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result(s) for
"Conservation genomics"
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Genomic basis for drought resistance in European beech forests threatened by climate change
by
Markus Pfenninger
,
Nico Blüthgen
,
Cosima Caliendo
in
Acclimatization
,
Acclimatization - genetics
,
Amino acids
2021
In the course of global climate change, Central Europe is experiencing more frequent and prolonged periods of drought. The drought years 2018 and 2019 affected European beeches ( Fagus sylvatica L.) differently: even in the same stand, drought-damaged trees neighboured healthy trees, suggesting that the genotype rather than the environment was responsible for this conspicuous pattern. We used this natural experiment to study the genomic basis of drought resistance with Pool-GWAS. Contrasting the extreme phenotypes identified 106 significantly associated single-nucleotide polymorphisms (SNPs) throughout the genome. Most annotated genes with associated SNPs (>70%) were previously implicated in the drought reaction of plants. Non-synonymous substitutions led either to a functional amino acid exchange or premature termination. A non-parametric machine learning approach on 98 validation samples yielded 20 informative loci which allowed an 88% prediction probability of the drought phenotype. Drought resistance in European beech is a moderately polygenic trait that should respond well to natural selection, selective management, and breeding. Climate change is having a serious impact on many ecosystems. In the summer of 2018 and 2019, around two thirds of European beech trees were damaged or killed by extreme drought. It is critical to keep these beech woods healthy, as they are central to the survival of over 6,000 other species of animals and plants. The level of damage caused by the drought varied between forests. However, not all the trees in each forest responded in the same way, with severely damaged trees often sitting next to fully healthy ones. This suggests that the genetic make-up of each tree determines how well it can adapt to drought rather than its local environment. To investigate this further, Pfenninger et al. studied the genome of over 400 European beech trees from the Hesse region in Germany. The samples came from pairs of neighbouring trees that had responded differently to the droughts. The analysis found more than 80 parts of the genome that differed between healthy and damaged trees. Pfenninger et al. then used this information to create a genetic test which can quickly and inexpensively predict how well an individual beech tree might survive in a drought. Applying this test to another 92 trees revealed that it can reliably detect which ones were healthy and which ones were damaged. Beech forests are typically managed by private owners, agencies or breeders that could use this genetic test to select and reproduce trees that are better adapted to drought. The goal now is to develop the test so that it can be used more widely to manage European beech trees and potentially other species.
Journal Article
Reference Genomes from Distantly Related Species Can Be Used for Discovery of Single Nucleotide Polymorphisms to Inform Conservation Management
by
Hoeppner, Marc P.
,
Brown, Liz
,
Maloney, Richard F.
in
Birds
,
Conservation
,
Endangered & extinct species
2018
Threatened species recovery programmes benefit from incorporating genomic data into conservation management strategies to enhance species recovery. However, a lack of readily available genomic resources, including conspecific reference genomes, often limits the inclusion of genomic data. Here, we investigate the utility of closely related high-quality reference genomes for single nucleotide polymorphism (SNP) discovery using the critically endangered kakī/black stilt (Himantopus novaezelandiae) and four Charadriiform reference genomes as proof of concept. We compare diversity estimates (i.e., nucleotide diversity, individual heterozygosity, and relatedness) based on kakī SNPs discovered from genotyping-by-sequencing and whole genome resequencing reads mapped to conordinal (killdeer, Charadrius vociferus), confamilial (pied avocet, Recurvirostra avosetta), congeneric (pied stilt, Himantopus himantopus) and conspecific reference genomes. Results indicate that diversity estimates calculated from SNPs discovered using closely related reference genomes correlate significantly with estimates calculated from SNPs discovered using a conspecific genome. Congeneric and confamilial references provide higher correlations and more similar measures of nucleotide diversity, individual heterozygosity, and relatedness. While conspecific genomes may be necessary to address other questions in conservation, SNP discovery using high-quality reference genomes of closely related species is a cost-effective approach for estimating diversity measures in threatened species.
Journal Article
Mitochondrial genome structure and composition in 70 fishes: a key resource for fisheries management in the South Atlantic
by
Henning, Frederico
,
Solé-Cava, Antonio Mateo
,
D’Elia, Ananda Krishna Pereira
in
Analysis
,
Animal Genetics and Genomics
,
Animals
2024
Background
Phylogenetic gaps of public databases of reference sequences are a major obstacle for comparative genomics and management of marine resources, particularly in the Global South, where economically important fisheries and conservation flagship species often lack closely-related references. We applied target-enrichment to obtain complete mitochondrial genomes of marine ichthyofauna from the Brazilian coast selected based on economic significance, conservation status and lack of phylogenetically-close references. These included sardines (Dorosomatidae, Alosidae), mackerels (Scombridae) croakers (Sciaenidae), groupers (Epinephelidae) and snappers (Lutjanidae).
