Rebound in epidemic control: How misaligned vaccination timing amplifies infection peaks

Fuente: arXiv
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Main Authors: Castioni, Piergiorgio, Gòmez, Sergio, Granell, Clara, Arenas, Alex
Format: Preprint
Published: 2024
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author Castioni, Piergiorgio
Gòmez, Sergio
Granell, Clara
Arenas, Alex
author_facet Castioni, Piergiorgio
Gòmez, Sergio
Granell, Clara
Arenas, Alex
contents In this study, we explore the dynamic interplay between the timing of vaccination campaigns and the trajectory of disease spread in a population. Through comprehensive data analysis and modeling, we have uncovered a counter-intuitive phenomenon: initiating a vaccination process at an inopportune moment can paradoxically result in a more pronounced second peak of infections. This "rebound" phenomenon challenges the conventional understanding of vaccination impacts on epidemic dynamics. We provide a detailed examination of how improperly timed vaccination efforts can inadvertently reduce the overall immunity level in a population, considering both natural and vaccine-induced immunity. Our findings reveal that such a decrease in population-wide immunity can lead to a delayed, yet more severe, resurgence of cases. This study not only adds a critical dimension to our understanding of vaccination strategies in controlling pandemics but also underscores the necessity for strategically timed interventions to optimize public health outcomes. Furthermore, we compute which vaccination strategies are optimal for a COVID-19 tailored mathematical model, and find that there are two types of optimal strategies. The first type prioritizes vaccinating early and rapidly to reduce the number of deaths, while the second type acts later and more slowly to reduce the number of cases; both of them target primarily the elderly population. Our results hold significant implications for the formulation of vaccination policies, particularly in the context of rapidly evolving infectious diseases.
format Preprint
id arxiv_https___arxiv_org_abs_2405_17189
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Rebound in epidemic control: How misaligned vaccination timing amplifies infection peaks
Castioni, Piergiorgio
Gòmez, Sergio
Granell, Clara
Arenas, Alex
Physics and Society
Populations and Evolution
In this study, we explore the dynamic interplay between the timing of vaccination campaigns and the trajectory of disease spread in a population. Through comprehensive data analysis and modeling, we have uncovered a counter-intuitive phenomenon: initiating a vaccination process at an inopportune moment can paradoxically result in a more pronounced second peak of infections. This "rebound" phenomenon challenges the conventional understanding of vaccination impacts on epidemic dynamics. We provide a detailed examination of how improperly timed vaccination efforts can inadvertently reduce the overall immunity level in a population, considering both natural and vaccine-induced immunity. Our findings reveal that such a decrease in population-wide immunity can lead to a delayed, yet more severe, resurgence of cases. This study not only adds a critical dimension to our understanding of vaccination strategies in controlling pandemics but also underscores the necessity for strategically timed interventions to optimize public health outcomes. Furthermore, we compute which vaccination strategies are optimal for a COVID-19 tailored mathematical model, and find that there are two types of optimal strategies. The first type prioritizes vaccinating early and rapidly to reduce the number of deaths, while the second type acts later and more slowly to reduce the number of cases; both of them target primarily the elderly population. Our results hold significant implications for the formulation of vaccination policies, particularly in the context of rapidly evolving infectious diseases.
title Rebound in epidemic control: How misaligned vaccination timing amplifies infection peaks
topic Physics and Society
Populations and Evolution
url https://arxiv.org/abs/2405.17189