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bioRxiv · 10.64898/2026.08.27.747638

A practical sampling strategy for biodiversity genomics of reptiles: The Cryptoblepharus pulcher assembly offers insights into the demise of a threatened relative

Abstract

Due to the sparse and uneven availability of genomic resources, it remains challenging to appraise genomic attributes for species of conservation concern. While long-read sequencing enables assessment of genetic diversity at unprecedented scale, accessing high-quality tissues remains a challenge for non-model species. Here, we explore an alternative sampling strategy for tissues where "gold-standard" cryopreservation is infeasible. Focusing on the Australian scincid lizard Cryptoblepharus pulcher, we compare DNA obtained from various ethanol-preserved tissue types and DNA extraction kits, and ask whether high-molecular weight DNA can still be retrieved. PacBio HiFi sequencing of the most promising sample yielded a highly contiguous reference-level assembly, validating this approach in vertebrates, specifically lizards. After scaffolding the assembly to chromosome-level, we then used a comparative approach to shed light on the evolution and demise of C. egeriae, a closely related, now Extinct-in-the-Wild species. Surprisingly, despite being a wide-spread continental analogue with a similar ecology, C. pulcher has lower genetic diversity and long-term historical population size than C. egeriae, an island endemic. However, C. pulcher also shows fewer runs-of-homozygosity, supporting prior reports that C. egeriae experienced recent inbreeding. Together, these findings demonstrate that a practical and cost-effective preservation strategy can still yield high-quality genomic resources in vertebrates, as well as valuable insights that are relevant in an age of biodiversity decline.

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BibTeXRIS

Dodge, T. O., Ernst, M., Oliver, P., Blom, M. P. K.. 2026-08-28. A practical sampling strategy for biodiversity genomics of reptiles: The Cryptoblepharus pulcher assembly offers insights into the demise of a threatened relative. https://doi.org/10.64898/2026.08.27.747638

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