Published February 2019 | Version v1
Journal article

Variation in metal tolerance associated with population exposure history in Southern toads (Anaxyrus terrestris)

  • 1. Savannah River Ecology Laboratory, University of Georgia, Aiken, SC (United States)

Description

Highlights: • Offspring of parents from a copper (Cu) contaminated site were more tolerant Cu than those from reference sites. • Population exposure history to other metal contaminants was not associated with Cu tolerance. • Cu tolerance not associated with maternal factors, including transfer of metals to eggs or egg size. • Patterns of tolerance suggestive of adaptation, rather than acclimatization, to a common environmental contaminant. -- Abstract: Human activities have radically shaped the global landscape, affecting the structure and function of ecosystems. Habitat loss is one of the most visible changes to the landscape and a primary driver of species declines; however, anthropogenic environmental contamination also threatens population persistence, but is not as readily observed. Aquatic organisms are especially susceptible to chemical perturbations, which can negatively impact survival and fitness related traits. Some populations have evolved tolerance to chemical stressors, which could mitigate the consequences associated with contamination. Amphibians are experiencing global declines due to multiple stressors and are particularly at risk to aquatic chemical stressors due to their permeable skin and reliance on wetlands for reproduction and larval development. However, amphibians also have substantial plasticity in response to environmental variation. We designed our study to examine whether tolerance to heavy metals is greater in Southern toad (Anaxyrus terrestris) larvae from wetlands with a history of contamination. Considering many of the most common trace elements elicit acute toxicity by disrupting osmotic- and ionic-regulation, we hypothesized that alterations to these aspects of physiology resulting from multigenerational exposure to trace element mixtures would be the most likely routes by which tolerance would evolve. We used copper (Cu) as a proxy for heavy metal exposure because it is a widely distributed aquatic stressor known to cause osmotic stress that can also cause mortality at levels commonly encountered in the environment. We found considerable within and among population variation in Cu tolerance, as measured by time to death. Larvae from populations living in sites contaminated with mixtures of heavy metals associated with coal fly ash were no more tolerant to Cu than those from reference sites. However, larvae from a population inhabiting a constructed wetland complex with high Cu levels were significantly more tolerant; having half the risk of mortality as reference animals. This wetland complex was created < 20 years ago, thus if elevated Cu tolerance in this population is due to selection in the aquatic habitat, such adaptation may occur rapidly (i.e. ∼10 generation). Our results provide evidence that amphibians may be able to evolve tolerance in response to trace element contamination, though such tolerance may be specific to the combination of contaminants present.

Additional details

Identifiers

DOI
10.1016/j.aquatox.2018.12.009;
PII
S0166445X18309354;

Publishing Information

Journal Title
Aquatic Toxicology
Journal Volume
207
Journal Page Range
p. 163-169
ISSN
0166-445X
CODEN
AQTODG

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
55042435
Subject category
S54: ENVIRONMENTAL SCIENCES;
Descriptors DEI
COPPER; FLY ASH; HEAVY METALS; LARVAE; PHYSIOLOGY; PLASTICITY; PROGENY; REGULATIONS; TRACE AMOUNTS; WETLANDS
Descriptors DEC
AEROSOL WASTES; AQUATIC ECOSYSTEMS; ASHES; COMBUSTION PRODUCTS; ECOSYSTEMS; ELEMENTS; LAWS; MECHANICAL PROPERTIES; METALS; RESIDUES; TRANSITION ELEMENTS; WASTES

Optional Information

Copyright
Copyright (c) 2018 Elsevier B.V. All rights reserved.