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Gardiner, A.

Publications and source records attributed to Gardiner, A..

3 recordsLinked to original sources

The relationship of genetic diversity and inbreeding to extinction risk across over 500 vertebrate diploid genomes

Genetics may help address the biodiversity crisis by providing information about genetic diversity and temporal changes in demography for species of interest. Advances in whole-genome sequencing create new opportunities for demographic analysis, even based on the two copies of a genome found in a single diploid individual. The Vertebrate Genomes Project (VGP) is generating high-quality, chromosome-level reference genomes across the full range of extant vertebrate species, with its first phase delivering assemblies spanning approximately 95% of vertebrate orders. Using 512 diploid VGP genomes, we quantified intra-species heterozygosity, runs of homozygosity (ROH), and inferred past effective population sizes (Ne) with the Pairwise Sequentially Markovian Coalescent (PSMC). Threatened species are more likely to exhibit lower heterozygosity and longer ROH, though there is large variation in both measures across all IUCN categories. Interestingly, PSMC suggests that estimated historical Ne several thousand generations ago is a better predictor of threatened status than the present day estimate. Co-analysing with life history traits, we found that marine species tend to have lower ROH content, while fossorial species show significantly higher inbreeding levels. Indeed, habitat and foraging strata are much stronger predictors of IUCN status than genetics, with estimated historical Ne providing a small but significant amount of additional information. Together, these results suggest that, while measures of genetic diversity are correlated with IUCN status, much of that correlation may derive from ecological factors such as habitat, with only a relatively small direct contribution. Nevertheless, reference genomes like those generated by the VGP can yield valuable information, like historical Ne, while facilitating population monitoring and management for species of interest.

genomics↗

Robust evidence for modest diversity loss across the K/Pg in neoselachians: Response to Guinot et al.

We reconstructed the neoselachian diversity over the past 145 million years using new occurrence dataset and DeepDive1-3. We recovered a small decline through the K/Pg following a steady increase during the Cretaceous, and a prolonged, substantial decline towards the present following a mid-Eocene peak2. Guinot et al. argue that our conclusions are compromised by problems in the underlying data and by the way extinction magnitude across the K/Pg was quantified. They cast doubt particularly on the pattern across the K/Pg, which they consider to be at odds with all previous analyses. They raise no issue with the Cretaceous trend, even though it was recovered with the same dataset and methods. We audited the alleged data issues reported in Guinot et al. and found that they mostly reflect operational choices (see Supplementary Information). However, we applied their data treatment and ran sensitivity tests to evaluate how this approach affects our results, specifically around the K/Pg. None of our tests recovered a diversity collapse for neoselachians during this interval. As such, we demonstrate that our findings are robust and consistent across different data treatments.

paleontology↗

FINS - A global occurrence dataset of fossil neoselachians from the Cretaceous to the Quaternary

MotivationModern sharks, rays and skates (Neoselachii) are a diverse, globally distributed, and ecologically important group. They possess a rich, geologically extensive, and well-documented fossil record that provides a powerful basis for studying their macroevolution, paleoecology and biogeography. However, addressing paleobiological questions require quantifying the fossil record trough occurrences, i.e., records of the presence of a taxon at a unique location in space and time. Although the Paleobiology Database (PBDB) offers an invaluable source of fossil occurrences, it still does not provide a complete compilation of neoselachian data. To facilitate exploring questions in quantitative paleobiology, here we present the Fossil Neoselachian (FINS) dataset--a comprehensive, systematically curated global synthesis of fossil occurrences spanning the past 145 million years. Main types of variables containedFINS consists of fossil occurrences, each linked to a collection (location where fossils were reported from) and a source (citation of the publications from which data was obtained). Occurrence data mostly consists of taxonomic variables (e.g., classification, names and ranks), status (extinct/extant) and abundance. Collection data provide geographic (e.g., country, ocean and paleo-coordinates) and geological (e.g., formation and age) variables. All data was subjected to a meticulous curation process, which is described through taxonomic and age validation variables. Spatial location and grainGlobal, with fossil occurrences recovered from all continents. Time period and grainFrom the Cretaceous to the Quaternary (145 - 0 Ma), with temporal resolution generally corresponding to geological stages or epochs. Major taxa and level of measurementNeoselachians (superorders: Selachimorpha and Batoidea). FINS comprises 30,100 occurrences from 5,972 collections and 1,990 publications. It consists of 1,606 species, 512 genera, 88 families and 14 orders. Over 70% of occurrences are identified at the species level. Overall, FINS effectively doubles the number of neoselachian records previously available in the PBDB and substantially expands their geographic coverage, particularly in the Global South. Software formatThe dataset is provided an .xlsx spreadsheet with four tabs - Collections, Occurrences, References_Literature and References_PBDB.

paleontology↗