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Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells

BACKGROUND: Transcription by RNA polymerase II is regulated at many steps including initiation, promoter release, elongation and termination. Accumulation of RNA polymerase II at particular locations across genes can be indicative of sites of regulation. RNA polymerase II is thought to accumulate at...

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Autores principales: Brodsky, Alexander S, Meyer, Clifford A, Swinburne, Ian A, Hall, Giles, Keenan, Benjamin J, Liu, Xiaole S, Fox, Edward A, Silver, Pamela A
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1273631/
https://www.ncbi.nlm.nih.gov/pubmed/16086846
http://dx.doi.org/10.1186/gb-2005-6-8-r64
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author Brodsky, Alexander S
Meyer, Clifford A
Swinburne, Ian A
Hall, Giles
Keenan, Benjamin J
Liu, Xiaole S
Fox, Edward A
Silver, Pamela A
author_facet Brodsky, Alexander S
Meyer, Clifford A
Swinburne, Ian A
Hall, Giles
Keenan, Benjamin J
Liu, Xiaole S
Fox, Edward A
Silver, Pamela A
author_sort Brodsky, Alexander S
collection PubMed
description BACKGROUND: Transcription by RNA polymerase II is regulated at many steps including initiation, promoter release, elongation and termination. Accumulation of RNA polymerase II at particular locations across genes can be indicative of sites of regulation. RNA polymerase II is thought to accumulate at the promoter and at sites of co-transcriptional alternative splicing where the rate of RNA synthesis slows. RESULTS: To further understand transcriptional regulation at a global level, we determined the distribution of RNA polymerase II within regions of the human genome designated by the ENCODE project. Hypophosphorylated RNA polymerase II localizes almost exclusively to 5' ends of genes. On the other hand, localization of total RNA polymerase II reveals a variety of distinct landscapes across many genes with 74% of the observed enriched locations at exons. RNA polymerase II accumulates at many annotated constitutively spliced exons, but is biased for alternatively spliced exons. Finally, RNA polymerase II is also observed at locations not in gene regions. CONCLUSION: Localizing RNA polymerase II across many millions of base pairs in the human genome identifies novel sites of transcription and provides insights into the regulation of transcription elongation. These data indicate that RNA polymerase II accumulates most often at exons during transcription. Thus, a major factor of transcription elongation control in mammalian cells is the coordination of transcription and pre-mRNA processing to define exons.
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spelling pubmed-12736312005-10-29 Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells Brodsky, Alexander S Meyer, Clifford A Swinburne, Ian A Hall, Giles Keenan, Benjamin J Liu, Xiaole S Fox, Edward A Silver, Pamela A Genome Biol Research BACKGROUND: Transcription by RNA polymerase II is regulated at many steps including initiation, promoter release, elongation and termination. Accumulation of RNA polymerase II at particular locations across genes can be indicative of sites of regulation. RNA polymerase II is thought to accumulate at the promoter and at sites of co-transcriptional alternative splicing where the rate of RNA synthesis slows. RESULTS: To further understand transcriptional regulation at a global level, we determined the distribution of RNA polymerase II within regions of the human genome designated by the ENCODE project. Hypophosphorylated RNA polymerase II localizes almost exclusively to 5' ends of genes. On the other hand, localization of total RNA polymerase II reveals a variety of distinct landscapes across many genes with 74% of the observed enriched locations at exons. RNA polymerase II accumulates at many annotated constitutively spliced exons, but is biased for alternatively spliced exons. Finally, RNA polymerase II is also observed at locations not in gene regions. CONCLUSION: Localizing RNA polymerase II across many millions of base pairs in the human genome identifies novel sites of transcription and provides insights into the regulation of transcription elongation. These data indicate that RNA polymerase II accumulates most often at exons during transcription. Thus, a major factor of transcription elongation control in mammalian cells is the coordination of transcription and pre-mRNA processing to define exons. BioMed Central 2005 2005-07-15 /pmc/articles/PMC1273631/ /pubmed/16086846 http://dx.doi.org/10.1186/gb-2005-6-8-r64 Text en Copyright © 2005 Brodsky et al.; licensee BioMed Central Ltd.
spellingShingle Research
Brodsky, Alexander S
Meyer, Clifford A
Swinburne, Ian A
Hall, Giles
Keenan, Benjamin J
Liu, Xiaole S
Fox, Edward A
Silver, Pamela A
Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells
title Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells
title_full Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells
title_fullStr Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells
title_full_unstemmed Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells
title_short Genomic mapping of RNA polymerase II reveals sites of co-transcriptional regulation in human cells
title_sort genomic mapping of rna polymerase ii reveals sites of co-transcriptional regulation in human cells
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1273631/
https://www.ncbi.nlm.nih.gov/pubmed/16086846
http://dx.doi.org/10.1186/gb-2005-6-8-r64
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