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      Genome Assembly of Pyrocephalus nanus: A Step Toward the Genetic Conservation of the Endangered Little Vermilion Flycatcher of the Galapagos Islands

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          Abstract

          Incredibly powerful whole genome studies of conservation genetics, evolution, and biogeography become possible for non-model organisms when reference genomes are available. Here, we report the sequence and assembly of the whole genome of the little vermilion flycatcher ( Pyrocephalus nanus; family Tyrannidae), which is an endemic, endangered, and declining species of the Galapagos Islands. Using PacBio HiFi reads to assemble long contigs and Hi-C reads for scaffolding, we assembled a genome of 1.07 Gb comprising 267 contigs in 152 scaffolds, scaffold N50 74 M, contig N50 17.8 M, with 98.9% assigned to candidate chromosomal sequences and 99.72% of the BUSCO passeriformes 10,844 single-copy orthologs present. In addition, we used the novel HiFiMiTie pipeline to fully assemble and verify all portions of the mitochondrial genome from HiFi reads, obtaining a mitogenome of 17,151 bases, containing 13 protein-coding genes, 22 tRNAs, 2 rRNAs, two control regions, and a unique structure of control region duplication and repeats. These genomes will be a critical tool for much-needed studies of phylogenetics, population genetics, biogeography, and conservation genetics of Pyrocephalus and related genera. This genome and other studies that use it will be able to provide recommendations for conservation management, taxonomic improvement, and to understand the evolution and diversification of this genus within the Galapagos Islands.

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          Most cited references43

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          Fast and accurate short read alignment with Burrows–Wheeler transform

          Motivation: The enormous amount of short reads generated by the new DNA sequencing technologies call for the development of fast and accurate read alignment programs. A first generation of hash table-based methods has been developed, including MAQ, which is accurate, feature rich and fast enough to align short reads from a single individual. However, MAQ does not support gapped alignment for single-end reads, which makes it unsuitable for alignment of longer reads where indels may occur frequently. The speed of MAQ is also a concern when the alignment is scaled up to the resequencing of hundreds of individuals. Results: We implemented Burrows-Wheeler Alignment tool (BWA), a new read alignment package that is based on backward search with Burrows–Wheeler Transform (BWT), to efficiently align short sequencing reads against a large reference sequence such as the human genome, allowing mismatches and gaps. BWA supports both base space reads, e.g. from Illumina sequencing machines, and color space reads from AB SOLiD machines. Evaluations on both simulated and real data suggest that BWA is ∼10–20× faster than MAQ, while achieving similar accuracy. In addition, BWA outputs alignment in the new standard SAM (Sequence Alignment/Map) format. Variant calling and other downstream analyses after the alignment can be achieved with the open source SAMtools software package. Availability: http://maq.sourceforge.net Contact: rd@sanger.ac.uk
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            Cutadapt removes adapter sequences from high-throughput sequencing reads

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              BUSCO: assessing genome assembly and annotation completeness with single-copy orthologs.

              Genomics has revolutionized biological research, but quality assessment of the resulting assembled sequences is complicated and remains mostly limited to technical measures like N50.
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                Author and article information

                Contributors
                Role: Associate Editor
                Journal
                Genome Biol Evol
                Genome Biol Evol
                gbe
                Genome Biology and Evolution
                Oxford University Press (UK )
                1759-6653
                May 2024
                23 April 2024
                23 April 2024
                : 16
                : 5
                : evae083
                Affiliations
                Department of Behavioral and Cognitive Biology, University of Vienna , Vienna 1030, Austria
                Charles Darwin Research Station, Charles Darwin Foundation , Santa Cruz, Galapagos, Ecuador
                Institute for Biodiversity Sciences and Sustainability, California Academy of Sciences , San Francisco, CA 94118, USA
                Institute for Biodiversity Sciences and Sustainability, California Academy of Sciences , San Francisco, CA 94118, USA
                Institute for Biodiversity Sciences and Sustainability, California Academy of Sciences , San Francisco, CA 94118, USA
                Institute for Biodiversity Sciences and Sustainability, California Academy of Sciences , San Francisco, CA 94118, USA
                Institute for Biodiversity Sciences and Sustainability, California Academy of Sciences , San Francisco, CA 94118, USA
                Author notes
                Corresponding author: E-mail: davidanchundia@ 123456gmail.com .
                Author information
                https://orcid.org/0000-0003-2283-5634
                https://orcid.org/0000-0002-7782-6041
                https://orcid.org/0000-0002-7473-9727
                https://orcid.org/0000-0001-8942-1554
                Article
                evae083
                10.1093/gbe/evae083
                11077314
                38652799
                f33a1c64-6d67-45e2-8d3b-c3527f7a9f72
                © The Author(s) 2024. Published by Oxford University Press on behalf of Society for Molecular Biology and Evolution.

                This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.

                History
                : 13 April 2024
                : 08 May 2024
                Page count
                Pages: 8
                Categories
                Genome Resource
                AcademicSubjects/SCI01130
                AcademicSubjects/SCI01140

                Genetics
                pyrocephalus nanus,tyrannidae genome,galapagos,vermilion flycatcher
                Genetics
                pyrocephalus nanus, tyrannidae genome, galapagos, vermilion flycatcher

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