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A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting

During microRNA (miRNA) biogenesis, the Microprocessor complex (MC), composed minimally of Drosha, an RNaseIII enzyme, and DGCR8, a double-stranded RNA-binding protein, cleaves the primary-miRNA (pri-miRNA) to release the pre-miRNA stem–loop structure. Size-exclusion chromatography of the MC, isolat...

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Autores principales: Herbert, Kristina M., Sarkar, Susanta K., Mills, Maria, Delgado De la Herran, Hilda C., Neuman, Keir C., Steitz, Joan A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4712668/
https://www.ncbi.nlm.nih.gov/pubmed/26683315
http://dx.doi.org/10.1261/rna.054684.115
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author Herbert, Kristina M.
Sarkar, Susanta K.
Mills, Maria
Delgado De la Herran, Hilda C.
Neuman, Keir C.
Steitz, Joan A.
author_facet Herbert, Kristina M.
Sarkar, Susanta K.
Mills, Maria
Delgado De la Herran, Hilda C.
Neuman, Keir C.
Steitz, Joan A.
author_sort Herbert, Kristina M.
collection PubMed
description During microRNA (miRNA) biogenesis, the Microprocessor complex (MC), composed minimally of Drosha, an RNaseIII enzyme, and DGCR8, a double-stranded RNA-binding protein, cleaves the primary-miRNA (pri-miRNA) to release the pre-miRNA stem–loop structure. Size-exclusion chromatography of the MC, isolated from mammalian cells, suggested multiple copies of one or both proteins in the complex. However, the exact stoichiometry was unknown. Initial experiments suggested that DGCR8 bound pri-miRNA substrates specifically, and given that Drosha could not be bound or cross-linked to RNA, a sequential model for binding was established in which DGCR8 bound first and recruited Drosha. Therefore, many laboratories have studied DGCR8 binding to RNA in the absence of Drosha and have shown that deletion constructs of DGCR8 can multimerize in the presence of RNA. More recently, it was demonstrated that Drosha can bind pri-miRNA substrates in the absence of DGCR8, casting doubt on the sequential model of binding. In the same study, using a single-molecule photobleaching assay, fluorescent protein-tagged deletion constructs of DGCR8 and Drosha assembled into a heterotrimeric complex on RNA, comprising two DGCR8 molecules and one Drosha molecule. To determine the stoichiometry of Drosha and DGCR8 within the MC in the absence of added RNA, we also used a single-molecule photobleaching assay and confirmed the heterotrimeric model of the human MC. We demonstrate that a heterotrimeric complex is likely preformed in the absence of RNA and exists even when full-length proteins are expressed and purified from human cells, and when hAGT-derived tags are used rather than fluorescent proteins.
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spelling pubmed-47126682017-02-01 A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting Herbert, Kristina M. Sarkar, Susanta K. Mills, Maria Delgado De la Herran, Hilda C. Neuman, Keir C. Steitz, Joan A. RNA Letter to the Editor During microRNA (miRNA) biogenesis, the Microprocessor complex (MC), composed minimally of Drosha, an RNaseIII enzyme, and DGCR8, a double-stranded RNA-binding protein, cleaves the primary-miRNA (pri-miRNA) to release the pre-miRNA stem–loop structure. Size-exclusion chromatography of the MC, isolated from mammalian cells, suggested multiple copies of one or both proteins in the complex. However, the exact stoichiometry was unknown. Initial experiments suggested that DGCR8 bound pri-miRNA substrates specifically, and given that Drosha could not be bound or cross-linked to RNA, a sequential model for binding was established in which DGCR8 bound first and recruited Drosha. Therefore, many laboratories have studied DGCR8 binding to RNA in the absence of Drosha and have shown that deletion constructs of DGCR8 can multimerize in the presence of RNA. More recently, it was demonstrated that Drosha can bind pri-miRNA substrates in the absence of DGCR8, casting doubt on the sequential model of binding. In the same study, using a single-molecule photobleaching assay, fluorescent protein-tagged deletion constructs of DGCR8 and Drosha assembled into a heterotrimeric complex on RNA, comprising two DGCR8 molecules and one Drosha molecule. To determine the stoichiometry of Drosha and DGCR8 within the MC in the absence of added RNA, we also used a single-molecule photobleaching assay and confirmed the heterotrimeric model of the human MC. We demonstrate that a heterotrimeric complex is likely preformed in the absence of RNA and exists even when full-length proteins are expressed and purified from human cells, and when hAGT-derived tags are used rather than fluorescent proteins. Cold Spring Harbor Laboratory Press 2016-02 /pmc/articles/PMC4712668/ /pubmed/26683315 http://dx.doi.org/10.1261/rna.054684.115 Text en © 2016 Herbert et al.; Published by Cold Spring Harbor Laboratory Press for the RNA Society http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed exclusively by the RNA Society for the first 12 months after the full-issue publication date (see http://rnajournal.cshlp.org/site/misc/terms.xhtml). After 12 months, it is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/.
spellingShingle Letter to the Editor
Herbert, Kristina M.
Sarkar, Susanta K.
Mills, Maria
Delgado De la Herran, Hilda C.
Neuman, Keir C.
Steitz, Joan A.
A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting
title A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting
title_full A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting
title_fullStr A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting
title_full_unstemmed A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting
title_short A heterotrimer model of the complete Microprocessor complex revealed by single-molecule subunit counting
title_sort heterotrimer model of the complete microprocessor complex revealed by single-molecule subunit counting
topic Letter to the Editor
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4712668/
https://www.ncbi.nlm.nih.gov/pubmed/26683315
http://dx.doi.org/10.1261/rna.054684.115
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