Workflow for multiplex microsatellite panel development and sample preparation for robust amplicon sequencing of low-template and degraded DNA: validation for non-invasive genotyping in three large carnivore species
De Barba, M.; Boyer, F.; Baur, M.; Konec, M.; Pazhenkova, E.; Remollino, N.; Stoffel, C.; Boljte, B.; Miquel, C.; Skrbinsek, T.; Taberlet, P.; Fumagalli, L.
Show abstract
High-throughput amplicon sequencing has transformed microsatellite (STR) genotyping by overcoming many of the limitations of fragment-length analysis, enabling more accurate, cost-effective, and standardized genotyping. Yet, protocols specifically designed for high-throughput sequencing (HTS)-based STR genotyping from low-template and degraded DNA remain scarce, despite the prevalence of these challenging sample types in ecological and conservation contexts. We present a methodology for the de novo development of robust STR multiplex panels together with a laboratory protocol for efficient and reliable STR genotyping by sequencing with low quantity and quality DNA samples. The protocol comprises (i) an automated bioinformatic pipeline to design large sets of short tetranucleotide markers optimized for multiplex amplicon sequencing of degraded and low-template DNA; (ii) guidelines for efficient in vitro optimization of multiplex amplification using directly low quantity/quality template DNA; and (iii) a library preparation procedure that improves detection of low-level allele signal while enabling quality assessment of STR amplicon sequencing under limiting DNA conditions. We demonstrate the approach by developing and validating STR panels for non-invasive genotyping of three large carnivore species: a 44-plex for the grey wolf (Canis lupus), a 41-plex for the Eurasian lynx (Lynx lynx), and a 30-plex for the brown bear (Ursus arctos). Multiplex performance was high, with [≥]91% of samples successfully genotyped at [≥]50% of loci (allele size range 28-110 bp across panels) and correctly assigned to known individuals, negligible levels of noise in the controls, and high discriminatory power (PIDsibs [≤]2.4 x 1e-12), also owing to sequence variation among same-length alleles at 15-50% of loci. The approach is broadly applicable to animal and plant species, a wide range of sample types, and large-scale analysis such as genetic monitoring. Our study reinforces the value of STR amplicon sequencing for ecological and conservation applications while highlighting the importance of marker design and laboratory workflows tailored to HTS-based genotyping for accurate and efficient implementation.
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