Effects of latent toxoplasmosis on autoimmune thyroid diseases in pregnancy
Jazyk angličtina Země Spojené státy americké Médium electronic-ecollection
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
25350671
PubMed Central
PMC4211690
DOI
10.1371/journal.pone.0110878
PII: PONE-D-14-26869
Knihovny.cz E-zdroje
- MeSH
- autoimunitní nemoci epidemiologie etiologie MeSH
- autoprotilátky krev imunologie MeSH
- dospělí MeSH
- hormony štítné žlázy krev MeSH
- imunoglobulin G krev imunologie MeSH
- komplikace těhotenství epidemiologie etiologie MeSH
- lidé středního věku MeSH
- lidé MeSH
- mladiství MeSH
- mladý dospělý MeSH
- nemoci štítné žlázy epidemiologie etiologie MeSH
- protilátky protozoální krev imunologie MeSH
- průřezové studie MeSH
- rizikové faktory MeSH
- těhotenství MeSH
- toxoplazmóza komplikace diagnóza MeSH
- výsledek těhotenství MeSH
- Check Tag
- dospělí MeSH
- lidé středního věku MeSH
- lidé MeSH
- mladiství MeSH
- mladý dospělý MeSH
- těhotenství MeSH
- ženské pohlaví MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Geografické názvy
- Česká republika epidemiologie MeSH
- Názvy látek
- autoprotilátky MeSH
- hormony štítné žlázy MeSH
- imunoglobulin G MeSH
- protilátky protozoální MeSH
BACKGROUND: Toxoplasmosis, one of the most common zoonotic diseases worldwide, can induce various hormonal and behavioural alterations in infected hosts, and its most common form, latent toxoplasmosis, influences the course of pregnancy. Autoimmune thyroid diseases (AITD) belong to the well-defined risk factors for adverse pregnancy outcomes. The aim of this study was to investigate whether there is a link between latent toxoplasmosis and maternal AITD in pregnancy. METHODS: Cross-sectional study in 1248 consecutive pregnant women in the 9-12th gestational weeks. Serum thyroid-stimulating hormone (TSH), thyroperoxidase antibodies (TPOAb), and free thyroxine (FT4) were assessed by chemiluminescence; the Toxoplasma status was detected by the complement fixation test (CFT) and anti-Toxoplasma IgG enzyme-linked immunosorbent assay (ELISA). RESULTS: Overall, 22.5% of the women were positive for latent toxoplasmosis and 14.7% were screened positive for AITD. Women with latent toxoplasmosis had more often highly elevated TPOAb than the Toxoplasma-negative ones (p = 0.004), and latent toxoplasmosis was associated with decrease in serum TSH levels (p = 0.049). Moreover, we found a positive correlation between FT4 and the index of positivity for anti-Toxoplasma IgG antibodies (p = 0.033), which was even stronger in the TPOAb-positive Toxoplasma-positive women, (p = 0.014), as well as a positive correlation between FT4 and log2 CFT (p = 0.009). CONCLUSIONS: Latent toxoplasmosis was associated with a mild increase in thyroid hormone production in pregnancy. The observed Toxoplasma-associated changes in the parameters of AITD are mild and do not seem to be clinically relevant; however, they could provide new clues to the complex pathogenesis of autoimmune thyroid diseases.
