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Of Mice and Fungi: Coccidioides spp. Distribution Models

The continuous increase of Coccidioidomycosis cases requires reliable detection methods of the causal agent, Coccidioides spp., in its natural environment. This has proven challenging because of our limited knowledge on the distribution of this soil-dwelling fungus. Knowing the pathogen’s geographic...

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Autores principales: Ocampo-Chavira, Pamela, Eaton-Gonzalez, Ricardo, Riquelme, Meritxell
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7712536/
https://www.ncbi.nlm.nih.gov/pubmed/33261168
http://dx.doi.org/10.3390/jof6040320
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author Ocampo-Chavira, Pamela
Eaton-Gonzalez, Ricardo
Riquelme, Meritxell
author_facet Ocampo-Chavira, Pamela
Eaton-Gonzalez, Ricardo
Riquelme, Meritxell
author_sort Ocampo-Chavira, Pamela
collection PubMed
description The continuous increase of Coccidioidomycosis cases requires reliable detection methods of the causal agent, Coccidioides spp., in its natural environment. This has proven challenging because of our limited knowledge on the distribution of this soil-dwelling fungus. Knowing the pathogen’s geographic distribution and its relationship with the environment is crucial to identify potential areas of risk and to prevent disease outbreaks. The maximum entropy (Maxent) algorithm, Geographic Information System (GIS) and bioclimatic variables were combined to obtain current and future potential distribution models (DMs) of Coccidioides and its putative rodent reservoirs for Arizona, California and Baja California. We revealed that Coccidioides DMs constructed with presence records from one state are not well suited to predict distribution in another state, supporting the existence of distinct phylogeographic populations of Coccidioides. A great correlation between Coccidioides DMs and United States counties with high Coccidioidomycosis incidence was found. Remarkably, under future scenarios of climate change and high concentration of greenhouse gases, the probability of habitat suitability for Coccidioides increased. Overlap analysis between the DMs of rodents and Coccidioides, identified Neotoma lepida as one of the predominant co-occurring species in all three states. Considering rodents DMs would allow to implement better surveillance programs to monitor disease spread.
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spelling pubmed-77125362020-12-04 Of Mice and Fungi: Coccidioides spp. Distribution Models Ocampo-Chavira, Pamela Eaton-Gonzalez, Ricardo Riquelme, Meritxell J Fungi (Basel) Article The continuous increase of Coccidioidomycosis cases requires reliable detection methods of the causal agent, Coccidioides spp., in its natural environment. This has proven challenging because of our limited knowledge on the distribution of this soil-dwelling fungus. Knowing the pathogen’s geographic distribution and its relationship with the environment is crucial to identify potential areas of risk and to prevent disease outbreaks. The maximum entropy (Maxent) algorithm, Geographic Information System (GIS) and bioclimatic variables were combined to obtain current and future potential distribution models (DMs) of Coccidioides and its putative rodent reservoirs for Arizona, California and Baja California. We revealed that Coccidioides DMs constructed with presence records from one state are not well suited to predict distribution in another state, supporting the existence of distinct phylogeographic populations of Coccidioides. A great correlation between Coccidioides DMs and United States counties with high Coccidioidomycosis incidence was found. Remarkably, under future scenarios of climate change and high concentration of greenhouse gases, the probability of habitat suitability for Coccidioides increased. Overlap analysis between the DMs of rodents and Coccidioides, identified Neotoma lepida as one of the predominant co-occurring species in all three states. Considering rodents DMs would allow to implement better surveillance programs to monitor disease spread. MDPI 2020-11-27 /pmc/articles/PMC7712536/ /pubmed/33261168 http://dx.doi.org/10.3390/jof6040320 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ocampo-Chavira, Pamela
Eaton-Gonzalez, Ricardo
Riquelme, Meritxell
Of Mice and Fungi: Coccidioides spp. Distribution Models
title Of Mice and Fungi: Coccidioides spp. Distribution Models
title_full Of Mice and Fungi: Coccidioides spp. Distribution Models
title_fullStr Of Mice and Fungi: Coccidioides spp. Distribution Models
title_full_unstemmed Of Mice and Fungi: Coccidioides spp. Distribution Models
title_short Of Mice and Fungi: Coccidioides spp. Distribution Models
title_sort of mice and fungi: coccidioides spp. distribution models
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7712536/
https://www.ncbi.nlm.nih.gov/pubmed/33261168
http://dx.doi.org/10.3390/jof6040320
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