Resources

Potential Scenario

2016-Lewnard-Townsend-Climatic and evolutionary drivers of phase shifts in the plague epidemics of colonial India

Author(s): Joseph A Lewnard

NA

Keywords: infectious disease p Vector-Borne Disease lague plague

130 total view(s), 50 download(s)

Abstract

Resource Image Our analysis shows that historical datasets can yield powerful insights into the transmission dynamics of reemerging disease agents with which we have limited contemporary experience to guide quantitative modeling and inference.

Citation

Researchers should cite this work as follows:

Article Context

Description

Lewnard, Joseph A.  and Jeffrey P. Townsend. 2016. Climatic and evolutionary drivers of phase shifts in the plague epidemics of colonial India. Proceedings of the National Academy of Sciences. 113(51): 14601-14608.

See https://www.pnas.org/content/113/51/14601 . Accessed 28 March 2023.

Abstract: Immune heterogeneity in wild host populations indicates that disease-mediated selection is common in nature. However, the underlying dynamic feedbacks involving the ecology of disease transmission, evolutionary processes, and their interaction with environmental drivers have proven challenging to characterize.

Plague presents an optimal system for interrogating such couplings: Yersinia pestis transmission exerts intense selective pressure driving the local persistence of disease resistance among its wildlife hosts in endemic areas. Investigations undertaken in colonial India after the introduction of plague in 1896 suggest that, only a decade after plague arrived, a heritable, plague-resistant phenotype had become prevalent among commensal rats of cities undergoing severe plague epidemics. To understand the possible evolutionary basis of these observations, we developed a mathematical model coupling environmentally forced plague dynamics with evolutionary selection of rats, capitalizing on extensive archival data from Indian Plague Commission investigations. Incorporating increased plague resistance among rats as a consequence of intense natural selection permits the model to reproduce observed changes in seasonal epidemic patterns in several cities and capture experimentally observed associations between climate and flea population dynamics in India. Our model results substantiate Victorian era claims of host evolution based on experimental observations of plague resistance and reveal the buffering effect of such evolution against environmental drivers of transmission. Our analysis shows that historical datasets can yield powerful insights into the transmission dynamics of reemerging disease agents with which we have limited contemporary experience to guide quantitative modeling and inference.

Model explained in detail and compared to historical data. Good references, but data not included in paper.

Keywords:  differential equation, model, modeling,  infectious disease,  vector-borne disease, zoonosis, immunoecology

 

Article Files

Authors

Author(s): Joseph A Lewnard

NA

Comments

Comments

There are no comments on this resource.