soc Trop Med Hyg 95: 104–107. doi: 10.1016/S0035-9203(01)90352-9
[14]  Morales MA, Cruz I, Rubio JM, Chicharro C, Ca?avate C, et al. (2002) Relapses versus re-infections in patients coinfected with Leishmania infantum and human immunodefiency virus type 1. J Inf Dis 185: 1533–1537. doi: 10.1086/340219
[15]  Capelli G, Baldelli R, Ferroglio E, Genchi C, Gradoni L, et al. (2004) Parassitologia 46: 193–197.
[16]  Gramiccia M, Gradoni L (2005) The current status of zoonotic leishmaniases and approaches to disease control. Int J Parasitol 35: 1169–1180. doi: 10.1016/j.ijpara.2005.07.001
[17]  Ferroglio E, Romano A, Passera S, D'Angelo A, Guiso P, et al. (2006) Dogs' parasite and zoonotic risk: from old to new “emergencies” in the North-West of Italy. Parassitologie 48: 115–116.
[18]  Moreno J, Alvar J (2002) Canine leishmaniasis: epidemiological risk and the experimental model. Trends Parasitol 18: 399–405. doi: 10.1016/S1471-4922(02)02347-4
[19]  Alvar J, Ca?avate C, Molina R, Moreno J, Nieto J (2004) Canine Leishmaniasis. Adv Parasitol 57: 1–88. doi: 10.1016/S0065-308X(04)57001-X
[20]  Cortes S, Afonso MO, Alves-Pires C, Campino L (2007) Importance of stray dogs in the emergence of leishmaniasis in urban areas. Emerg Infec Dis (in press).
[21]  Rioux JA, Lanotte G, Serres E, Pratlong F, Bastien P, et al. (1990) Taxonomy of Leishmania, use of isozymes. Suggestions for a new classification. Annales de Parasitologie Humaine et Comparée 65: 111–125.
[22]  Pratlong F, Dereure J, Bucheton B, El-Safi S, Dessein A, et al. (2001) Sudan: the possible original focus of visceral leishmaniasis. Parasitology 122: 599–605. doi: 10.1017/S0031182001007867
[23]  Pratlong F, Dedet JP, Marty P, Potús M, Deniau M, et al. (1995) Leishmania-human immuno-deficiency virus coinfection in the Mediterranean basin: isoenzymatic characterization of 100 isolates of the Leishmania infantum complex. J Inf Dis 172: 323–326. doi: 10.1093/infdis/172.1.323
[24]  Pratlong F, Dereure J, Deniau M, Marty P, Faraut-Gambarelli F, et al. (2003) Enzymatic polymorphism during Leishmania/HIV co-infection study of 381 Leishmania strains received between 1986 and 2000 at the international cryobank in Montpellier, France. Ann Trop Med Parasitol 97: Suppl. 147–56. doi: 10.1179/000349803225002525
[25]  Pratlong F, Rioux JA, Marty P, Faraut-Gambarelli F, Dereure J, et al. (2004) Isoenzymatic analysis of 712 strains of Leishmania infantum in the South of France and relationship of enzymatic polymorphism to clinical and epidemiological features. J Clin Microbiol 42: 4077–4082. doi: 10.1128/JCM.42.9.4077-4082.2004
[26]  Gallego M, Pratlong F, Fisa R, Riera C, Rioux JA, et al. (2001) The life cycle of Leishmania infantum MON-77 in the Priorat (Catalonia, Spain) involves humans, dogs and sand flies; also literature review of distribution and hosts of L. infantum zymodemes in the Old World. Trans R Soc Trop Med Hyg 95: 269–271. doi: 10.1016/S0035-9203(01)90231-7
[27]  Gramiccia M (2003) The identification and variability of the parasite causing leishmaniasis in HIV-positive patients in Italy. Ann Trop Med Parasitol 97: Suppl. 165–73. doi: 10.1179/000349803225002543
[28]  Campino L, Pratlong F, Abranches P, Rioux JA, Santos-Gomes G, et al. (2006) Leishmaniasis in Portugal: enzyme polymorphism of Leishmania infantum based on the identification of 213 strains. Trop Med Int Health 11: 1708–1714. doi: 10.1111/j.1365-3156.2006.01728.x
[29]  Martin-Sanchez J, Gramiccia M, Di Muccio T, Ludovisi A, Morillas-Márquez F (2004) Isoenzymatic polymorphism of Leishmania infantum in Southern Spain. Trans R Soc Trop Med Hyg 98: 228–232. doi: 10.1016/S0035-9203(03)00060-9
[30]  Chicharro C, Jiménez MI, Alvar J (2003) Iso-enzymatic variability of Leishmania infantum in Spain. Ann Trop Med Parasitol 97: Suppl. 157–64. doi: 10.1179/000349803225002534
[31]  Mauricio I, Howard MK, Stothard JR, Miles MA (1999) Genomic diversity in the Leishmania donovani complex. Parasitology 119: 237–246. doi: 10.1017/S0031182099004710
[32]  Ba?uls AL, Hide M, Tibayrenc M (1999) Molecular epidemiology and evolutionary genetics of Leishmania parasites. Int J Parasitol 29: 1137–1147. doi: 10.1016/S0020-7519(99)00083-1
[33]  Hide M, Ba?uls AL, Tibayrenc M (2001) Genetic heterogeneity and phylogenetic status of Leishmania (Leishmania) infantum zymodeme MON-1: epidemiological implications. Parasitology 123: 425–432. doi: 10.1017/S003118200100871X
[34]  Zemanová E, Jirk? M, Mauricio IL, Miles MA, Luke? J (2004) Genetic polymorphism within the Leishmania donovani complex: Correlation with geographic origin. Am J Trop Med Hyg 70: 613–617.