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Stagnaro-Green A, Abalovich M, Alexander E, Azizi F, Mestman J, et al. (2011) Guidelines of the American Thyroid Association for the diagnosis and management of thyroid disease during pregnancy and postpartum. Thyroid 21: 1081–1125. PubMed PMC
Springer D, Zima T, Limanova Z (2009) Reference intervals in evaluation of maternal thyroid function during the first trimester of pregnancy. Eur J Endocrinol 160: 791–797. PubMed
Potlukova E, Potluka O, Jiskra J, Limanova Z, Telicka Z, et al. (2012) Is age a risk factor for autoimmune thyroid disorders in pregnancy? An analysis of 5223 pregnant women. J Clin Endocrinol Metab 97(6): 1945–1952. PubMed
Limanova Z, Springer D (2011) Thyreopathy examination during pregnancy–results of pilot project. Časop Lék Česk 150: 389–393. PubMed
Morohoshi K, Takahashi Y, Mori K (2011) Viral infection and innate pattern recognition receptors in induction of Hashimoto's thyroiditis. Discov Medic 12: 505–511. PubMed
Bach JF (2005) Infections and autoimmune diseases. J Autoimmun 25: 74–80. PubMed
Benvenga S, Guarneri F, Vaccaro M, Santarpia L, Trimarchi F (2004) Homologies between proteins of Borrelia burgdorferi and thyroid autoantigens. Thyroid 14: 964–966. PubMed
Benvenga S, Santarpia L, Trimarchi F, Guarneri F (2006) Human thyroid autoantigens and proteins of Yersinia and Borrelia share amino acid sequence homology that includes binding motifs to HLA-DR molecules and T-cell receptor. Thyroid 16: 225–236. PubMed
Shapira Y, Agmon-Levin N, Selmi C, Petrikova J, Barzilai O, et al. (2012) Prevalence of anti-toxoplasma antibodies in patients with autoimmune diseases. J Autoimmun 39: 112–116. PubMed
Wasserman EE, Nelson K, Rose NR, Rhode C, Pillion JP, et al. (2009) Infection and thyroid autoimmunity: A seroepidemiologic study of TPOaAb. Autoimmunity 42: 439–446. PubMed
Groer MW, Yolken RH, Xiao JC, Beckstead JW, Fuchs D, et al. (2011) Prenatal depression and anxiety in Toxoplasma gondii-positive women. Am J Obstet Gynecol 204 433: e1–433e7. PubMed PMC
Tenter AM, Heckeroth AR, Weiss LM (2000) Toxoplasma gondii: from animals to humans. Int J Parasitol 30: 1217–1258. PubMed PMC
Flegr J, Zítková S, Kodym P, Frynta D (1996) Induction of changes in human behaviour by the parasitic protozoan Toxoplasma gondii . Parasitology 133: 49–54. PubMed
Lindová J, Novotná M, Havlíček J, Jozífková E, Skallová A, et al. (2006) Gender differences in behavioural changes induced by latent toxoplasmosis. Int J Parasitol 36: 1485–1492. PubMed
Flegr J (2013) Influence of latent Toxoplasma infection on the human personality, physiology, and morphology: The Toxoplasma-human model in studying the manipulation hypothesis - pros and cons. J Exp Biol 216: 127–133. PubMed
Flegr J, Prandota J, Sovičková M, Israili ZH (2014) Toxoplasmosis – A global threat. Correlation between latent toxoplasmosis and specific disease burden – a WHO data-based study of 29 European and 59 non-European countries. PLoS ONE 9(3): e90203 10.1371/journal.pone.0090203 PubMed DOI PMC
Wolf A, Cowen D, Paige BH (1939) Toxoplasmic encephalomyelititis. III. A new case of granulomatoces encephalomyelititis due to a protozoon. Am J Pathol 15: 657. PubMed PMC
Flegr J, Lindová J, Kodym P (2008) Sex-dependent toxoplasmosis-associated differences in testosterone concentration in humans. Parasitology 135: 427–431. PubMed
Kaňková Š, Kodym P, Flegr J (2011) Direct evidence of Toxoplasma-induced changes in serum testosterone in mice. Exp Parasitol 128: 181–183. PubMed
Stahl W, Kaneda Y (1998) Impaired thyroid function in murine toxoplasmosis. Parasitology 117(Pt 3): 217–222. PubMed
Stahl W, Kaneda Y (1998) Aetiology of thyroidal dysfunction in murine toxoplasmosis. Parasitology 117(Pt 3): 223–227. PubMed
Flegr J, Hampl R, Bičíková M, Ripova D, Mohr P (2014) Difference of neuro- and immunomodulatory steroids and selected hormone and lipid concentrations between Toxoplasma-free and Toxoplasma-infected schizophrenia patients. Neuroendocrinol Lett 35: 20–27. PubMed
Kankova S, Holan V, Zajicova A, Kodym P, Flegr J (2010) Modulation of immunity in mice with latent toxoplasmosis–the experimental support for the immunosuppression hypothesis of Toxoplasma-induced changes in reproduction of mice and humans. Parasitol res 107: 1421–1427. PubMed
Flegr J, Stříž I (2011) Potential immunomodulatory effects of latent toxoplasmosis in humans. BMC Infect Dis 11: 274. PubMed PMC
CDC. Toxoplasmosis: epidemiology & risk factors. 2013. Available: http://www.cdc.gov/toxoplasmosis/epi.html. Accessed 2014 October 2.
