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Published on: July 8, 2011
Model-based analysis of an outbreak of bubonic plague in Cairo in 1801
Xavier Didelot1, Lilith K Whittles2, Ian Hall3
1Department of Infectious Disease Epidemiology, School of Public Health, Imperial College London, Norfolk Place, London W2 1PG, UK x.didelot@imperial.ac.uk.
Abstract:
Bubonic plague has caused three deadly pandemics in human history: from the mid-sixth to mid-eighth century, from the mid-fourteenth to the mid-eighteenth century and from the end of the nineteenth until the mid-twentieth century. Between the second and the third pandemics, plague was causing sporadic outbreaks in only a few countries in the Middle East, including Egypt. Little is known about this historical phase of plague, even though it represents the temporal, geographical and phylogenetic transition between the second and third pandemics. Here we analysed in detail an outbreak of plague that took place in Cairo in 1801, and for which epidemiological data are uniquely available thanks to the presence of medical officers accompanying the Napoleonic expedition into Egypt at that time. We propose a new stochastic model describing how bubonic plague outbreaks unfold in both rat and human populations, and perform Bayesian inference under this model using a particle Markov chain Monte Carlo. Rat carcasses were estimated to be infectious for approximately 4 days after death, which is in good agreement with local observations on the survival of infectious rat fleas. The estimated transmission rate between rats implies a basic reproduction number R0 of approximately 3, causing the collapse of the rat population in approximately 100 days. Simultaneously, the force of infection exerted by each infected rat carcass onto the human population increases progressively by more than an order of magnitude. We also considered human-to-human transmission via pneumonic plague or human specific vectors, but found this route to account for only a small fraction of cases and to be significantly below the threshold required to sustain an outbreak.
Insights
A 1801 Cairo plague outbreak study reveals rat carcasses remain infectious for ~4 days. This finding helps understand plague transitions between major pandemics, with rats driving human infection.
Area of Science:
- Epidemiology
- Mathematical Biology
- Historical Microbiology
Background:
- Bubonic plague caused three major pandemics throughout history.
- The inter-pandemic period saw sporadic outbreaks, particularly in the Middle East, representing a critical transition phase.
- Understanding these inter-pandemic outbreaks is key to tracing plague's evolution.
Observation:
- An 1801 Cairo plague outbreak provided unique epidemiological data.
- Medical officers with the Napoleonic expedition documented the outbreak.
- This study analyzed the outbreak using a novel stochastic model.
Findings:
- Rat carcasses were estimated to be infectious for approximately 4 days.
- The model indicated a basic reproduction number (R0) of ~3 for rats, leading to population collapse in ~100 days.
- Infected rat carcasses significantly increased the force of infection on the human population, while human-to-human transmission was minimal.
Implications:
- The findings shed light on the transition between the second and third bubonic plague pandemics.
- This research enhances our understanding of plague dynamics in rat and human populations.
- The study provides a framework for analyzing historical plague outbreaks with limited data.
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