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Locally Abundant, Endangered Mariana Swiftlets Impact the Abundance, Behavior, and Body Condition of an Invasive Predator

Overview
Journal Oecologia
Date 2021 Mar 8
PMID 33683442
Citations 1
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Abstract

Invasive predators are known to have negative consumptive and non-consumptive effects on native species, but few examples show how the abundance of native prey may influence an established invasive predator. We compared invasive brown treesnakes (Boiga irregularis; BTS) found in caves occupied by endangered Mariana swiftlets (Aerodramus bartschi) to snakes found in nearby forests and caves without birds to quantify how the abundance of native avian prey impacts BTS abundance and behavior on Guam. From 2011 to 2017 we removed 151 BTS in caves occupied by swiftlets and never observed BTS in caves without birds. Notable locations included snakes foraging near swiftlets and in holes that allowed cave access and escape from capture. Of 43 BTS with gut contents, 27 (63%) contained swiftlets. BTS in swiftlet-occupied caves had greater fat mass compared to forests, indicating access to swiftlets may increase body condition and promote reproduction. Number of ovarian follicles was significantly greater in female snakes from swiftlet-occupied caves compared to those from ravine, but not limestone forests; evidence of male BTS being more capable of reproduction was limited (i.e., fewer non-discernible but not significantly larger testes in snakes from caves). Assuming other limiting factors are considered, altering the functional response of predators through the modification of caves or interdiction lures to exclude or hinder the largest BTS could bolster swiftlet populations by increasing nesting refugia in currently-occupied caves and facilitate recolonization of historical caves.

Citing Articles

Gape-limited invasive predator frequently kills avian prey that are too large to swallow.

Kastner M, Goetz S, Baker K, Siers S, Paxton E, Nafus M Ecol Evol. 2024; 14(7):e11598.

PMID: 39055774 PMC: 11269886. DOI: 10.1002/ece3.11598.

References
1.
Buxton R, Jones C, Moller H, Towns D . Drivers of seabird population recovery on New Zealand islands after predator eradication. Conserv Biol. 2014; 28(2):333-44. DOI: 10.1111/cobi.12228. View

2.
Caves E, Jennings S, HilleRisLambers J, Tewksbury J, Rogers H . Natural experiment demonstrates that bird loss leads to cessation of dispersal of native seeds from intact to degraded forests. PLoS One. 2013; 8(5):e65618. PMC: 3669269. DOI: 10.1371/journal.pone.0065618. View

3.
Dorcas M, Willson J, Reed R, Snow R, Rochford M, Miller M . Severe mammal declines coincide with proliferation of invasive Burmese pythons in Everglades National Park. Proc Natl Acad Sci U S A. 2012; 109(7):2418-22. PMC: 3289325. DOI: 10.1073/pnas.1115226109. View

4.
Holldorf E, Siers S, Richmond J, Klug P, Reed R . Invaded Invaders: Infection of Invasive Brown Treesnakes on Guam by an Exotic Larval Cestode with a Life Cycle Comprised of Non-Native Hosts. PLoS One. 2015; 10(12):e0143718. PMC: 4689450. DOI: 10.1371/journal.pone.0143718. View

5.
Humphries A, La Peyre M, Decossas G . The effect of structural complexity, prey density, and "predator-free space" on prey survivorship at created oyster reef mesocosms. PLoS One. 2011; 6(12):e28339. PMC: 3228732. DOI: 10.1371/journal.pone.0028339. View