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Experimental infection of T4 Acanthamoeba genotype determines the pathogenic potential

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Abstract

T4 is the Acanthamoeba genotype most related to cases of granulomatous amoebic encephalitis (GAE) in immunocompromised patients and of keratitis in contact lens wearers. The determination of the pathogenic potential of Acanthamoeba clinical and environmental isolates using experimental models is extremely important to elucidate the capacity of free-living organisms to establish and cause disease in hosts. The aim of this study was to compare and evaluate the histopathology and culture between two different routes of experimental infection of T4 Acanthamoeba isolated from environmental and clinical source in mice (intracranial and intraperitoneal). Swiss isogenic healthy mice were inoculated with 104 trophozoites by intracranial (IC) and intraperitoneal (IP) routes and observed during 21 days. The brains from animals inoculated by the IC route were collected and from the animals of the IP inoculation group, the brains, livers, kidneys, spleens, and lungs were removed. The organs were prepared and appropriately divided to be evaluated with histopathology and culture. There was no significant difference between the inoculation routes in terms of isolates recovery (χ2 = 0.09; p = 0.76). In the IC group, isolate recovery rate was significantly higher in histopathology than the one achieved by culture (χ2 = 6.45; p < 0.01). Experimental infection revealed that all isolates inoculated could be considered invasive because it was possible to recover evolutive forms of Acanthamoeba in both routes. This work represents the first in vivo pathogenicity assay of primary isolation source in Central region of Brazil showing in vivo pathogenicity and hematogenous spread capacity of these protozoa, improving the knowledge on free-living amoebae isolates.

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References

  • Alves DS, Moraes AS, Nitz N, de Oliveira MG, Hecht MM, Gurgel-Gonçalves R et al (2012) Occurrence and characterization of Acanthamoeba similar to genotypes T4, T5, and T2/T6 isolated from environmental sources in Brasília, Federal District, Brazil. Exp Parasitol 131:239–44

    Article  CAS  Google Scholar 

  • Alves DSMM, Gurgel-Gonçalves R, Albuquerque P, Cuba-Cuba CA, Muniz-Junqueira MI, Kuckelhaus SAS (2015) A method for microbial decontamination of Acanthamoeba cultures using the peritoneal cavity of mice. Asian Pac J Trop Biomed 5(10):796–800

    Article  Google Scholar 

  • Baig AM (2015) Pathogenesis of amoebic encephalitis: are the amoebae being credited to an “inside job” done by the host immune response? Acta Trop 148:72–6

    Article  PubMed  Google Scholar 

  • Cerva L (1971) Experimental infection of laboratory animals by the pathogenic Naegleria gruberi strain Vítek. Folia Parasitol 18(2):171–6

    CAS  PubMed  Google Scholar 

  • Clarke DW, Niederkorn JY (2006) The pathophysiology of Acanthamoeba keratitis. Trends Parasitol 22(4):175–80

    Article  CAS  PubMed  Google Scholar 

  • Culbertson CG, Smith JW, Cohen HK, Minner JR (1959) Experimental infection of mice and monkeys by Acanthamoeba. Am J Pathol 35(1):185–97

    CAS  PubMed  PubMed Central  Google Scholar 

  • De Jonckheere JF (1980) Growth characteristics, cytopathic effect in cell culture, and virulence in mice of 36 type strains belonging to 19 different Acanthamoeba spp. Appl Environ Microbiol 39(4):681–5

    PubMed  PubMed Central  Google Scholar 

  • Ertabaklar H, Türk M, Dayanir V, Ertug S, Walochnik J (2007) Acanthamoeba keratitis due to Acanthamoeba genotype T4 in a non-contact lens wearer in Turkey. Parasitol Res 100:241–6

    Article  PubMed  Google Scholar 

  • Feng X, Zheng W, Wang Y, Zhao D, Jiang X, Lv S (2015) A rabbit model of Acanthamoeba keratitis that better reflects the natural human infection. Anat Rec (Hoboken) 298(8):1509–17

    Article  Google Scholar 

  • Geisen S, Fiore-Donno AM, Walochnik J, Bonkowski M (2014) Acanthamoeba everywhere: high diversity of Acanthamoeba in soils. Parasitol Res 113:3151–8. doi:10.1007/s00436-014-3976-8

    Article  PubMed  Google Scholar 

  • Gianinazzi C, Schild M, Wüthrich F, Müller N, Schürch N, Gottstein B (2009) Potentially human pathogenic Acanthamoeba isolated from a heated indoor swimming pool in Switzerland. Exp Parasitol 121(2):180–6

    Article  CAS  PubMed  Google Scholar 

  • Gianinazzi C, Schild M, Zumkehr B, Wüthrich F, Nüesch I, Ryter R, Schürch N, Gottstein B, Müller N (2010) Screening of Swiss hot spring resorts for potentially pathogenic free-living amoebae. Exp Parasitol 126(1):45–53

