Cargando…

Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility

BACKGROUND: On 11 June the World Health Organization officially raised the phase of pandemic alert (with regard to the new H1N1 influenza strain) to level 6. As of 19 July, 137,232 cases of the H1N1 influenza strain have been officially confirmed in 142 different countries, and the pandemic unfoldin...

Descripción completa

Detalles Bibliográficos
Autores principales: Balcan, Duygu, Hu, Hao, Goncalves, Bruno, Bajardi, Paolo, Poletto, Chiara, Ramasco, Jose J, Paolotti, Daniela, Perra, Nicola, Tizzoni, Michele, Broeck, Wouter Van den, Colizza, Vittoria, Vespignani, Alessandro
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2755471/
https://www.ncbi.nlm.nih.gov/pubmed/19744314
http://dx.doi.org/10.1186/1741-7015-7-45
_version_ 1782172450608381952
author Balcan, Duygu
Hu, Hao
Goncalves, Bruno
Bajardi, Paolo
Poletto, Chiara
Ramasco, Jose J
Paolotti, Daniela
Perra, Nicola
Tizzoni, Michele
Broeck, Wouter Van den
Colizza, Vittoria
Vespignani, Alessandro
author_facet Balcan, Duygu
Hu, Hao
Goncalves, Bruno
Bajardi, Paolo
Poletto, Chiara
Ramasco, Jose J
Paolotti, Daniela
Perra, Nicola
Tizzoni, Michele
Broeck, Wouter Van den
Colizza, Vittoria
Vespignani, Alessandro
author_sort Balcan, Duygu
collection PubMed
description BACKGROUND: On 11 June the World Health Organization officially raised the phase of pandemic alert (with regard to the new H1N1 influenza strain) to level 6. As of 19 July, 137,232 cases of the H1N1 influenza strain have been officially confirmed in 142 different countries, and the pandemic unfolding in the Southern hemisphere is now under scrutiny to gain insights about the next winter wave in the Northern hemisphere. A major challenge is pre-empted by the need to estimate the transmission potential of the virus and to assess its dependence on seasonality aspects in order to be able to use numerical models capable of projecting the spatiotemporal pattern of the pandemic. METHODS: In the present work, we use a global structured metapopulation model integrating mobility and transportation data worldwide. The model considers data on 3,362 subpopulations in 220 different countries and individual mobility across them. The model generates stochastic realizations of the epidemic evolution worldwide considering 6 billion individuals, from which we can gather information such as prevalence, morbidity, number of secondary cases and number and date of imported cases for each subpopulation, all with a time resolution of 1 day. In order to estimate the transmission potential and the relevant model parameters we used the data on the chronology of the 2009 novel influenza A(H1N1). The method is based on the maximum likelihood analysis of the arrival time distribution generated by the model in 12 countries seeded by Mexico by using 1 million computationally simulated epidemics. An extended chronology including 93 countries worldwide seeded before 18 June was used to ascertain the seasonality effects. RESULTS: We found the best estimate R(0 )= 1.75 (95% confidence interval (CI) 1.64 to 1.88) for the basic reproductive number. Correlation analysis allows the selection of the most probable seasonal behavior based on the observed pattern, leading to the identification of plausible scenarios for the future unfolding of the pandemic and the estimate of pandemic activity peaks in the different hemispheres. We provide estimates for the number of hospitalizations and the attack rate for the next wave as well as an extensive sensitivity analysis on the disease parameter values. We also studied the effect of systematic therapeutic use of antiviral drugs on the epidemic timeline. CONCLUSION: The analysis shows the potential for an early epidemic peak occurring in October/November in the Northern hemisphere, likely before large-scale vaccination campaigns could be carried out. The baseline results refer to a worst-case scenario in which additional mitigation policies are not considered. We suggest that the planning of additional mitigation policies such as systematic antiviral treatments might be the key to delay the activity peak in order to restore the effectiveness of the vaccination programs.
format Text
id pubmed-2755471
institution National Center for Biotechnology Information
language English
publishDate 2009