Kolbeková P, Kourbatova E, Novotná M, Kodym P, Flegr J (2007) New and old risk-factors for Toxoplasma gondii infection: prospective cross-sectional study among military personnel in the Czech Republic. Clin Microb Inf 13: 1012–1017. PubMed
Tozzoli R, Barzilai O, Ram M, Villalta D, Bizzaro N, et al. (2008) Infections and autoimmune thyroid diseases: Parallel detection of antibodies against pathogens with proteomic technology. Autoimmun Rev 8: 112–115. PubMed
Kodym P, Machala L, Roháčová H, Širocká B, Malý M (2007) Evaluation of a commercial IgE ELISA in comparison with IgA and IgM ELISAs, IgG avidity assay and complement fixation for the diagnosis of acute toxoplasmosis. Clin Microb Inf 13: 40–47. PubMed
Shapira Y, Poratkatz B, Gilburd B, Barzilai O, Ram M, et al. (2012) Geographical differences in autoantibodies and antiinfectious agents antibodies among healthy adults. Clin Rev Allergy Immunol 42: 154–63. PubMed
Glinoer D, de Nayer P, Bourdoux P, Lemone M, Robyn C, et al. (1990) Regulation of maternal thyroid during pregnancy. J Clin Endocrinol Metab 71: 276–287. PubMed
Challis JR, Lockwood CJ, Myat L, Norman JE, Strauss JF 3rd, et al. (2009) Inflammation and pregnancy. Reprod Sci 16(2): 206–215 10.1177/1933719108329095 PubMed DOI
Denkers EY, Gazzinelli RT (1998) Regulation and fuction of T-cell-mediated imunity during Toxoplasma gondii infection. Clin Microbiol Rev 11(4): 569–588. PubMed PMC
Gazzinelli RT, Denkers EY, Sher A (1993) Host resistance to Toxoplasma gondii: model for studying the selective induction of cell-mediated immunity by intracellular parasites. Infect Agents Dis 2: 139–149. PubMed
Solerte SB, Precerutti S, Gazzaruso C, Locatelli E, Zamboni M, et al. (2005) Defect of a subpopulation of natural killer immune cells in Graves’ disease and Hashimoto’s thyroiditis: normalizing effect of dehydroepiandrosterone sulfate. Eur J Endocrinol 152: 703–712. PubMed
Ronet C, Darche S, Leite de Moraes M, Miyake S, Yamamura T, et al. (2005) NKT cells are critical for the initiation of an inflammatory bowel response against Toxoplasma gondii . J Immunol 175(2): 899–908. PubMed
Elbez-Rubinstein A, Ajzenberg D, Dardé ML, Cohen R, Dumètre A, at al (2009) Congenital toxoplasmosis and reinfection during pregnancy: case report, strain characterization, experimental model of reinfection, and review. J Infect Dis 199(2): 280–285 10.1086/595793 PubMed DOI
Nelson JL (2012) The otherness of self: microchimerism in health and disease. Trends Immunol 33: 421–427 10.1016/j.it.2012.03.002 PubMed DOI PMC
Fugazzola L, Cirello V, Beck-Peccoz P (2012) Microchimerism and endocrine disorders. J Clin Endocrinol Metab 97: 1452–1461. PubMed
Prandota J (2012). Increased generation of antibodies and autoantibodies directed against brain proteins in patients with autism and their families may be caused by T. gondii infection. Maternal and fetal microchimerisms probably play an important role in these processes acting as a “Trojan horse” in dissemination of the parasite. In: Gemma C, editor. Neuroinflammation Pathogenesis, Mechanisms and Management. New York: Nova Science Publishers. 447–638.
Fuks JM, Arrighi RB, Weidner JM, Kumar Mendu S, Jin Z, et al. (2012) GABAergic signaling is linked to a hypermigratory phenotype in dendritic cells infected by Toxoplasma gondii . PLoS Pathog 8: e1003051. PubMed PMC