Epidemiology of tick-borne encephalitis in the Czech Republic 1970-2008
Jazyk angličtina Země Spojené státy americké Médium print-electronic
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
23025693
PubMed Central
PMC3491623
DOI
10.1089/vbz.2011.0900
Knihovny.cz E-zdroje
- MeSH
- arachnida jako vektory virologie MeSH
- dítě MeSH
- dospělí MeSH
- incidence MeSH
- klíšťata virologie MeSH
- klíšťová encefalitida epidemiologie mortalita virologie MeSH
- kojenec MeSH
- lidé středního věku MeSH
- lidé MeSH
- mladiství MeSH
- mladý dospělý MeSH
- nadmořská výška MeSH
- podnebí MeSH
- předškolní dítě MeSH
- roční období MeSH
- senioři nad 80 let MeSH
- senioři MeSH
- sexuální faktory MeSH
- věkové faktory MeSH
- viry klíšťové encefalitidy fyziologie MeSH
- zvířata MeSH
- Check Tag
- dítě MeSH
- dospělí MeSH
- kojenec MeSH
- lidé středního věku MeSH
- lidé MeSH
- mladiství MeSH
- mladý dospělý MeSH
- mužské pohlaví MeSH
- předškolní dítě MeSH
- senioři nad 80 let MeSH
- senioři MeSH
- ženské pohlaví MeSH
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Geografické názvy
- Česká republika epidemiologie MeSH
This article presents major epidemiologic features of tick-borne encephalitis (TBE) in the Czech Republic, using data of laboratory-confirmed cases since 1970. A total of 17,053 cases of TBE were reported in the Czech Republic (population 10 million) in 1970-2008. The data show several important features. First, the pattern of TBE incidence changed over time. Until the end of the 1970s, TBE was characterized by periods of alternately higher and lower incidence (between 180 and 595 cases per year); the 1980s were a period of low incidence with minimum variability; since the beginning of the 1990 s, there has been a steep rise in incidence, with marked year-to-year variation (e.g., 745 cases were registered in 1995, and a maximum of 1029 cases were registered in 2006). Second, the age distribution of TBE incidence has changed. Until the end of 1990 s, incidence peaked among those 15-19 years of age, with a gradual decline with age. In the 2000s, however, TBE incidence has been rising in those aged 60-64 years, with a sharp decline in those older than 65 years. Third, the seasonal pattern of TBE has changed markedly over time. In the earlier period, incidence had a clear peak in July/August; since the 1990 s, more cases have occurred in earlier and later months of the year. The proportion of cases occurring in April, May, October, and November increased from 9% in the 1970s to 23% in 2000-2008. Fourth, the geographical distribution of TBE also changed over time, with TBE increasingly occurring in the mountainous districts at higher altitudes. These changes in incidence patterns appear to be linked with changes in climatic and meteorological conditions. The link between climate change and TBE incidence is plausible, since TBE is a recreation-related infection associated with outdoor activities, and since climatic changes affect the life cycle of the vector.
Zobrazit více v PubMed
Daniel M. Danielová V. Kříž B, et al. Tick- borne encephalitis. In: Menne B, editor; Ebi KL, editor. Climate Change and Adaptation Strategies for Human Health. Darmstadt: Springer; 2006a. pp. 189–205.
Daniel M. Danielová V. Kříž B, et al. An attempt to elucidate the increased incidence of tick-borne encephalitis and spread to higher altitudes in the Czech Republic. Int J Med Microbiol. 2004;293(Suppl 37):55–62. PubMed
Daniel M. Kříž B. Danielová V, et al. Sudden increase in tick-borne encephalitis cases in the Czech Republic 2006. Int J Med Microbiol. 2008;298:81–87.
Daniel M. Kříž B. Danielová V, et al. Correlation between meteorological factors and tick-borne encephalitis incidence in the Czech Republic. Parasitol Res. 2008a;103(Suppl 1):S97–S107. PubMed
Daniel M. Kříž B. Tick-borne encephalitis in the Czech Republic. I. Predictive maps of Ixodes ricinus tick high occurrence habitats and tick-borne encephalitis risk assessment in Czech regions. In: Daniel M, editor; Kolář J, editor; Beneš Č, et al., editors; Pejčoch M, editor; Beneš Č, editor; Vymazal J, editor. Project Climate Change and Adaptation Strategies for Human Health in Europe, EVK2-2000-00670. National Institute of Public Health; Praha: 2002. II. Maps of tick-borne encephalitis incidence in the CR.
Daniel M. Kříž B. Valter J, et al. The influence of meteorological conditions of the preceding winter on the incidence of tick-borne encephalitis a L. borreliosis in the Czech Republic. Int J Med Microbiol. 2008b;298:60–67.
