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- Volume 31, Issue 27, 09/Jul/2026
Eurosurveillance - Volume 31, Issue 27, 09 July 2026
Volume 31, Issue 27, 2026
- Research
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Autochthonous transmission patterns of dengue virus serotype 2 in Italy: evidence from outbreaks in 2024
Carla Molina Grané , Martina Del Manso , Mattia Manica , Chiara Sacco , Francesco Menegale , Antonino Bella , Flavia Riccardo , Augusto Liverani , Alessia Pesaresi , Giovanna Mattei , Giulio Matteo , Adriano Murgano , Dalia Palmieri , Barbara Rita Porchia , Chiara Staderini , Dengue risk assessment working group , Patrizio Pezzotti , Stefano Merler and Piero PolettiMore LessBACKGROUNDIn 2024, multiple transmission foci of dengue virus serotype 2 (DENV-2) were detected across four Italian regions, resulting in the largest number of autochthonous cases ever recorded in mainland Europe.
AIMWe aimed to characterise DENV-2 transmission patterns in Italy in 2024.
METHODSWe analysed 296 locally acquired cases with symptom onset between 31 July and 31 October. Using detailed spatiotemporal data, we reconstructed transmission chains between cases with well-documented exposure sites, applying a Bayesian framework. We estimated the generation time and net reproduction number (Rt) for the main transmission foci, quantified the proportion of transmission occurred across varying distances and assessed the influence of different factors, including temperature and control interventions, on secondary transmission.
RESULTSThree major foci were identified, with peak Rt estimates ranging from 1.35 to 3.33. The mean generation time was 18.0 days (95% credible interval (CrI): 15.5–20.0 days). Household transmission accounted for 15.4% (95% CrI: 12.6–17.4%) of infection events. Among cases with an identified source of infection, < 1% of transmissions occurred beyond 400 m. Transmissibility declined significantly after outbreak detection, with the average number of secondary cases per infection dropping from 1.4 to 0.4. Vector control interventions were associated with a 41.0% reduction (95% CI: 6.6–63.3%) in transmission; transmission also increased by 19.8% (95% CI: 11.3–29.0%) for each 1°C rise in temperature.
CONCLUSIONAutochthonous dengue outbreaks in Italy in 2024 were primarily driven by short-distance transmission. Our findings support that early case detection and rapid vector control are instrumental in reducing transmission.
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- Perspective
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Perspective on human diagnostic and national reference laboratory preparedness for zoonotic influenza in Europe
More LessZoonotic influenza A viruses (zIAV) originating from avian and swine reservoirs present a serious concern for public health. Since the emergence of zIAV A(H5N1) in 1996, the virus has spread globally, impacting wild birds, poultry, wild and domestic mammals, including cattle and pigs, and sporadically infecting humans. Challenges persist in detecting and characterising zIAV, particularly at the human–animal interface. Recent external quality assessments conducted in the Netherlands and at European level have evaluated the capacity of human clinical diagnostic and national reference laboratories to detect, subtype and characterise potential zIAV. Based on these results, we reflect on the status and challenges of methods used for identifying cases of zIAV infection in Europe. While all laboratories are largely successful in generic detection of influenza A virus, subtyping is not widely used in clinical diagnostic laboratories. For national reference laboratories, subtyping specifically of swine-origin viruses remains challenging, often requiring sequencing for accurate identification. Although sequencing offers greater potential for characterising zIAV, training in the appropriate use of bioinformatics tools is needed. Raising awareness among healthcare professionals to document animal exposure in patient disease histories is also critical, as early suspicion of zoonotic infections is needed to direct laboratory testing, including subtyping.
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- Addendum
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Volumes & issues
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Volume 31 (2026)
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Volume 30 (2025)
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Volume 29 (2024)
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Volume 28 (2023)
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Volume 27 (2022)
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Volume 26 (2021)
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Volume 25 (2020)
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Volume 24 (2019)
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Volume 23 (2018)
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Volume 22 (2017)
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Volume 21 (2016)
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Volume 20 (2015)
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Volume 19 (2014)
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Volume 18 (2013)
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Volume 17 (2012)
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Volume 16 (2011)
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Volume 15 (2010)
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Volume 14 (2009)
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Volume 13 (2008)
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Volume 12 (2007)
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Volume 11 (2006)
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Volume 10 (2005)
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Volume 9 (2004)
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Volume 8 (2003)
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Volume 7 (2002)
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Volume 6 (2001)
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Volume 5 (2000)
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Volume 4 (1999)
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Volume 3 (1998)
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Volume 2 (1997)
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Volume 1 (1996)
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Volume 0 (1995)
Most Read This Month
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Detection of 2019 novel coronavirus (2019-nCoV) by real-time RT-PCR
Victor M Corman , Olfert Landt , Marco Kaiser , Richard Molenkamp , Adam Meijer , Daniel KW Chu , Tobias Bleicker , Sebastian Brünink , Julia Schneider , Marie Luisa Schmidt , Daphne GJC Mulders , Bart L Haagmans , Bas van der Veer , Sharon van den Brink , Lisa Wijsman , Gabriel Goderski , Jean-Louis Romette , Joanna Ellis , Maria Zambon , Malik Peiris , Herman Goossens , Chantal Reusken , Marion PG Koopmans and Christian Drosten
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