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Modeling the impact of white-plague coral disease in climate change scenarios

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posted on 2024-11-23, 09:44 authored by Assaf Zvuloni, Yael Artzy-Randrup, Guy Katriel, Yossi Loya, Lewi StoneLewi Stone
Coral reefs are in global decline, with coral diseases increasing both in prevalence and in space, a situation that is expected only to worsen as future thermal stressors increase. Through intense surveillance, we have collected a unique and highly resolved dataset from the coral reef of Eilat (Israel, Red Sea), that documents the spatiotemporal dynamics of a White Plague Disease (WPD) outbreak over the course of a full season. Based on modern statistical methodologies, we develop a novel spatial epidemiological model that uses a maximum-likelihood procedure to fit the data and assess the transmission pattern of WPD. We link the model to sea surface temperature (SST) and test the possible effect of increasing temperatures on disease dynamics. Our results reveal that the likelihood of a susceptible coral to become infected is governed both by SST and by its spatial location relative to nearby infected corals. The model shows that the magnitude of WPD epidemics strongly depends on demographic circumstances; under one extreme, when recruitment is free-space regulated and coral density remains relatively constant, even an increase of only 0.5 degrees C in SST can cause epidemics to double in magnitude. In reality, however, the spatial nature of transmission can effectively protect the community, restricting the magnitude of annual epidemics. This is because the probability of susceptible corals to become infected is negatively associated with coral density. Based on our findings, we expect that infectious diseases having a significant spatial component, such as Red-Sea WPD, will never lead to a complete destruction of the coral community under increased thermal stress.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1371/journal.pcbi.1004151
  2. 2.
    ISSN - Is published in 15537358

Journal

PL o S Computational Biology

Volume

11

Number

1004151

Issue

6

Start page

1

End page

22

Total pages

22

Publisher

Public Library of Science

Place published

United States

Language

English

Copyright

Copyright: © 2015 Zvuloni et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

Notes

This work is licensed under a Creative Commons Attribution 4.0 International License.

Former Identifier

2006057647

Esploro creation date

2020-06-22

Fedora creation date

2016-01-07

Open access

  • Yes