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Chromosomes in the flow to simplify genome analysis

Nuclear genomes of human, animals, and plants are organized into subunits called chromosomes. When isolated into aqueous suspension, mitotic chromosomes can be classified using flow cytometry according to light scatter and fluorescence parameters. Chromosomes of interest can be purified by flow sort...

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Detalles Bibliográficos
Autores principales: Doležel, Jaroslav, Vrána, Jan, Šafář, Jan, Bartoš, Jan, Kubaláková, Marie, Šimková, Hana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer-Verlag 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431466/
https://www.ncbi.nlm.nih.gov/pubmed/22895700
http://dx.doi.org/10.1007/s10142-012-0293-0
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author Doležel, Jaroslav
Vrána, Jan
Šafář, Jan
Bartoš, Jan
Kubaláková, Marie
Šimková, Hana
author_facet Doležel, Jaroslav
Vrána, Jan
Šafář, Jan
Bartoš, Jan
Kubaláková, Marie
Šimková, Hana
author_sort Doležel, Jaroslav
collection PubMed
description Nuclear genomes of human, animals, and plants are organized into subunits called chromosomes. When isolated into aqueous suspension, mitotic chromosomes can be classified using flow cytometry according to light scatter and fluorescence parameters. Chromosomes of interest can be purified by flow sorting if they can be resolved from other chromosomes in a karyotype. The analysis and sorting are carried out at rates of 10(2)–10(4) chromosomes per second, and for complex genomes such as wheat the flow sorting technology has been ground-breaking in reducing genome complexity for genome sequencing. The high sample rate provides an attractive approach for karyotype analysis (flow karyotyping) and the purification of chromosomes in large numbers. In characterizing the chromosome complement of an organism, the high number that can be studied using flow cytometry allows for a statistically accurate analysis. Chromosome sorting plays a particularly important role in the analysis of nuclear genome structure and the analysis of particular and aberrant chromosomes. Other attractive but not well-explored features include the analysis of chromosomal proteins, chromosome ultrastructure, and high-resolution mapping using FISH. Recent results demonstrate that chromosome flow sorting can be coupled seamlessly with DNA array and next-generation sequencing technologies for high-throughput analyses. The main advantages are targeting the analysis to a genome region of interest and a significant reduction in sample complexity. As flow sorters can also sort single copies of chromosomes, shotgun sequencing DNA amplified from them enables the production of haplotype-resolved genome sequences. This review explains the principles of flow cytometric chromosome analysis and sorting (flow cytogenetics), discusses the major uses of this technology in genome analysis, and outlines future directions.
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spelling pubmed-34314662012-09-17 Chromosomes in the flow to simplify genome analysis Doležel, Jaroslav Vrána, Jan Šafář, Jan Bartoš, Jan Kubaláková, Marie Šimková, Hana Funct Integr Genomics Review Nuclear genomes of human, animals, and plants are organized into subunits called chromosomes. When isolated into aqueous suspension, mitotic chromosomes can be classified using flow cytometry according to light scatter and fluorescence parameters. Chromosomes of interest can be purified by flow sorting if they can be resolved from other chromosomes in a karyotype. The analysis and sorting are carried out at rates of 10(2)–10(4) chromosomes per second, and for complex genomes such as wheat the flow sorting technology has been ground-breaking in reducing genome complexity for genome sequencing. The high sample rate provides an attractive approach for karyotype analysis (flow karyotyping) and the purification of chromosomes in large numbers. In characterizing the chromosome complement of an organism, the high number that can be studied using flow cytometry allows for a statistically accurate analysis. Chromosome sorting plays a particularly important role in the analysis of nuclear genome structure and the analysis of particular and aberrant chromosomes. Other attractive but not well-explored features include the analysis of chromosomal proteins, chromosome ultrastructure, and high-resolution mapping using FISH. Recent results demonstrate that chromosome flow sorting can be coupled seamlessly with DNA array and next-generation sequencing technologies for high-throughput analyses. The main advantages are targeting the analysis to a genome region of interest and a significant reduction in sample complexity. As flow sorters can also sort single copies of chromosomes, shotgun sequencing DNA amplified from them enables the production of haplotype-resolved genome sequences. This review explains the principles of flow cytometric chromosome analysis and sorting (flow cytogenetics), discusses the major uses of this technology in genome analysis, and outlines future directions. Springer-Verlag 2012-08-16 2012 /pmc/articles/PMC3431466/ /pubmed/22895700 http://dx.doi.org/10.1007/s10142-012-0293-0 Text en © The Author(s) 2012 https://creativecommons.org/licenses/by/4.0/ This article is distributed under the terms of the Creative Commons Attribution License which permits any use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Review
Doležel, Jaroslav
Vrána, Jan
Šafář, Jan
Bartoš, Jan
Kubaláková, Marie
Šimková, Hana
Chromosomes in the flow to simplify genome analysis
title Chromosomes in the flow to simplify genome analysis
title_full Chromosomes in the flow to simplify genome analysis
title_fullStr Chromosomes in the flow to simplify genome analysis
title_full_unstemmed Chromosomes in the flow to simplify genome analysis
title_short Chromosomes in the flow to simplify genome analysis
title_sort chromosomes in the flow to simplify genome analysis
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431466/
https://www.ncbi.nlm.nih.gov/pubmed/22895700
http://dx.doi.org/10.1007/s10142-012-0293-0
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