The importance of dog population contact network structures in rabies transmission
暂无分享,去创建一个
Nakul Chitnis | Timo Smieszek | Mirjam Laager | T. Smieszek | N. Chitnis | J. Zinsstag | Jakob Zinsstag | Céline Mbilo | Enos Abdelaziz Madaye | Abakar Naminou | Monique Léchenne | Aurélie Tschopp | Service Kemdongarti Naïssengar | M. Léchenne | Mirjam Laager | C. Mbilo | A. Tschopp | S. Naïssengar | Enos Madaye | Abakar Naminou | M. Laager
[1] M. Newman,et al. Network theory and SARS: predicting outbreak diversity , 2004, Journal of Theoretical Biology.
[2] Manuel Llinás,et al. Open Source Drug Discovery with the Malaria Box Compound Collection for Neglected Diseases and Beyond , 2016, PLoS pathogens.
[3] Graham C. Smith,et al. Fox contact behaviour and rabies spread: a model for the estimation of contact probabilities between urban foxes at different population densities and its implications for rabies control in Britain , 1995 .
[4] N. Chitnis,et al. Vaccination of dogs in an African city interrupts rabies transmission and reduces human exposure , 2017, Science Translational Medicine.
[5] Todd G. Smith,et al. Evaluation of immune responses in dogs to oral rabies vaccine under field conditions. , 2017, Vaccine.
[6] S Riley,et al. Close encounters of the infectious kind: methods to measure social mixing behaviour , 2012, Epidemiology and Infection.
[7] Stephen A. Davis,et al. Predicted Spatial Spread of Canine Rabies in Australia , 2017, PLoS neglected tropical diseases.
[8] J. Yorke,et al. Dynamics and Control of the Transmission of Gonorrhea , 1978, Sexually transmitted diseases.
[9] T. Smieszek. A mechanistic model of infection: why duration and intensity of contacts should be included in models of disease spread , 2009, Theoretical Biology and Medical Modelling.
[10] Alessandro Vespignani,et al. Dynamics of Person-to-Person Interactions from Distributed RFID Sensor Networks , 2008, PloS one.
[11] George Tomlinson,et al. Vitamin K Supplementation in Postmenopausal Women with Osteopenia (ECKO Trial): A Randomized Controlled Trial , 2008, PLoS medicine.
[12] S. Janson,et al. Graphs with specified degree distributions, simple epidemics, and local vaccination strategies , 2007, Advances in Applied Probability.
[13] D. F. Barber,et al. PI3K p110γ Deletion Attenuates Murine Atherosclerosis by Reducing Macrophage Proliferation but Not Polarization or Apoptosis in Lesions , 2013, PloS one.
[14] A. Jayakumar,et al. Differential Impact of LPG-and PG-Deficient Leishmania major Mutants on the Immune Response of Human Dendritic Cells , 2015, PLoS neglected tropical diseases.
[15] R. Scholz,et al. Theoretical Biology and Medical Modelling Models of Epidemics: When Contact Repetition and Clustering Should Be Included , 2022 .
[16] Guohong Cao,et al. Positive Network Assortativity of Influenza Vaccination at a High School: Implications for Outbreak Risk and Herd Immunity , 2014, PloS one.
[17] M. Kretzschmar,et al. Modeling prevention strategies for gonorrhea and Chlamydia using stochastic network simulations. , 1996, American journal of epidemiology.
[18] B. Hirsch,et al. Raccoon Social Networks and the Potential for Disease Transmission , 2013, PloS one.
[19] Bethany M. Wootton,et al. The Acceptability of Internet-Based Treatment and Characteristics of an Adult Sample with Obsessive Compulsive Disorder: An Internet Survey , 2011, PloS one.
[20] M. Kretzschmar,et al. Using data on social contacts to estimate age-specific transmission parameters for respiratory-spread infectious agents. , 2006, American journal of epidemiology.
[21] Albert-László Barabási,et al. Error and attack tolerance of complex networks , 2000, Nature.
[22] J. Zinsstag,et al. The Importance of a Participatory and Integrated One Health Approach for Rabies Control: The Case of N’Djaména, Chad , 2017, Tropical medicine and infectious disease.
[23] R. Mikolajczyk,et al. Social Contacts and Mixing Patterns Relevant to the Spread of Infectious Diseases , 2008, PLoS medicine.
[24] Reuven Cohen,et al. Efficient immunization strategies for computer networks and populations. , 2002, Physical review letters.
[25] Meggan E Craft,et al. Using contact networks to explore mechanisms of parasite transmission in wildlife , 2017, Biological reviews of the Cambridge Philosophical Society.
[26] Mark E. J. Newman,et al. The Structure and Function of Complex Networks , 2003, SIAM Rev..
[27] R. Radke,et al. Estimating contact rates at a mass gathering by using video analysis: a proof-of-concept project , 2014, BMC Public Health.
[28] Radhika Dhingra,et al. Sensitivity analysis of infectious disease models: methods, advances and their application , 2013, Journal of The Royal Society Interface.
[29] T. Selhorst,et al. The elimination of fox rabies from Europe: determinants of success and lessons for the future , 2013, Philosophical Transactions of the Royal Society B: Biological Sciences.
[30] M. Penny,et al. Transmission dynamics and economics of rabies control in dogs and humans in an African city , 2009, Proceedings of the National Academy of Sciences.
[31] D. Greenhalgh. Optimal control of an epidemic by ring vaccination , 1986 .
[32] A. King,et al. Contact Network Structure Explains the Changing Epidemiology of Pertussis , 2010, Science.
[33] Christl A. Donnelly,et al. Revealing the Micro-scale Signature of Endemic Zoonotic Disease Transmission in an African Urban Setting , 2016, PLoS pathogens.
[34] J. Zinsstag,et al. Operational performance and analysis of two rabies vaccination campaigns in N'Djamena, Chad. , 2016, Vaccine.
[35] Alessandro Vespignani,et al. Epidemic spreading in scale-free networks. , 2000, Physical review letters.
[36] Ciro Cattuto,et al. High-Resolution Measurements of Face-to-Face Contact Patterns in a Primary School , 2011, PloS one.
[37] Meggan E Craft,et al. Raccoon contact networks predict seasonal susceptibility to rabies outbreaks and limitations of vaccination. , 2015, The Journal of animal ecology.
[38] J. Dushoff,et al. Estimating the Global Burden of Endemic Canine Rabies , 2015, PLoS neglected tropical diseases.
[39] A. Barrat,et al. An infectious disease model on empirical networks of human contact: bridging the gap between dynamic network data and contact matrices , 2013, BMC Infectious Diseases.
[40] B. Schönfisch,et al. Ring vaccination , 2000, Journal of mathematical biology.
[41] M. Ward,et al. Development of a Novel Rabies Simulation Model for Application in a Non-endemic Environment , 2015, PLoS neglected tropical diseases.
[42] Martina Morris,et al. Concurrent Partnerships and Trans-mission Dynamics in Networks , 1995 .
[43] N. Chitnis,et al. A metapopulation model of dog rabies transmission in N'Djamena, Chad. , 2019, Journal of theoretical biology.
[44] Maria A. Kazandjieva,et al. A high-resolution human contact network for infectious disease transmission , 2010, Proceedings of the National Academy of Sciences.
[45] Richard Harding,et al. The Real-World Problem of Care Coordination: A Longitudinal Qualitative Study with Patients Living with Advanced Progressive Illness and Their Unpaid Caregivers , 2014, PloS one.
[46] T. Mueller,et al. Field trial with oral vaccination of dogs against rabies in the Philippines , 2001, BMC infectious diseases.
[47] Matthew J. Silk,et al. The application of statistical network models in disease research , 2017 .
[48] K. Dhama,et al. Rabies – epidemiology, pathogenesis, public health concerns and advances in diagnosis and control: a comprehensive review , 2017, The Veterinary quarterly.
[49] Jean-Loup Guillaume,et al. Fast unfolding of communities in large networks , 2008, 0803.0476.
[50] M. Salathé,et al. A low-cost method to assess the epidemiological importance of individuals in controlling infectious disease outbreaks , 2013, BMC Medicine.
[51] Piet Van Mieghem,et al. Epidemic processes in complex networks , 2014, ArXiv.