[35]  Bulle B, Millon L, Bart JM, Gállego M, Gambarelli F, et al. (2002) Practical approach for typing strains of Leishmania infantum by microsatellite analysis. J Clin Microbiol 40: 3391–3397. doi: 10.1128/JCM.40.9.3391-3397.2002
[36]  Quispe Tintaya KW, Jing X, Dedet JP, Rijal S, De Bolle X, et al. (2004) Antigen Genes for Molecular Epidemiology of Leishmaniasis: Polymorphism of Cysteine Proteinase B and Surface Metalloprotease Glycoprotein 63 in the Leishmania donovani complex. J Infect Dis 189: 1035–1043. doi: 10.1086/382049
[37]  Chicharro C, Morales MA, Serra T, Ares M, Salas A, et al. (2002) Molecular epidemiolgy of Leishmania infantum on the island of Majorca: a comparison of phenotypic and genotypic tools. Trans R Soc Trop Med Hyg 96: Suppl. 1S1/93–S1/99.
[38]  Cortes S, Mauricio I, Almeida A, Cristov?o JM, Pratlong F, et al. (2006) Application of kDNA as a molecular marker to analyse Leishmania infantum diversity in Portugal. Parasitol Int 55: 277–283. doi: 10.1016/j.parint.2006.07.003
[39]  Sunnucks P (2000) Efficient genetic markers for population biology. Trends Ecol Evol 15: 199–203. doi: 10.1016/s0169-5347(00)01825-5
[40]  Schwenkenbecher JM, Wirth T, Schnur LF, Jaffe CL, Schallig H, et al. (2006) Microsatellite analysis reveals genetic structure of Leishmania tropica. Int J Parasitol 36: 237–246. doi: 10.1016/j.ijpara.2005.09.010
[41]  Kuhls K, Keilonat L, Ochsenreither S, Schaar M, Schweynoch C, et al. (2007) Multilocus microsatellite typing (MLMT) reveals genetically isolated populations between and within the main endemic regions of visceral leishmaniasis. Microb Infec 9: 334–343. doi: 10.1016/j.micinf.2006.12.009
[42]  Botilde Y, Laurent T, Quispe Tintaya W, Chicharro C, Ca?avate C, et al. (2006) Comparison of molecular markers for strain typing of Leishmania infantum. Inf Gen Evol 6: 440–446. doi: 10.1016/j.meegid.2006.02.003
[43]  Evans D, Godfrey D, Lanham S, Lanotte G, Modabber F, et al. (1989) Handbook on isolation, characterization and cryopreservation of Leishmania. In: Evans D, editor. Geneva: UNDP/WHO/TDR.