Results
Custom baits were designed to enrich mitochondrial DNA across a broad phylogenetic range of fishes. Sequencing generated approximately 100k reads per sample, which were assembled in a total of 70 complete mitochondrial genomes and include fifty-two new additions to GenBank, including five species with no previous mitochondrial data. Departures from the typical gene content and order occurred in only three taxa and mostly involved tRNA gene duplications. Start-codons for all genes, except Cytochrome C Oxidase subunit I (
COI
), were consistently ATG, whilst a wide range of stop-codons deviated from the prevailing TAA. Phylogenetic analysis confirmed assembly accuracy and revealed signs of cryptic diversification within the
Mullus
genus. Lineage delimitation methods using
Sardinella aurita
and
S. brasiliensis
mitochondrial genomes support a single Operational Taxonomic Unit.
Conclusions
Target enrichment was highly efficient, providing complete novel mitochondrial genomes with little sequencing effort. These sequences are deposited in public databases to enable subsequent studies in population genetics and adaptation of Latin American fish species and serve as a vital resource for conservation and management programs that rely on molecular data for species and genus-level identification.
Journal Article
A Fast, Reproducible, High-throughput Variant Calling Workflow for Population Genomics
by
Gregg W C Thomas
,
Allison J Shultz
,
Erik Enbody
in
Animals
,
Availability
,
Comparative analysis
2024
Abstract
The increasing availability of genomic resequencing data sets and high-quality reference genomes across the tree of life present exciting opportunities for comparative population genomic studies. However, substantial challenges prevent the simple reuse of data across different studies and species, arising from variability in variant calling pipelines, data quality, and the need for computationally intensive reanalysis. Here, we present snpArcher, a flexible and highly efficient workflow designed for the analysis of genomic resequencing data in nonmodel organisms. snpArcher provides a standardized variant calling pipeline and includes modules for variant quality control, data visualization, variant filtering, and other downstream analyses. Implemented in Snakemake, snpArcher is user-friendly, reproducible, and designed to be compatible with high-performance computing clusters and cloud environments. To demonstrate the flexibility of this pipeline, we applied snpArcher to 26 public resequencing data sets from nonmammalian vertebrates. These variant data sets are hosted publicly to enable future comparative population genomic analyses. With its extensibility and the availability of public data sets, snpArcher will contribute to a broader understanding of genetic variation across species by facilitating the rapid use and reuse of large genomic data sets.
Journal Article
Extreme genomic erosion after recurrent demographic bottlenecks in the highly endangered Iberian lynx
by
Marcet-Houben, Marina
,
Martínez-Cruz, Begoña
,
Soriano, Laura
in
Adaptation
,
Animal Genetics and Genomics
,
Animals
2016
Background
Genomic studies of endangered species provide insights into their evolution and demographic history, reveal patterns of genomic erosion that might limit their viability, and offer tools for their effective conservation. The Iberian lynx (
Lynx pardinus
) is the most endangered felid and a unique example of a species on the brink of extinction.
Results
We generate the first annotated draft of the Iberian lynx genome and carry out genome-based analyses of lynx demography, evolution, and population genetics. We identify a series of severe population bottlenecks in the history of the Iberian lynx that predate its known demographic decline during the 20th century and have greatly impacted its genome evolution. We observe drastically reduced rates of weak-to-strong substitutions associated with GC-biased gene conversion and increased rates of fixation of transposable elements. We also find multiple signatures of genetic erosion in the two remnant Iberian lynx populations, including a high frequency of potentially deleterious variants and substitutions, as well as the lowest genome-wide genetic diversity reported so far in any species.
Conclusions
The genomic features observed in the Iberian lynx genome may hamper short- and long-term viability through reduced fitness and adaptive potential. The knowledge and resources developed in this study will boost the research on felid evolution and conservation genomics and will benefit the ongoing conservation and management of this emblematic species.
Journal Article
Genomic evidence for inbreeding depression and purging of deleterious genetic variation in Indian tigers
by
Jhala, Yadavendradev V.
,
Nigam, Parag
,
Zachariah, Arun
in
Alleles
,
Animal Distribution
,
Animal populations
2021
Increasing habitat fragmentation leads to wild populations becoming small, isolated, and threatened by inbreeding depression. However, small populations may be able to purge recessive deleterious alleles as they become expressed in homozygotes, thus reducing inbreeding depression and increasing population viability. We used whole-genome sequences from 57 tigers to estimate individual inbreeding and mutation load in a small–isolated and two large–connected populations in India. As expected, the small–isolated population had substantially higher average genomic inbreeding (F
ROH = 0.57) than the large–connected (F
ROH = 0.35 and F
ROH = 0.46) populations. The small–isolated population had the lowest loss-of-function mutation load, likely due to purging of highly deleterious recessive mutations. The large populations had lower missense mutation loads than the small–isolated population, but were not identical, possibly due to different demographic histories. While the number of the loss-of-function alleles in the small–isolated population was lower, these alleles were at higher frequencies and homozygosity than in the large populations. Together, our data and analyses provide evidence of 1) high mutation load, 2) purging, and 3) the highest predicted inbreeding depression, despite purging, in the small–isolated population. Frequency distributions of damaging and neutral alleles uncover genomic evidence that purifying selection has removed part of the mutation load across Indian tiger populations. These results provide genomic evidence for purifying selection in both small and large populations, but also suggest that the remaining deleterious alleles may have inbreeding-associated fitness costs. We suggest that genetic rescue from sources selected based on genome-wide differentiation could offset any possible impacts of inbreeding depression.
Journal Article
Considering adaptive genetic variation in climate change vulnerability assessment reduces species range loss projections
by
Alberdi, Antton
,
Ibáñez, Carlos
,
Forester, Brenna
in
Adaptation
,
Adaptation, Physiological - genetics
,
Animal biology
2019
Local adaptations can determine the potential of populations to respond to environmental changes, yet adaptive genetic variation is commonly ignored in models forecasting species vulnerability and biogeographical shifts under future climate change. Here we integrate genomic and ecological modeling approaches to identify genetic adaptations associated with climate in two cryptic forest bats. We then incorporate this information directly into forecasts of range changes under future climate change and assessment of population persistence through the spread of climate-adaptive genetic variation (evolutionary rescue potential). Considering climate-adaptive potential reduced range loss projections, suggesting that failure to account for intraspecific variability can result in overestimation of future losses. On the other hand, range overlap between species was projected to increase, indicating that interspecific competition is likely to play an important role in limiting species' future ranges. We show that although evolutionary rescue is possible, it depends on a population's adaptive capacity and connectivity. Hence, we stress the importance of incorporating genomic data and landscape connectivity in climate change vulnerability assessments and conservation management.
Journal Article
Recent Evolutionary History of Tigers Highlights Contrasting Roles of Genetic Drift and Selection
by
Miquelle, Dale
,
Gilbert, Martin
,
Borthakur, Udayan
in
Adaptation
,
Animals
,
Biological Evolution
2021
Species conservation can be improved by knowledge of evolutionary and genetic history. Tigers are among the most charismatic of endangered species and garner significant conservation attention. However, their evolutionary history and genomic variation remain poorly known, especially for Indian tigers. With 70% of the world’s wild tigers living in India, such knowledge is critical. We re-sequenced 65 individual tiger genomes representing most extant subspecies with a specific focus on tigers from India. As suggested by earlier studies, we found strong genetic differentiation between the putative tiger subspecies. Despite high total genomic diversity in India, individual tigers host longer runs of homozygosity, potentially suggesting recent inbreeding or founding events, possibly due to small and fragmented protected areas. We suggest the impacts of ongoing connectivity loss on inbreeding and persistence of Indian tigers be closely monitored. Surprisingly, demographic models suggest recent divergence (within the last 20,000 years) between subspecies and strong population bottlenecks. Amur tiger genomes revealed the strongest signals of selection related to metabolic adaptation to cold, whereas Sumatran tigers show evidence of weak selection for genes involved in body size regulation. We recommend detailed investigation of local adaptation in Amur and Sumatran tigers prior to initiating genetic rescue.
Journal Article
Population genomic assessment of semi-captive Asian elephants (Elephas maximus) from Myanmar: endangered species management and conservation implications
by
Gautam, Hansraj
,
Franco dos Santos, Diogo J.
,
O’Sullivan, Ronan James
in
Analysis
,
Animal Genetics and Genomics
,
Animal populations
2026
Background
Genomic approaches can provide critical insights into the genetic health of endangered species and the impacts of long-term management on semi-captive populations. Asian elephants (
Elephas maximus
), listed as Endangered, include a large semi-captive population in Myanmar that may represent an important reservoir of genetic diversity. However, their genetic structure, levels of inbreeding, and relatedness remain poorly characterized.
Results
We assembled the largest genomic dataset to date for semi-captive Asian elephants, comprising reduced representation data (RADseq,
N
= 261) and whole-genome data (WGS,
N
= 64). Heterozygosity values showed no significant differences between wild-born and captive-born individuals. Both RADseq and WGS data revealed low to medium levels of inbreeding and no evidence of an increase among younger generations. Population structure analyses confirmed a homogeneous population with no geographic-based genetic structure, likely reflecting management practices and natural mating with wild bulls. Demographic inference indicated a sharp decline in effective population size (
Ne
) between 60 and 30 generations ago, consistent with a long-term population contraction, and current
Ne
was estimated as being very low. Relatedness analyses identified 657 first-cousin or closer relationships, including 124 first-degree pairs. We also uncovered 35 previously undocumented father-offspring pairs with some males having disproportionately high reproductive success. To facilitate future monitoring, we developed three reduced relatedness-informative marker (RIM) panels. The smallest panel (274 SNPs) provided sufficient resolution for reliable parentage assignment at reduced cost.
Conclusions
Our findings demonstrate how genomic tools uncovered the genetic consequences of management of the largest semi-captive elephant population of Myanmar, highlighting the need for continuous monitoring to safeguard its genetic diversity. More broadly, this study illustrates how integrating WGS and RADseq can inform conservation planning for semi-managed populations and offers transferable approaches applicable to other endangered species.
Journal Article