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Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification

The regulation of gene transcription is fundamental to the existence of complex multicellular organisms such as humans. Although it is widely recognized that much of gene regulation is controlled by gene-specific protein-DNA interactions, there presently exists little in the way of tools to identify...

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Autores principales: Wu, Cheng-Hsien, Chen, Siyuan, Shortreed, Michael R., Kreitinger, Gloria M., Yuan, Yuan, Frey, Brian L., Zhang, Yi, Mirza, Shama, Cirillo, Lisa A., Olivier, Michael, Smith, Lloyd M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3197616/
https://www.ncbi.nlm.nih.gov/pubmed/22028835
http://dx.doi.org/10.1371/journal.pone.0026217
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author Wu, Cheng-Hsien
Chen, Siyuan
Shortreed, Michael R.
Kreitinger, Gloria M.
Yuan, Yuan
Frey, Brian L.
Zhang, Yi
Mirza, Shama
Cirillo, Lisa A.
Olivier, Michael
Smith, Lloyd M.
author_facet Wu, Cheng-Hsien
Chen, Siyuan
Shortreed, Michael R.
Kreitinger, Gloria M.
Yuan, Yuan
Frey, Brian L.
Zhang, Yi
Mirza, Shama
Cirillo, Lisa A.
Olivier, Michael
Smith, Lloyd M.
author_sort Wu, Cheng-Hsien
collection PubMed
description The regulation of gene transcription is fundamental to the existence of complex multicellular organisms such as humans. Although it is widely recognized that much of gene regulation is controlled by gene-specific protein-DNA interactions, there presently exists little in the way of tools to identify proteins that interact with the genome at locations of interest. We have developed a novel strategy to address this problem, which we refer to as GENECAPP, for Global ExoNuclease-based Enrichment of Chromatin-Associated Proteins for Proteomics. In this approach, formaldehyde cross-linking is employed to covalently link DNA to its associated proteins; subsequent fragmentation of the DNA, followed by exonuclease digestion, produces a single-stranded region of the DNA that enables sequence-specific hybridization capture of the protein-DNA complex on a solid support. Mass spectrometric (MS) analysis of the captured proteins is then used for their identification and/or quantification. We show here the development and optimization of GENECAPP for an in vitro model system, comprised of the murine insulin-like growth factor-binding protein 1 (IGFBP1) promoter region and FoxO1, a member of the forkhead rhabdomyosarcoma (FoxO) subfamily of transcription factors, which binds specifically to the IGFBP1 promoter. This novel strategy provides a powerful tool for studies of protein-DNA and protein-protein interactions.
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spelling pubmed-31976162011-10-25 Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification Wu, Cheng-Hsien Chen, Siyuan Shortreed, Michael R. Kreitinger, Gloria M. Yuan, Yuan Frey, Brian L. Zhang, Yi Mirza, Shama Cirillo, Lisa A. Olivier, Michael Smith, Lloyd M. PLoS One Research Article The regulation of gene transcription is fundamental to the existence of complex multicellular organisms such as humans. Although it is widely recognized that much of gene regulation is controlled by gene-specific protein-DNA interactions, there presently exists little in the way of tools to identify proteins that interact with the genome at locations of interest. We have developed a novel strategy to address this problem, which we refer to as GENECAPP, for Global ExoNuclease-based Enrichment of Chromatin-Associated Proteins for Proteomics. In this approach, formaldehyde cross-linking is employed to covalently link DNA to its associated proteins; subsequent fragmentation of the DNA, followed by exonuclease digestion, produces a single-stranded region of the DNA that enables sequence-specific hybridization capture of the protein-DNA complex on a solid support. Mass spectrometric (MS) analysis of the captured proteins is then used for their identification and/or quantification. We show here the development and optimization of GENECAPP for an in vitro model system, comprised of the murine insulin-like growth factor-binding protein 1 (IGFBP1) promoter region and FoxO1, a member of the forkhead rhabdomyosarcoma (FoxO) subfamily of transcription factors, which binds specifically to the IGFBP1 promoter. This novel strategy provides a powerful tool for studies of protein-DNA and protein-protein interactions. Public Library of Science 2011-10-20 /pmc/articles/PMC3197616/ /pubmed/22028835 http://dx.doi.org/10.1371/journal.pone.0026217 Text en Wu et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Wu, Cheng-Hsien
Chen, Siyuan
Shortreed, Michael R.
Kreitinger, Gloria M.
Yuan, Yuan
Frey, Brian L.
Zhang, Yi
Mirza, Shama
Cirillo, Lisa A.
Olivier, Michael
Smith, Lloyd M.
Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification
title Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification
title_full Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification
title_fullStr Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification
title_full_unstemmed Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification
title_short Sequence-Specific Capture of Protein-DNA Complexes for Mass Spectrometric Protein Identification
title_sort sequence-specific capture of protein-dna complexes for mass spectrometric protein identification
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3197616/
https://www.ncbi.nlm.nih.gov/pubmed/22028835
http://dx.doi.org/10.1371/journal.pone.0026217
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