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Published on: June 19, 2017
Ectoparasites may serve as vectors for the white-nose syndrome fungus
Radek K Lučan1, Hana Bandouchova2, Tomáš Bartonička3
1Department of Zoology, Faculty of Science, Charles University in Prague, Viničná 7, CZ-12844, Prague, Czech Republic. radek.lucan@natur.cuni.cz.
Background:
Vertebrate ectoparasites frequently play a role in transmission of infectious agents. Pseudogymnoascus destructans is a psychrophilic fungus known to cause white-nose syndrome (WNS), an emerging infectious disease of bats. It is transmitted with direct contact between bats or with contaminated environment. The aim of this study was to examine wing mites from the family Spinturnicidae parasitizing hibernating bats for the presence of P. destructans propagules as another possible transmission route.
Methods:
Wing mites collected from 33 bats at four hibernation sites in the Czech Republic were inspected for the presence and load of pathogen's DNA using quantitative PCR. Simultaneously, wing damage of inspected bats caused by WNS was quantified using ultraviolet light (UV) transillumination and the relationship between fungal load on wing mites and intensity of infection was subjected to correlation analysis.
Results:
All samples of wing mites were positive for the presence of DNA of P. destructans, indicating a high probability of their role in the transmission of the pathogen's propagules between bats.
Conclusions:
Mechanical transport of adhesive P. destructans spores and mycelium fragments on the body of spinturnicid mites is highly feasible. The specialised lifestyle of mites, i.e., living on bat wing membranes, the sites most typically affected by fungal growth, enables pathogen transport. Moreover, P. destructans metabolic traits suggest an ability to grow and sporulate on a range of organic substrates, including insects, which supports the possibility of growth on bat ectoparasites, at least in periods when bats roost in cold environments and enter torpor. In addition to transport of fungal propagules, mites may facilitate entry of fungal hyphae into the epidermis through injuries caused by biting.
Insights
Bat wing mites carry Pseudogymnoascus destructans (P. destructans), the fungus causing white-nose syndrome (WNS). This study found P. destructans DNA on all sampled mites, suggesting they are a significant transmission route for this devastating bat disease.
Area of Science:
- Veterinary Entomology
- Wildlife Pathology
- Mycology
Background:
- Ectoparasites of vertebrates can transmit infectious agents.
- Pseudogymnoascus destructans (P. destructans) causes white-nose syndrome (WNS) in bats, a disease spread through direct contact or environmental contamination.
- The role of bat ectoparasites in P. destructans transmission remains an area of investigation.
Purpose of the Study:
- To investigate wing mites (family Spinturnicidae) from hibernating bats as a potential transmission route for P. destructans.
- To determine the presence and quantify the load of P. destructans DNA on bat wing mites.
- To analyze the correlation between fungal load on mites and WNS severity in bats.
Main Methods:
- Wing mites were collected from 33 bats across four hibernation sites in the Czech Republic.
- Quantitative PCR was used to detect and quantify P. destructans DNA on mite samples.
- Bat wing damage from WNS was assessed using UV transillumination, and correlation analysis was performed.
Main Results:
- All collected wing mite samples tested positive for P. destructans DNA.
- This finding indicates a high likelihood that these mites contribute to the spread of P. destructans propagules among bats.
Conclusions:
- Spinturnicid mites can mechanically transport P. destructans spores and mycelium fragments.
- Mites' habitat on bat wing membranes, a primary site for WNS lesions, facilitates pathogen transport.
- Mites may also introduce fungal hyphae into bat skin through bite wounds, exacerbating WNS.
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