[44]  Tzinia AK, Soteriadou KP (1991) Substrate-dependent pH optima of gp63 purified from seven strains of Leishmania. Mol Biochem Parasitol 47: 83–89. doi: 10.1016/0166-6851(91)90150-5
[45]  Sch?nian G, Schweynoch C, Zlateva K, Oskam L, Kroon N, et al. (1996) Identification and determination of the relationships of species and strains within the genus Leishmania using single primers in the polymerase chain reaction. Mol Biochem Parasitol 77: 19–29. doi: 10.1016/0166-6851(96)02572-8
[46]  Ochsenreither S, Kuhls K, Schaar M, Presber W, Sch?nian G (2006) Multilocus microsatellite typing as a new tool for the discrimination of Leishmania infantum MON-1 strains. J Clin Microbiol 44: 495–503. doi: 10.1128/JCM.44.2.495-503.2006
[47]  Lewin S, Sch?nian G, El Tai N, Oskam L, Bastien P, et al. (2002) Strain typing in Leishmania donovani by using sequence-confirmed amplified region analysis (SCAR). Int J Parasitol 32: 1267–1276. doi: 10.1016/S0020-7519(02)00091-7
[48]  Pritchard JK, Stephens M, Donnelly P (2000) Inference of population structure using multilocus genotype data. Genetics 155: 945–959.
[49]  Evanno G, Regnaut S, Goudet J (2005) Detecting the number of clusters of individuals using the software STRUCTURE: a simulation study. Mol Ecol 14: 2611–2620. doi: 10.1111/j.1365-294X.2005.02553.x
[50]  Minch E, Ruiz-Linares A, Goldstein D, Feldman M, Cavalli-Sforza LL (1995) MICROSAT, The Microsatellite Distance Program (Stanford Univ. Press, Stanford, CA).
[51]  Bowcock AM, Ruiz-Linares A, Tomfohrde J, Minch EK, Kidd JR, et al. (1994) High resolution of human evolutionary trees with polymorphic microsatellites. Nature (London) 368: 455–457. doi: 10.1038/368455a0
[52]  Cavalli-Sforza LL, Edwards AW (1967) Phylogenetic analysis: models and estimation procedures. Am J Hum Gen 19: 233–257.
[53]  Swofford DL (2000) PAUP. Phylogenetic Analysis Using Parsimony (and Other Methods). Version 4.0b8. Sunderland, Massachusetts: Sinauer Associates.
[54]  Felsenstein J (1985) Confidence limits on phylogenies: An approach using bootstrap. Evolution 39: 783–791. doi: 10.2307/2408678
[55]  Dawson KJ, Belkhir K (2001) A Bayesian approach to the identification of panmictic populations and the assignment of individuals. Genet Res 78: 59–77. doi: 10.1017/S001667230100502X
[56]  Roussett F, Raymont M (1995) Testing heterozygote excess and deficieny. Genetics 140: 1413–1419.
[57]  Slatkin M (1985) Gene flow in natural populations. Ann Rev Ecol Syst 16: 393–430. doi: 10.1146/annurev.es.16.110185.002141
[58]  Weir BS, Cockerman CC (1984) Estimating F statistics for the analysis of population structure. Evolution 38: 1358–1370. doi: 10.2307/2408641
[59]  Dieringer D, Schl?tterer C (2002) Microsatellite analyser (MSA): a platform independent analysis tool for large microsatellite sets. Molec Ecol Notes 3(1): 167–169. doi: 10.1046/j.1471-8286.2003.00351.x
[60]  Premoli AC, Souto CP, Allnutt TR, Newton AC (2001) Effects of population disjunction on isozyme variation in the widespread Pilgerodendron uviferum. Heredity 87: 337–343. doi: 10.1046/j.1365-2540.2001.00906.x
[61]  Agapow GM, Burt A (2001) Indices of multilocus linkage disequilibrium. Mol Ecol Notes 1: 101–102. doi: 10.1046/j.1471-8278.2000.00014.x
[62]  Antoniou M, Doulgerakis C, Pratlong F, Dedet JP, Tselentis Y (2004) Short report: treatment failure due to mixed infection by different strains of the parasite Leishmania infantum. Am J Trop Med Hyg 71: 71–72.
