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A peripheral element assembles the compact core structure essential for group I intron self-splicing

The presence of non-conserved peripheral elements in all naturally occurring group I introns underline their importance in ensuring the natural intron function. Recently, we reported that some peripheral elements are conserved in group I introns of IE subgroup. Using self-splicing activity as a read...

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Autores principales: Xiao, Mu, Li, Tingting, Yuan, Xiaoyan, Shang, Yuan, Wang, Fu, Chen, Shoudeng, Zhang, Yi
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1185575/
https://www.ncbi.nlm.nih.gov/pubmed/16100381
http://dx.doi.org/10.1093/nar/gki770
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author Xiao, Mu
Li, Tingting
Yuan, Xiaoyan
Shang, Yuan
Wang, Fu
Chen, Shoudeng
Zhang, Yi
author_facet Xiao, Mu
Li, Tingting
Yuan, Xiaoyan
Shang, Yuan
Wang, Fu
Chen, Shoudeng
Zhang, Yi
author_sort Xiao, Mu
collection PubMed
description The presence of non-conserved peripheral elements in all naturally occurring group I introns underline their importance in ensuring the natural intron function. Recently, we reported that some peripheral elements are conserved in group I introns of IE subgroup. Using self-splicing activity as a readout, our initial screening revealed that one such conserved peripheral elements, P2.1, is mainly required to fold the catalytically active structure of the Candida ribozyme, an IE intron. Unexpectedly, the essential function of P2.1 resides in a sequence-conserved short stem of P2.1 but not in a long-range interaction associated with the loop of P2.1 that stabilizes the ribozyme structure. The P2.1 stem is indispensable in folding the compact ribozyme core, most probably by forming a triple helical interaction with two core helices, P3 and P6. Surprisingly, although the ribozyme lacking the P2.1 stem renders a loosely folded core and the loss of self-splicing activity requires two consecutive transesterifications, the mutant ribozyme efficiently catalyzes the first transesterification reaction. These results suggest that the intron self-splicing demands much more ordered structure than does one independent transesterification, highlighting that the universally present peripheral elements achieve their functional importance by enabling the highly ordered structure through diverse tertiary interactions.
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spelling pubmed-11855752005-08-15 A peripheral element assembles the compact core structure essential for group I intron self-splicing Xiao, Mu Li, Tingting Yuan, Xiaoyan Shang, Yuan Wang, Fu Chen, Shoudeng Zhang, Yi Nucleic Acids Res Article The presence of non-conserved peripheral elements in all naturally occurring group I introns underline their importance in ensuring the natural intron function. Recently, we reported that some peripheral elements are conserved in group I introns of IE subgroup. Using self-splicing activity as a readout, our initial screening revealed that one such conserved peripheral elements, P2.1, is mainly required to fold the catalytically active structure of the Candida ribozyme, an IE intron. Unexpectedly, the essential function of P2.1 resides in a sequence-conserved short stem of P2.1 but not in a long-range interaction associated with the loop of P2.1 that stabilizes the ribozyme structure. The P2.1 stem is indispensable in folding the compact ribozyme core, most probably by forming a triple helical interaction with two core helices, P3 and P6. Surprisingly, although the ribozyme lacking the P2.1 stem renders a loosely folded core and the loss of self-splicing activity requires two consecutive transesterifications, the mutant ribozyme efficiently catalyzes the first transesterification reaction. These results suggest that the intron self-splicing demands much more ordered structure than does one independent transesterification, highlighting that the universally present peripheral elements achieve their functional importance by enabling the highly ordered structure through diverse tertiary interactions. Oxford University Press 2005 2005-08-12 /pmc/articles/PMC1185575/ /pubmed/16100381 http://dx.doi.org/10.1093/nar/gki770 Text en © The Author 2005. Published by Oxford University Press. All rights reserved
spellingShingle Article
Xiao, