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Published on: November 5, 2019
Inference of transmission dynamics and retrospective forecast of invasive meningococcal disease
Jaime Cascante-Vega1, Marta Galanti1, Katharina Schley2
1Department of Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, New York, United States of America.
Abstract:
The pathogenic bacteria Neisseria meningitidis, which causes invasive meningococcal disease (IMD), predominantly colonizes humans asymptomatically; however, invasive disease occurs in a small proportion of the population. Here, we explore the seasonality of IMD and develop and validate a suite of models for simulating and forecasting disease outcomes in the United States. We combine the models into multi-model ensembles (MME) based on the past performance of the individual models, as well as a naive equally weighted aggregation, and compare the retrospective forecast performance over a six-month forecast horizon. Deployment of the complete vaccination regimen, introduced in 2011, coincided with a change in the periodicity of IMD, suggesting altered transmission dynamics. We found that a model forced with the period obtained by local power wavelet decomposition best fit and forecast observations. In addition, the MME performed the best across the entire study period. Finally, our study included US-level data until 2022, allowing study of a possible IMD rebound after relaxation of non-pharmaceutical interventions imposed in response to the COVID-19 pandemic; however, no evidence of a rebound was found. Our findings demonstrate the ability of process-based models to retrospectively forecast IMD and provide a first analysis of the seasonality of IMD before and after the complete vaccination regimen.
Insights
Forecasting invasive meningococcal disease (IMD) is crucial. A new modeling approach, combining multiple models, accurately predicted IMD trends, showing no rebound post-COVID-19 interventions.
Area of Science:
- Epidemiology
- Mathematical Modeling
- Infectious Disease Dynamics
Background:
- Neisseria meningitidis causes invasive meningococcal disease (IMD), often asymptomatically.
- Understanding IMD seasonality and forecasting is vital for public health.
- Vaccination regimens can alter disease transmission dynamics.
Purpose of the Study:
- To explore IMD seasonality in the US.
- To develop and validate models for simulating and forecasting IMD.
- To assess IMD trends post-COVID-19 non-pharmaceutical interventions.
Main Methods:
- Developed and validated multiple models for IMD simulation and forecasting.
- Combined models into multi-model ensembles (MME) based on past performance.
- Utilized local power wavelet decomposition for time series analysis.
Main Results:
- A model using local power wavelet decomposition best fit and forecast IMD observations.
- The MME demonstrated superior performance across the study period.
- No evidence of an IMD rebound was observed after COVID-19 interventions.
Conclusions:
- Process-based models can effectively forecast IMD retrospectively.
- This study provides the first analysis of IMD seasonality before and after vaccination.
- The findings inform strategies for managing and predicting meningococcal disease outbreaks.
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