    Article  PubMed  Google Scholar 

  • Im KI, Shin HJ, Seo DW, Jeon SH, Kim TE (1999) Pathogenicity of Korean isolates of Acanthamoeba by observing the experimental infection and zymodemes of five isoenzymes. Kor J Parasitol 37(2):85–92

    Article  CAS  Google Scholar 

  • Khan NA (2006) Acanthamoeba: biology and increasing importance in human health. FEMS Microbiol Rev 30:564–595

    Article  PubMed  Google Scholar 

  • Khan NA, Jarroll EL, Paget TA (2001) Acanthamoeba can be differentiated by the polymerase chain reaction and simple plating assays. Curr Microbiol 43(3):204–8

    Article  CAS  PubMed  Google Scholar 

  • Khan NA, Tareen NK (2003) Genotypic, phenotypic, biochemical, physiological and pathogenicity-based categorisation of Acanthamoeba strains. Folia Parasitol 50(2):97–104

    Article  CAS  PubMed  Google Scholar 

  • Koltas IS, Eroglu F, Erdem E, Yagmur M, Tanir F (2015) The role of domestic tap water on Acanthamoeba keratiris in non-contact lens wearers and validation of laboratory methods. Parasitol Res 114(9):3283–9

    Article  PubMed  Google Scholar 

  • Martinez AJ, Visvesvara GS (1997) Free-living, amphizoic and opportunistic amebas. Brain Pathol 7(1):583–98

    Article  CAS  PubMed  Google Scholar 

  • Massilamany C, Marciano-Cabral F, Bd R-A, Jamerson M, Gangaplara A et al (2014) SJL mice infected with Acanthamoeba castellanii develop central nervous system autoimmunity through the generation of cross-reactive t cells for myelin antigens. PLoS ONE 9(5):e98506. doi:10.1371/journal.pone.0098506

    Article  PubMed  PubMed Central  Google Scholar 

  • Mirjalali H, Niyyati M, Abedkhojasteh H, Babaei Z, Sharifdini M, Rezaeian M (2013) Pathogenic assays of Acanthamoeba belonging to the t4 genotype. Iran J Parasitol 8(4):530–5

    PubMed  PubMed Central  Google Scholar 

  • Mortazavi PN, Goldsworthy G, Kirk R, Khan NA (2010) Acanthamoeba produces disseminated infection in locusts and traverses the locust blood-brain barrier to invade the central nervous system. BMC Microbiol 8(10):186. doi:10.1186/1471-2180-10-186

    Article  Google Scholar 

  • Ramirez E, Campoy E, Matuz D, Robles E (2006) Acanthamoeba isolated from contamined groundwater. J Eukaryot Microbiol 53(1):10–1

    Article  Google Scholar 

  • Reyes-Batlle M, Zamora-Herrera J, Vargas-Mesa A, Valerón-Tejera MA, Wagner C, Martín-Navarro CM, López-Arenciba A, Sifaoui I, Martínez-Carretero E, Valladares B, Piñero JE, Lorenzo-Morales J (2016) Acanthamoeba genotypes T2, T4 and T11 in soil sources form El Hierro island, Canary Islands, Spain. Parasitol Res. doi:10.1007/s00436-016-5048-8

    PubMed  Google Scholar 

  • Rivera F, Ramírez E, Bonilla P, Calderón A, Gallegos E, Rodríguez S, Ortiz R, Zaldívar B, Ramírez P, Durán A (1993) Pathogenic and free-living amoebae isolated from swimming pools and physiotherapy tubs in Mexico. Environ Res 62(1):43–52

    Article  CAS  PubMed  Google Scholar 

  • Siddiqui R, Emes R, Elsheikha H, Khan NA (2011) Area 51: how do Acanthamoeba invade the central nervous system? Trends Parasitol 27(5):185–9

    Article  PubMed  Google Scholar 

  • Siddiqui R, Khan N (2012) Biology and pathogenesis of Acanthamoeba. Parasites Vectors 5(6):1–13

    Google Scholar 

  • Tawfeek GM, Bishara SAH, Sarhan RM, Taher EE, Khayyal AE (2016) Genotypic, physiological, and biochemical characterization of potentially pathogenic Acanthamoeba isolated from the environment in Cairo, Egypt. Parasitol Res. doi:10.1007/s00436-016-4927-3

    PubMed  Google Scholar 

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Acknowledgment

The authors would like to thank CNPQ for the financial support, grant number PPSUS/2004 193.000.036/2005 to Dr. César Augusto Cuba-Cuba.

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Correspondence to Daniella de Sousa Mendes Moreira Alves.

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This experiment was approved by the Ethics Committee of Animal Use (CEUA), located at the Institute of Biological Sciences (University of Brasília—UnB), protocol number UnBDOC 43036/2010.

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Alves, D.d.S.M.M., Moraes, A.S., Alves, L.M. et al. Experimental infection of T4 Acanthamoeba genotype determines the pathogenic potential. Parasitol Res 115, 3435–3440 (2016). https://doi.org/10.1007/s00436-016-5105-3

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