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Molecular Ecology · 2025 · Vol. 34 · Issue 23 · Wiley
Conservation genomics has increasingly transitioned from a promising concept to a science that integrates a range of advanced analytical approaches, providing new insights into inbreeding, genetic load, demographic history and adaptive divergence in species of conservation concern. Yet, questions remain about how effectively these advances translate into practical conservation action. This Special Issue, Conservation Genomics—...
Molecular Ecology · 2025 · Vol. 34 · Issue 19 · Wiley
Salmonids have a remarkable ability to form sympatric morphs after postglacial colonisation of freshwater lakes. These morphs often differ in morphology, feeding and spawning behaviour. Here, we explored the genetic basis of morph differentiation in Arctic charr ( n = 283) by first establishing a high‐quality reference genome and then using this in whole genome sequencing of distinct morphs present in two Norwegian and two Ice...
Conservation Genetics · 2024 · Vol. 25 · Issue 6 · Springer
Genetic diversity is essential for maintaining healthy populations and ecosystems. Several approaches have recently been developed to evaluate population genetic trends without necessarily collecting new genetic data. Such “genetic diversity indicators” enable rapid, large-scale evaluation across dozens to thousands of species. Empirical genetic studies, when available, provide detailed information that is important for manage...
Ecology Letters · 2024 · Vol. 27 · Issue 7 · Wiley
Under the recently adopted Kunming‐Montreal Global Biodiversity Framework, 196 Parties committed to reporting the status of genetic diversity for all species. To facilitate reporting, three genetic diversity indicators were developed, two of which focus on processes contributing to genetic diversity conservation: maintaining genetically distinct populations and ensuring populations are large enough to maintain genetic diversit...
Conservation Genetics · 2024 · Vol. 25 · Issue 2 · Springer
Genetic diversity is fundamental to the adaptive potential and survival of species. Although its importance has long been recognized in science, it has a history of neglect within policy, until now. The new Global Biodiversity Framework recently adopted by the Convention on Biological Diversity, states that genetic diversity must be maintained at levels assuring adaptive potential of populations, and includes metrics for syste...
Molecular Ecology · 2024 · Vol. 33 · Issue 2 · Wiley
International policy recently adopted commitments to maintain genetic diversity in wild populations to secure their adaptive potential, including metrics to monitor temporal trends in genetic diversity – so‐called indicators. A national programme for assessing trends in genetic diversity was recently initiated in Sweden. Relating to this effort, we systematically assess contemporary genome‐wide temporal trends (40 years) in wi...
Conservation Genetics · 2023 · Vol. 24 · Issue 4 · Springer
Population extinction is ubiquitous in all taxa. Such extirpations can reduce intraspecific diversity, but the extent to which genetic diversity of surviving populations are affected remains largely unclear. A key concept in this context is the effective population size ( N e ), which quantifies the rate at which genetic diversity within populations is lost. N e was developed for single, isolated populations while many natural...
Conservation Genetics · 2023 · Vol. 24 · Issue 2 · Springer
Genetic diversity among and within populations of all species is necessary for people and nature to survive and thrive in a changing world. Over the past three years, commitments for conserving genetic diversity have become more ambitious and specific under the Convention on Biological Diversity’s (CBD) draft post-2020 global biodiversity framework (GBF). This Perspective article comments on how goals and targets of the GBF ha...
Molecular Ecology · 2022 · Vol. 31 · Issue 24 · Wiley
Genetic diversity is the basis for population adaptation and long‐term survival, yet rarely considered in biodiversity monitoring. One key issue is the need for useful and straightforward indicators of genetic diversity. We monitored genetic diversity over 40 years (1970–2010) in metapopulations of brown trout ( Salmo trutta ) inhabiting 27 small mountain lakes representing 10 lake systems in central Sweden using >1200 fish pe...
Molecular Ecology · 2022 · Vol. 31 · Issue 2 · Wiley
The sympatric existence of genetically distinguishable populations of the same species remains a puzzle in ecology. Coexisting salmonid fish populations are known from over 100 freshwater lakes. Most studies of sympatric populations have used limited numbers of genetic markers making it unclear if genetic divergence involves certain parts of the genome. We returned to the first reported case of salmonid sympatry, initially det...
Conservation Biology · 2019 · Vol. 33 · Issue 3 · Wiley
Article impact statement : Upgrading policy on, resources for, and knowledge and communication of genetic diversity closes the conservation‐genetics gap.
Molecular Ecology · 2019 · Vol. 28 · Issue 8 · Wiley
Estimation of effective population size ( N e ) from genetic marker data is a major focus for biodiversity conservation because it is essential to know at what rates inbreeding is increasing and additive genetic variation is lost. But are these the rates assessed when applying commonly used N e estimation techniques? Here we use recently developed analytical tools and demonstrate that in the case of substructured populations t...
Molecular Ecology · 2018 · Vol. 27 · Issue 20 · Wiley
Sympatric populations are conspecific populations that coexist spatially. They are of interest in evolutionary biology by representing the potential first steps of sympatric speciation and are important to identify and monitor in conservation management. Reviewing the literature pertaining to sympatric populations, we find that most cases of sympatry appear coupled to phenotypic divergence, implying ease of detection. In compa...