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Amanda Lollar

Publications and source records attributed to Amanda Lollar.

2 recordsLinked to original sources

Recovery of little brown bats (Myotis lucifugus) from natural infection with Geomyces destructans, white-nose syndrome

Geomyces destructans produces the white fungal growth on the muzzle and the tacky white discoloration on wings and ears that characterize white-nose syndrome (WNS) in cave-hibernating bats. To test the hypothesis that postemergent WNS-infected bats recover from infection with G. destructans , 30 little brown bats ( Myotis lucifugus ) were collected in May 2009 from a WNS-affected hibernation site in New Jersey. All bats were confirmed to be infected with G. destructans using a noninvasive fungal tape method to identify the conidia of G. destructans and polymerase chain reaction (PCR). The bats were then held in captivity and given supportive care for 70 days. Of the 26 bats that survived and were humanely killed after 70 days, 25 showed significant improvement in the external appearance of wing membranes, had no microscopic evidence of infection by G. destructans , and had wing tissue samples that were negative for G. destructans by PCR. A subset of the bats was treated topically at the beginning of the rehabilitation study with a dilute vinegar solution, but treatment with vinegar provided no added advantage to recovery. Provision of supportive care to homeothermic bats was sufficient for full recovery from WNS. One bat at day 70 still had both gross pathology and microscopic evidence of WNS in wing membranes and was PCR-positive for G. destructans . Dense aggregates of neutrophils surrounded the hyphae that remained in the wing membrane of this bat.

New Jersey

Dead and dying Brazilian free-tailed bats ( Tadarida brasiliensis ) from Texas: Rabies and pesticide exposure

Twenty-three dead and dying Brazilian free-tailed bats from roosts in downtown Mineral Wells, Palo Pinto County, Texas, were tested for rabies and for anticholinesterase (antiChE) effects of or- ganophosphorus (OP) and carbamate pesticides. Seventeen of the 23 bats tested positive for rabies. The cause of death or dying in five of the nonrabid bats is unknown; however, one of the six nonrabid bats had a ChE activity level equivalent to only 27% of the control mean and may have been exposed to a pes- ticide. Three bats (including the bat with depressed ChE) contained sufficient ingesta to analyze for an- tiChE compounds, but no antiChE compounds could be identified in the samples. Exposure may be dermal and pulmonary as well as dietary. It is feasible that other bat deaths not explained by rabies were attributable to a pesticide but missed due to postmortem reactivation of the ChE enzyme. The largest group of rabid bats was young males (13 of 17, 76.5%), and the largest group of nonrabid bats was older females (3 of 6, 50%). All older females were nonrabid, perhaps survivors of the disease in previous years. Rabid bats had a lower mean fat index and weighed less than nonrabid bats. Four bats (not includ- ing the low ChE bat) showed external bleeding, and none was rabid; thus the incidence of bleeding was greater among nonrabid bats than among rabid bats. The four affected bats came from roosts in three different buildings, making a roost-treatment with an anticoagulant chemical seem unlikely.

Southwestern Naturalist