USGS ScienceSearch

Geology topics

S.B. Castleberry

Publications and source records attributed to S.B. Castleberry.

3 recordsLinked to original sources

Disparities in Perimyotis subflavus body mass between cave and culvert hibernacula in Georgia, USA

The tricolored bat ( Perimyotis subflavus ), once common in the eastern United States, has experienced significant mortality due to white-nose syndrome (WNS), a fungal disease that primarily affects bats hibernating in caves and mines. In coastal regions of the southeastern United States, where caves and mines are scarce, tricolored bats often use roadway culverts as hibernacula. However, WNS infection dynamics in culverts are poorly understood. Previous research indicated that bats with higher body mass at the onset of hibernation have a higher probability of surviving repeated arousal events from WNS. Therefore, we compared tricolored bat winter body mass between cave and culvert hibernacula and identified culvert characteristics influencing body mass during hibernation in Georgia, USA. From 2018 to 2022, we measured body mass of 754 individuals in early and late hibernation across 32 culverts ( n = 497) and four caves ( n = 257). Our study revealed a southward spread of the fungus over multiple years, with the first confirmed case of WNS in a Georgia culvert in 2022. Overall, tricolored bats in caves weighed more in early hibernation than those in culverts, but bats in culverts weighed more in late hibernation. Across all sites, female tricolored bats entering and leaving hibernation had greater mass than males but lost more mass during hibernation, possibly due to differences in torpor-arousal patterns and WNS infection rates. Additionally, all bats lost more mass in longer culverts. Understanding culvert characteristics affecting bat body mass will inform management strategies to mitigate WNS effects. Identifying risk factors for specific tricolored bat hibernacula can guide managers on where to focus winter WNS monitoring efforts and potential treatments.

Georgia

Fleas (Siphonaptera) of the Allegheny woodrat (Neotoma magister) in West Virginia with comments on host specificity

Previous research has indicated fewer host-specific ectoparasites on woodrats of the eastern United States as compared to western woodrat species. The Allegheny woodrat ( Neotoma magister ) is a species of conservation concern that is associated with rocky habitats in the Appalachian and Interior Highland regions in the eastern United States. We examined Allegheny woodrat flea parasites in the core of the distribution to further elucidate patterns of ectoparasite host specificity in woodrats of the eastern United States. Of 346 fleas collected from 62 Allegheny woodrats, all but 1 were identified as Orchopeas pennsylvanicus . The single exception was a male Epitedia cavernicola , which represents only the second collection of this species from West Virginia. Unlike the eastern woodrat ( Neotoma floridana ), which hosts a variety of generalist flea parasites, Allegheny woodrats in our study were host to only 2 flea species, both of which are host specific to woodrats. We suggest that flea host specificity may be related to the specific habitat requirements of this species.

American Midland Naturalist

Microsatellite DNA markers for the study of Allegheny woodrat (Neotoma magister) populations and cross-species amplification the genus Neotoma

The Allegheny woodrat ( Neotoma magister ) is a colony-forming murid rodent inhabiting rock outcrops, cliff and talus slopes, and caves within the Central and Southern Appalachians of North America ( Hall 1981 ). The species is currently considered threatened, endangered, or at risk throughout its range purportedly due to the direct or indirect effects of human-fragmented landscapes. Currently, Allegheny woodrat management units are arbitrarily defined as metapopulations that roughly constitute contiguous rock outcrops interconnected by forested habitat. To strengthen long-term population stability and reduce the need for further protection through the regulatory process, an effective conservation programme for this at-risk species will require unambiguous, objectively defined units of management that discern evolutionarily important lineages ( Avise 1994 ). A prerequisite in the development of management strategies that recognize and maintain significant woodrat lineages is a thorough understanding of the levels of gene exchange among geographically proximate and distal populations. However, no information exists on population structure, levels of gene flow, or relatedness among Allegheny woodrat populations or colonies. As an initial step towards addressing this research need, we have developed a suite of polymorphic microsatellite DNA markers for this species. In this paper, we describe the isolation and characterization of these markers and demonstrate their suitability in amplifying putatively homologous products in seven additional Neotoma species.

Alabama, Georgia, Kentucky, Mississippi, North Car