Isolated Demes as a Genetic Management Strategy for Ex Situ Conservation Programs

ABSTRACT A large number of freshwater fish, amphibian, and invertebrate insurance populations are managed by zoos and aquariums. Most of these species have very short generation times, which leads to the rapid loss of genetic diversity, reducing the potential to contribute to the survival of the species in the wild. We argue that these programs should consider an isolated deme strategy, where species are managed without exchange between groups. This allows genetic diversity to be maintained through isolation. The potential of such a strategy has been long understood, but there are no known cases where it has been consciously implemented. This seems mainly due to the lack of guidance on when to select it as a strategy, and how to implement it. Based on existing simulations, experiences, and experimental data, the benefits of an isolated deme strategy appear to outweigh the risks of inbreeding for r‐selected species like many freshwater fish, amphibians, and invertebrates. We provide guidance for managers to assess if this strategy is appropriate and how to implement it. Acknowledging that more research is still needed, we identify opportunities for new studies that allow for better implementation of isolated deme strategies in the coming decades.

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Publication Details

Journal
Zoo Biology
Published
2026-10-03
DOI
https://doi.org/10.1002/zoo.70116
Primary Topic
Genetic diversity and population structure
Type
article
Field-Weighted Citation Impact
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article

Isolated Demes as a Genetic Management Strategy for Ex Situ Conservation Programs

Brian Zimmerman, Philippe Helsen, Elmar Sean Fienieg
Zoo Biology
Genetic diversity and population structure
article

Isolated Demes as a Genetic Management Strategy for Ex Situ Conservation Programs

Brian Zimmerman, Philippe Helsen, Elmar Sean Fienieg
article en

Abstract

ABSTRACT A large number of freshwater fish, amphibian, and invertebrate insurance populations are managed by zoos and aquariums. Most of these species have very short generation times, which leads to the rapid loss of genetic diversity, reducing the potential to contribute to the survival of the species in the wild. We argue that these programs should consider an isolated deme strategy, where species are managed without exchange between groups. This allows genetic diversity to be maintained through isolation. The potential of such a strategy has been long understood, but there are no known cases where it has been consciously implemented. This seems mainly due to the lack of guidance on when to select it as a strategy, and how to implement it. Based on existing simulations, experiences, and experimental data, the benefits of an isolated deme strategy appear to outweigh the risks of inbreeding for r‐selected species like many freshwater fish, amphibians, and invertebrates. We provide guidance for managers to assess if this strategy is appropriate and how to implement it. Acknowledging that more research is still needed, we identify opportunities for new studies that allow for better implementation of isolated deme strategies in the coming decades.

Zoo Biology
European Hematology Association (NL), Royal Zoological Society of Antwerp (BE), Bristol Zoological Society
Openalex Percentile: Top 12%
Genetic diversity and population structure
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Isolated Demes as a Genetic Management Strategy for Ex Situ Conservation Programs — Brian Zimmerman, Philippe Helsen, et al. · Zoo Biology (2026) | TGRS Research Map | TGRS