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Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants

Genome assemblies from diploid organisms create mosaic sequences alternating between parental alleles, which can create erroneous gene models and other problems. In animals, a popular strategy to generate haploid genome-resolved assemblies has been the sampling of (haploid) gametes, and the advent o...

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Autores principales: Shi, Dongqing, Wu, Jun, Tang, Haibao, Yin, Hao, Wang, Hongtao, Wang, Ran, Wang, Runze, Qian, Ming, Wu, Juyou, Qi, Kaijie, Xie, Zhihua, Wang, Zhiwen, Zhao, Xiang, Zhang, Shaoling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6836740/
https://www.ncbi.nlm.nih.gov/pubmed/31649061
http://dx.doi.org/10.1101/gr.251033.119
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author Shi, Dongqing
Wu, Jun
Tang, Haibao
Yin, Hao
Wang, Hongtao
Wang, Ran
Wang, Runze
Qian, Ming
Wu, Juyou
Qi, Kaijie
Xie, Zhihua
Wang, Zhiwen
Zhao, Xiang
Zhang, Shaoling
author_facet Shi, Dongqing
Wu, Jun
Tang, Haibao
Yin, Hao
Wang, Hongtao
Wang, Ran
Wang, Runze
Qian, Ming
Wu, Juyou
Qi, Kaijie
Xie, Zhihua
Wang, Zhiwen
Zhao, Xiang
Zhang, Shaoling
author_sort Shi, Dongqing
collection PubMed
description Genome assemblies from diploid organisms create mosaic sequences alternating between parental alleles, which can create erroneous gene models and other problems. In animals, a popular strategy to generate haploid genome-resolved assemblies has been the sampling of (haploid) gametes, and the advent of single-cell sequencing has further advanced such methods. However, several challenges for the isolation and amplification of DNA from plant gametes have limited such approaches in plants. Here, we combined a new approach for pollen protoplast isolation with a single-cell DNA amplification technique and then used a “barcoding” bioinformatics strategy to incorporate haploid-specific sequence data from 12 pollen cells, ultimately enabling the efficient and accurate phasing of the pear genome into its A and B haploid genomes. Beyond revealing that 8.12% of the genes in the pear reference genome feature mosaic assemblies and enabling a previously impossible analysis of allelic affects in pear gene expression, our new haploid genome assemblies provide high-resolution information about recombination during meiosis in pollen. Considering that outcrossing pear is an angiosperm species featuring very high heterozygosity, our method for rapidly phasing genome assemblies is potentially applicable to several yet-unsequenced outcrossing angiosperm species in nature.
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spelling pubmed-68367402019-11-20 Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants Shi, Dongqing Wu, Jun Tang, Haibao Yin, Hao Wang, Hongtao Wang, Ran Wang, Runze Qian, Ming Wu, Juyou Qi, Kaijie Xie, Zhihua Wang, Zhiwen Zhao, Xiang Zhang, Shaoling Genome Res Method Genome assemblies from diploid organisms create mosaic sequences alternating between parental alleles, which can create erroneous gene models and other problems. In animals, a popular strategy to generate haploid genome-resolved assemblies has been the sampling of (haploid) gametes, and the advent of single-cell sequencing has further advanced such methods. However, several challenges for the isolation and amplification of DNA from plant gametes have limited such approaches in plants. Here, we combined a new approach for pollen protoplast isolation with a single-cell DNA amplification technique and then used a “barcoding” bioinformatics strategy to incorporate haploid-specific sequence data from 12 pollen cells, ultimately enabling the efficient and accurate phasing of the pear genome into its A and B haploid genomes. Beyond revealing that 8.12% of the genes in the pear reference genome feature mosaic assemblies and enabling a previously impossible analysis of allelic affects in pear gene expression, our new haploid genome assemblies provide high-resolution information about recombination during meiosis in pollen. Considering that outcrossing pear is an angiosperm species featuring very high heterozygosity, our method for rapidly phasing genome assemblies is potentially applicable to several yet-unsequenced outcrossing angiosperm species in nature. Cold Spring Harbor Laboratory Press 2019-11 /pmc/articles/PMC6836740/ /pubmed/31649061 http://dx.doi.org/10.1101/gr.251033.119 Text en © 2019 Shi et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by/4.0/ This article, published in Genome Research, is available under a Creative Commons License (Attribution 4.0 International), as described at http://creativecommons.org/licenses/by/4.0/.
spellingShingle Method
Shi, Dongqing
Wu, Jun
Tang, Haibao
Yin, Hao
Wang, Hongtao
Wang, Ran
Wang, Runze
Qian, Ming
Wu, Juyou
Qi, Kaijie
Xie, Zhihua
Wang, Zhiwen
Zhao, Xiang
Zhang, Shaoling
Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants
title Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants
title_full Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants
title_fullStr Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants
title_full_unstemmed Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants
title_short Single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants
title_sort single-pollen-cell sequencing for gamete-based phased diploid genome assembly in plants
topic Method
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6836740/
https://www.ncbi.nlm.nih.gov/pubmed/31649061
http://dx.doi.org/10.1101/gr.251033.119
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