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The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae)

The genus Rhododendron (Ericaceae), which includes horticulturally important plants such as azaleas, is a highly diverse and widely distributed genus of >1,000 species. Here, we report the chromosome-scale de novo assembly and genome annotation of Rhododendron williamsianum as a basis for continu...

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Autores principales: Soza, Valerie L, Lindsley, Dale, Waalkes, Adam, Ramage, Elizabeth, Patwardhan, Rupali P, Burton, Joshua N, Adey, Andrew, Kumar, Akash, Qiu, Ruolan, Shendure, Jay, Hall, Benjamin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6907397/
https://www.ncbi.nlm.nih.gov/pubmed/31702783
http://dx.doi.org/10.1093/gbe/evz245
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author Soza, Valerie L
Lindsley, Dale
Waalkes, Adam
Ramage, Elizabeth
Patwardhan, Rupali P
Burton, Joshua N
Adey, Andrew
Kumar, Akash
Qiu, Ruolan
Shendure, Jay
Hall, Benjamin
author_facet Soza, Valerie L
Lindsley, Dale
Waalkes, Adam
Ramage, Elizabeth
Patwardhan, Rupali P
Burton, Joshua N
Adey, Andrew
Kumar, Akash
Qiu, Ruolan
Shendure, Jay
Hall, Benjamin
author_sort Soza, Valerie L
collection PubMed
description The genus Rhododendron (Ericaceae), which includes horticulturally important plants such as azaleas, is a highly diverse and widely distributed genus of >1,000 species. Here, we report the chromosome-scale de novo assembly and genome annotation of Rhododendron williamsianum as a basis for continued study of this large genus. We created multiple short fragment genomic libraries, which were assembled using ALLPATHS-LG. This was followed by contiguity preserving transposase sequencing (CPT-seq) and fragScaff scaffolding of a large fragment library, which improved the assembly by decreasing the number of scaffolds and increasing scaffold length. Chromosome-scale scaffolding was performed by proximity-guided assembly (LACHESIS) using chromatin conformation capture (Hi-C) data. Chromosome-scale scaffolding was further refined and linkage groups defined by restriction-site associated DNA (RAD) sequencing of the parents and progeny of a genetic cross. The resulting linkage map confirmed the LACHESIS clustering and ordering of scaffolds onto chromosomes and rectified large-scale inversions. Assessments of the R. williamsianum genome assembly and gene annotation estimate them to be 89% and 79% complete, respectively. Predicted coding sequences from genome annotation were used in syntenic analyses and for generating age distributions of synonymous substitutions/site between paralgous gene pairs, which identified whole-genome duplications (WGDs) in R. williamsianum. We then analyzed other publicly available Ericaceae genomes for shared WGDs. Based on our spatial and temporal analyses of paralogous gene pairs, we find evidence for two shared, ancient WGDs in Rhododendron and Vaccinium (cranberry/blueberry) members that predate the Ericaceae family and, in one case, the Ericales order.
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spelling pubmed-69073972019-12-16 The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae) Soza, Valerie L Lindsley, Dale Waalkes, Adam Ramage, Elizabeth Patwardhan, Rupali P Burton, Joshua N Adey, Andrew Kumar, Akash Qiu, Ruolan Shendure, Jay Hall, Benjamin Genome Biol Evol Research Article The genus Rhododendron (Ericaceae), which includes horticulturally important plants such as azaleas, is a highly diverse and widely distributed genus of >1,000 species. Here, we report the chromosome-scale de novo assembly and genome annotation of Rhododendron williamsianum as a basis for continued study of this large genus. We created multiple short fragment genomic libraries, which were assembled using ALLPATHS-LG. This was followed by contiguity preserving transposase sequencing (CPT-seq) and fragScaff scaffolding of a large fragment library, which improved the assembly by decreasing the number of scaffolds and increasing scaffold length. Chromosome-scale scaffolding was performed by proximity-guided assembly (LACHESIS) using chromatin conformation capture (Hi-C) data. Chromosome-scale scaffolding was further refined and linkage groups defined by restriction-site associated DNA (RAD) sequencing of the parents and progeny of a genetic cross. The resulting linkage map confirmed the LACHESIS clustering and ordering of scaffolds onto chromosomes and rectified large-scale inversions. Assessments of the R. williamsianum genome assembly and gene annotation estimate them to be 89% and 79% complete, respectively. Predicted coding sequences from genome annotation were used in syntenic analyses and for generating age distributions of synonymous substitutions/site between paralgous gene pairs, which identified whole-genome duplications (WGDs) in R. williamsianum. We then analyzed other publicly available Ericaceae genomes for shared WGDs. Based on our spatial and temporal analyses of paralogous gene pairs, we find evidence for two shared, ancient WGDs in Rhododendron and Vaccinium (cranberry/blueberry) members that predate the Ericaceae family and, in one case, the Ericales order. Oxford University Press 2019-11-18 /pmc/articles/PMC6907397/ /pubmed/31702783 http://dx.doi.org/10.1093/gbe/evz245 Text en © The Author(s) 2019. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Soza, Valerie L
Lindsley, Dale
Waalkes, Adam
Ramage, Elizabeth
Patwardhan, Rupali P
Burton, Joshua N
Adey, Andrew
Kumar, Akash
Qiu, Ruolan
Shendure, Jay
Hall, Benjamin
The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae)
title The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae)
title_full The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae)
title_fullStr The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae)
title_full_unstemmed The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae)
title_short The Rhododendron Genome and Chromosomal Organization Provide Insight into Shared Whole-Genome Duplications across the Heath Family (Ericaceae)
title_sort rhododendron genome and chromosomal organization provide insight into shared whole-genome duplications across the heath family (ericaceae)
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6907397/
https://www.ncbi.nlm.nih.gov/pubmed/31702783
http://dx.doi.org/10.1093/gbe/evz245
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