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-27554712009-10-02 Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility Balcan, Duygu Hu, Hao Goncalves, Bruno Bajardi, Paolo Poletto, Chiara Ramasco, Jose J Paolotti, Daniela Perra, Nicola Tizzoni, Michele Broeck, Wouter Van den Colizza, Vittoria Vespignani, Alessandro BMC Med Research Article BACKGROUND: On 11 June the World Health Organization officially raised the phase of pandemic alert (with regard to the new H1N1 influenza strain) to level 6. As of 19 July, 137,232 cases of the H1N1 influenza strain have been officially confirmed in 142 different countries, and the pandemic unfolding in the Southern hemisphere is now under scrutiny to gain insights about the next winter wave in the Northern hemisphere. A major challenge is pre-empted by the need to estimate the transmission potential of the virus and to assess its dependence on seasonality aspects in order to be able to use numerical models capable of projecting the spatiotemporal pattern of the pandemic. METHODS: In the present work, we use a global structured metapopulation model integrating mobility and transportation data worldwide. The model considers data on 3,362 subpopulations in 220 different countries and individual mobility across them. The model generates stochastic realizations of the epidemic evolution worldwide considering 6 billion individuals, from which we can gather information such as prevalence, morbidity, number of secondary cases and number and date of imported cases for each subpopulation, all with a time resolution of 1 day. In order to estimate the transmission potential and the relevant model parameters we used the data on the chronology of the 2009 novel influenza A(H1N1). The method is based on the maximum likelihood analysis of the arrival time distribution generated by the model in 12 countries seeded by Mexico by using 1 million computationally simulated epidemics. An extended chronology including 93 countries worldwide seeded before 18 June was used to ascertain the seasonality effects. RESULTS: We found the best estimate R(0 )= 1.75 (95% confidence interval (CI) 1.64 to 1.88) for the basic reproductive number. Correlation analysis allows the selection of the most probable seasonal behavior based on the observed pattern, leading to the identification of plausible scenarios for the future unfolding of the pandemic and the estimate of pandemic activity peaks in the different hemispheres. We provide estimates for the number of hospitalizations and the attack rate for the next wave as well as an extensive sensitivity analysis on the disease parameter values. We also studied the effect of systematic therapeutic use of antiviral drugs on the epidemic timeline. CONCLUSION: The analysis shows the potential for an early epidemic peak occurring in October/November in the Northern hemisphere, likely before large-scale vaccination campaigns could be carried out. The baseline results refer to a worst-case scenario in which additional mitigation policies are not considered. We suggest that the planning of additional mitigation policies such as systematic antiviral treatments might be the key to delay the activity peak in order to restore the effectiveness of the vaccination programs. BioMed Central 2009-09-10 /pmc/articles/PMC2755471/ /pubmed/19744314 http://dx.doi.org/10.1186/1741-7015-7-45 Text en Copyright © 2009 Balcan et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Balcan, Duygu
Hu, Hao
Goncalves, Bruno
Bajardi, Paolo
Poletto, Chiara
Ramasco, Jose J
Paolotti, Daniela
Perra, Nicola
Tizzoni, Michele
Broeck, Wouter Van den
Colizza, Vittoria
Vespignani, Alessandro
Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility
title Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility
title_full Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility
title_fullStr Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility
title_full_unstemmed Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility
title_short Seasonal transmission potential and activity peaks of the new influenza A(H1N1): a Monte Carlo likelihood analysis based on human mobility
title_sort seasonal transmission potential and activity peaks of the new influenza a(h1n1): a monte carlo likelihood analysis based on human mobility
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2755471/
https://www.ncbi.nlm.nih.gov/pubmed/19744314
http://dx.doi.org/10.1186/1741-7015-7-45
work_keys_str_mv AT balcanduygu seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT huhao seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT goncalvesbruno seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT bajardipaolo seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT polettochiara seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT ramascojosej seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT paolottidaniela seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT perranicola seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT tizzonimichele seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT broeckwoutervanden seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT colizzavittoria seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility
AT vespignanialessandro seasonaltransmissionpotentialandactivitypeaksofthenewinfluenzaah1n1amontecarlolikelihoodanalysisbasedonhumanmobility