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Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex

RNase P catalyzes the Mg(2)(+)-dependent 5′-maturation of precursor tRNAs. Biochemical studies on the bacterial holoenzyme, composed of one catalytic RNase P RNA (RPR) and one RNase P protein (RPP), have helped understand the pleiotropic roles (including substrate/Mg(2+) binding) by which a protein...

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Autores principales: Chen, Wen-Yi, Pulukkunat, Dileep K., Cho, I-Ming, Tsai, Hsin-Yue, Gopalan, Venkat
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2010
Materias:
RNA
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3001054/
https://www.ncbi.nlm.nih.gov/pubmed/20705647
http://dx.doi.org/10.1093/nar/gkq668
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author Chen, Wen-Yi
Pulukkunat, Dileep K.
Cho, I-Ming
Tsai, Hsin-Yue
Gopalan, Venkat
author_facet Chen, Wen-Yi
Pulukkunat, Dileep K.
Cho, I-Ming
Tsai, Hsin-Yue
Gopalan, Venkat
author_sort Chen, Wen-Yi
collection PubMed
description RNase P catalyzes the Mg(2)(+)-dependent 5′-maturation of precursor tRNAs. Biochemical studies on the bacterial holoenzyme, composed of one catalytic RNase P RNA (RPR) and one RNase P protein (RPP), have helped understand the pleiotropic roles (including substrate/Mg(2+) binding) by which a protein could facilitate RNA catalysis. As a model for uncovering the functional coordination among multiple proteins that aid an RNA catalyst, we use archaeal RNase P, which comprises one catalytic RPR and at least four RPPs. Exploiting our previous finding that these archaeal RPPs function as two binary RPP complexes (POP5•RPP30 and RPP21•RPP29), we prepared recombinant RPP pairs from three archaea and established interchangeability of subunits through homologous/heterologous assemblies. Our finding that archaeal POP5•RPP30 reconstituted with bacterial and organellar RPRs suggests functional overlap of this binary complex with the bacterial RPP and highlights their shared recognition of a phylogenetically-conserved RPR catalytic core, whose minimal attributes we further defined through deletion mutagenesis. Moreover, single-turnover kinetic studies revealed that while POP5•RPP30 is solely responsible for enhancing the RPR’s rate of precursor tRNA cleavage (by 60-fold), RPP21•RPP29 contributes to increased substrate affinity (by 16-fold). Collectively, these studies provide new perspectives on the functioning and evolution of an ancient, catalytic ribonucleoprotein.
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spelling pubmed-30010542010-12-13 Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex Chen, Wen-Yi Pulukkunat, Dileep K. Cho, I-Ming Tsai, Hsin-Yue Gopalan, Venkat Nucleic Acids Res RNA RNase P catalyzes the Mg(2)(+)-dependent 5′-maturation of precursor tRNAs. Biochemical studies on the bacterial holoenzyme, composed of one catalytic RNase P RNA (RPR) and one RNase P protein (RPP), have helped understand the pleiotropic roles (including substrate/Mg(2+) binding) by which a protein could facilitate RNA catalysis. As a model for uncovering the functional coordination among multiple proteins that aid an RNA catalyst, we use archaeal RNase P, which comprises one catalytic RPR and at least four RPPs. Exploiting our previous finding that these archaeal RPPs function as two binary RPP complexes (POP5•RPP30 and RPP21•RPP29), we prepared recombinant RPP pairs from three archaea and established interchangeability of subunits through homologous/heterologous assemblies. Our finding that archaeal POP5•RPP30 reconstituted with bacterial and organellar RPRs suggests functional overlap of this binary complex with the bacterial RPP and highlights their shared recognition of a phylogenetically-conserved RPR catalytic core, whose minimal attributes we further defined through deletion mutagenesis. Moreover, single-turnover kinetic studies revealed that while POP5•RPP30 is solely responsible for enhancing the RPR’s rate of precursor tRNA cleavage (by 60-fold), RPP21•RPP29 contributes to increased substrate affinity (by 16-fold). Collectively, these studies provide new perspectives on the functioning and evolution of an ancient, catalytic ribonucleoprotein. Oxford University Press 2010-12 2010-08-12 /pmc/articles/PMC3001054/ /pubmed/20705647 http://dx.doi.org/10.1093/nar/gkq668 Text en © The Author(s) 2010. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/2.5 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.5), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle RNA
Chen, Wen-Yi
Pulukkunat, Dileep K.
Cho, I-Ming
Tsai, Hsin-Yue
Gopalan, Venkat
Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex
title Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex
title_full Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex
title_fullStr Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex
title_full_unstemmed Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex
title_short Dissecting functional cooperation among protein subunits in archaeal RNase P, a catalytic ribonucleoprotein complex
title_sort dissecting functional cooperation among protein subunits in archaeal rnase p, a catalytic ribonucleoprotein complex
topic RNA
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3001054/
https://www.ncbi.nlm.nih.gov/pubmed/20705647
http://dx.doi.org/10.1093/nar/gkq668
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