Daniel M. Vrábík J. Valter J, et al. Prediction of Ixodes ricinus host-seeking activity using TICKPRO computer program and warning system published on websites in the Czech Republic. Centr Eur J Publ Health. 2010;18:230–236. PubMed
Daniel M. Zitek K. Danielová V, et al. Risk assessment and prediction of Ixodes ricinus tick questing activity and human tick-borne encephalitis infection in space and time in the Czech Republic. Int J Med Microbiol. 2006b;296:41–47. PubMed
Danielová V. Beneš Č. Recent situation in tick-borne encephalitis in the Czech Republic. In: Süss J, editor; Kahl O, editor. 4th International Potsdam Symposium on Tick-Borne Diseases: Tick-borne encephalitis and Lyme borreliosis, 21.-22. 2. 1997. Pabst Science Publishers; Lengerich: 1997. pp. 47–56.
Danielová V. Klingrová S. Daniel M, et al. Influence of climate warming on tick-borne encephalitis expansion to higher altitudes during the last decade (1997–2006), Region Highland (Czech Republic) Centr Eur J Publ Health. 2008b;16:4–11. PubMed
Danielová V. Kříž B. Daniel M, et al. Effects of climate change on the incidence of tick-borne encephalitis in the Czech Republic in the past two decades. Epidemiol Mikrobiol Imunol. 2004;53:174–181. (in Czech with English summary). PubMed
Danielová V. Schwarzová L. Materna J, et al. Tick-borne encephalitis virus expansion to higher altitudes correlated with climate warming. Int J Med Microbiol. 2008a;298:68–72.
Donoso Mantke O. Schädler R. Niedrig M. A survey on cases of tick-borne encephalitis in European countries. Eurosurveillance. 2008;13:24. PubMed
GFK Gruppe. Czech Republic: TBE Vacc Rate Study; 2008. Vaccination rate—household members.
Gilbert L. Altitudinal patterns of tick and host abundance: a potential role for climate change in regulating tick-borne diseases? Oecologia. 2010;162:217–225. PubMed
Gray JS. Dautel H. Estrada-Peña A, et al. Effects of climate change on ticks and tick-borne diseases in Europe. Interdiscip Perspect Infect Dis. 2009;2009:593232. PubMed PMC
Hartelt K. Pluta S. Oehme R, et al. Spread of ticks and tick-borne diseases in Germany due to global warming. Parasitol Res. 2008;103(Suppl 1):S109–S116. PubMed
Holzmann H. Heinz XH. Tick-borne encephalitis outbreak owing to consumption of fresh cheese from unpasteurized goat milk. Virusepidemiologische Information, Medizinische Universität Wien. 2008;17(8):2–4.
Kaiser R. The clinical and epidemiological profile of tick-borne encephalitis in southern Germany 1994–98: a prospective study of 656 patients. Brain. 1999;122:2067–2078. PubMed
Kunze U. Tick-borne encephalitis: from epidemiology to vaccination recommendations in 2007. New issues—best practices. Wien Med Wochenschr. 2007;157:228–232. PubMed
Kříž B. Beneš Č. Danielová V, et al. Socio-economic conditions and other anthropogenic factors influencing tick-borne encephalitis incidence in the Czech Republic. Int J Med Microbiol. 2004;293(Suppl 37):63–68. PubMed
Logar M. Bogovic P. Cerar D, et al. Tick-borne encephalitis in Slovenia from 2000 to 2004: comparison of the course in adult and elderly patients. Wien Klin Wochenschr. 2006;118:702–707. PubMed
Materna J. Daniel M. Danielová V. Altitudinal distribution limit of the tick Ixodes ricinus shifted considerably towards higher altitudes in Central Europe: results of the three years monitoring in the Krkonoše Mts. (Czech Republic) Centr Eur J Publ Health. 2005;13:24–28. PubMed
Materna J. Daniel M. Metelka L, et al. The vertical distribution, density and the development of the tick Ixodes ricinus in mountain areas influenced by climate changes (The Krkonoše Mts., Czech Republic) Int J Med Microbiol. 2008;298:25–37.
Randolph SE. Asokliene L. Avsic-Zupanc T, et al. Variable spikes in tick-borne encephalitis incidence in 2006 independent of variable tick abundance but related to weather. Parasit Vectors. 2008;1:44. PubMed PMC
Schwaiger K. Bauer J. Epidemiology of emerging and resurging vector-borne diseases with special attention to climate change in Germany (Review) Berl Munch Tierarztl Wochenschr. 2009;122:141–160. PubMed
Sumilo D. Bormane A. Asokliene L, et al. Socio-economic factors in the differential upsurge of tick-borne encephalitis in Central and Eastern Europe. Rev Med Virol. 2008;18:81–95. PubMed
Süss J. Schräder C. Falk U, et al. Tick-borne encephalitis (TBE) in Germany—epidemiological data, development of risk areas and virus prevalence in field-collected ticks and in ticks removed from humans. Int J Med Microbiol. 2004;(Suppl 37):69–79. PubMed
Süss J. Tick-borne encephalitis in Europe and beyond—the epidemiological situation as of 2007. Eurosurveillance. 2008;13:26. PubMed
Genetic polymorphisms in innate immunity genes influence predisposition to tick-borne encephalitis
History of Arbovirus Research in the Czech Republic
Increased Relative Risk of Tick-Borne Encephalitis in Warmer Weather