[63]  Zemanová E, Jirk? M, Mauricio IL, Horák A, Miles M, et al. (2006) The Leishmania donovani complex: genotypes of the five metabolic enzymes (ICD, ME, MPI, G6PDH, and FH), new targets for multilocus sequence typing. Int J Parasitol 37: 149–160. doi: 10.1016/j.ijpara.2006.08.008
[64]  Mauricio I, Yeo M, Baghaei M, Doto D, Pratlong F, et al. (2006) Towards multilocus sequence typing in the Leishmania donovani complex: resolving genotypes and haplotypes for five polymorphic metabolic enzymes (ASAT, GPI, NH1, NH2, PGD). Int J Parasitol 36: 757–769. doi: 10.1016/j.ijpara.2006.03.006
[65]  Luke? J, Mauricio I, Sch?nian G, Dujardin JC, Soteriadou K, et al. (2007) Multifactorial genetic analysis of the Leishmania donovani complex reveals geographical and evolutionary history, and does not reflect the current taxonomy. Proc Natl Acad Sci USA 104: 9375–9380. doi: 10.1073/pnas.0703678104
[66]  Molina R, Gradoni L, Alvar J (2003) HIV and the transmission of Leishmania. Ann Trop Med Parasitol 97: Suppl. 129–45. doi: 10.1179/000349803225002516
[67]  Jiménez MI, Laguna F, de la Torre F, Solís F, Pratlong F, et al. (1995b) New Leishmania (Leishmania) infantum zymodemes responsible for visceral leishmaniasis in patients co-infected with HIV in Spain. Trans R Soc Trop Med Hyg 89: 33. doi: 10.1016/0035-9203(95)90646-0
[68]  Tibayrenc M, Kjellberg F, Ayala FJ (1990) A clonal theory of parasitic protozoa: The population structures of Entamoeba, Giardia, Leishmania, Naegleria, Plasmodium, Trichomonas, and Trypanosoma and their medical and taxonomical consequences. Proc Natl Acad Sci USA 87: 2414–2418. doi: 10.1073/pnas.87.7.2414
[69]  Tibayrenc M (1993a) Clonality in Leishmania. Parasitol Today 9: 58. doi: 10.1016/0169-4758(93)90036-F
[70]  Jiménez M, Alvar J, Tibayrenc M (1997) Leishmania infantum is clonal in AIDS patients too: epidemiological implications. AIDS 11: 569–573. doi: 10.1097/00002030-199705000-00003
[71]  Tibayrenc M, Ayala FJ (1991) Towards a population genetics of microorganisms: the clonal theory of parasitic protozoa. Parasitol Today 7: 228–232. doi: 10.1016/0169-4758(91)90234-F
[72]  Tibayrenc M, Ayala FJ (1999) Evolutionary genetics of Trypanosoma and Leishmania. Microbes Infec 1: 465–472. doi: 10.1016/S1286-4579(99)80050-1
[73]  Cruz AK, Titus R, Beverly SM (1993) Plasticity in chromosome number and testing of essential genes in Leishmania by targeting. Proc Natl Acad Sci 90: 1599–1603. doi: 10.1073/pnas.90.4.1599
[74]  Tibayrenc M (1993b) Entamoeba, Giardia and Toxoplasma: clones or cryptic species? Parasitol Today 9: 102–105. doi: 10.1016/0169-4758(93)90217-4
[75]  Belli AA, Miles MA, Kelly JM (1994) A putative Leishmania panamensis/Leishmania braziliensis hybrid is a causative agent of human cutaneous leishmaniasis in Nicaragua. Parasitology 109: 435–442. doi: 10.1017/S0031182000080689
[76]  Ba?uls AL, Guerrini F, Le Pont F, Barrera C, Espinel I, et al. (1997) Evidence for hybridization by Multilocus Enzyme Electrophoresis and Random Amplified Polymorphic DNA between Leishmania braziliensis and Leishmania panamensis/guyanensis in Ecuador. J Euk Microbiol 44: 408–411. doi: 10.1111/j.1550-7408.1997.tb05716.x
[77]  Russell R, Iribar MP, Lambson B, Brewster S, Blackwell JM, et al. (1999) Intra and inter-specific microsatellite variation in the Leishmania subgenus Viannia. Mol Biochem Parasitol 103: 71–77. doi: 10.1016/S0166-6851(99)00117-6
[78]  Nolder D, Roncal N, Davies CR, Llanos-Cuentas A, Miles MA (2007) Multiple hybrid genotypes of Leishmania (Viannia) in a focus of mucocutaneous Leishmaniasis. Am J Trop Med Hyg 76: 573–578.
[79]  Ravel C, Cortes S, Pratlong F, Morio F, Dedet JP, et al. (2006) First report of genetic hybrids between two very divergent Leishmania species: Leishmania infantum and Leishmania major. Int J Parasitol 36: 1383–1388. doi: 10.1016/j.ijpara.2006.06.019
[80]  Gramiccia M, Gradoni L, Troiani M (1995) Heterogeneity among zymodemes of Leishmania infantum from HIV-positive patients with visceral leishmaniasis in South Italy. FEMS Microbiol Letters 128: 33–38. doi: 10.1016/0378-1097(95)00079-k

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