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A new method for long-read sequencing of animal mitochondrial genomes: application to the identification of equine mitochondrial DNA variants

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Abstract Background We present here an approach to sequence whole mitochondrial genomes using nanopore long-read sequencing. Our method relies on the selective elimination of nuclear DNA using an exonuclease treatment and on the amplification of circular mitochondrial DNA using a multiple displacement amplification step. Results We optimized each preparative step to obtain a 100 million-fold enrichment of horse mitochondrial DNA relative to nuclear DNA. We sequenced these amplified mitochondrial DNA using nanopore sequencing technology and obtained mitochondrial DNA reads that represented up to half of the sequencing output. The sequence reads were 2.3 kb of mean length and provided an even coverage of the mitochondrial genome. Long-reads spanning half or more of the whole mtDNA provided a coverage that varied between 118X and 488X. Finally, we identified SNPs with a precision of 98.1%; recall of 85.2% and a F1-score of 0.912. Conclusions Our analyses show that our method to amplify mtDNA and to sequence it using the nanopore technology is usable for mitochondrial DNA variant analysis. With minor modifications, this approach could easily be applied to other large circular DNA molecules.
Title: A new method for long-read sequencing of animal mitochondrial genomes: application to the identification of equine mitochondrial DNA variants
Description:
Abstract Background We present here an approach to sequence whole mitochondrial genomes using nanopore long-read sequencing.
Our method relies on the selective elimination of nuclear DNA using an exonuclease treatment and on the amplification of circular mitochondrial DNA using a multiple displacement amplification step.
Results We optimized each preparative step to obtain a 100 million-fold enrichment of horse mitochondrial DNA relative to nuclear DNA.
We sequenced these amplified mitochondrial DNA using nanopore sequencing technology and obtained mitochondrial DNA reads that represented up to half of the sequencing output.
The sequence reads were 2.
3 kb of mean length and provided an even coverage of the mitochondrial genome.
Long-reads spanning half or more of the whole mtDNA provided a coverage that varied between 118X and 488X.
Finally, we identified SNPs with a precision of 98.
1%; recall of 85.
2% and a F1-score of 0.
912.
Conclusions Our analyses show that our method to amplify mtDNA and to sequence it using the nanopore technology is usable for mitochondrial DNA variant analysis.
With minor modifications, this approach could easily be applied to other large circular DNA molecules.

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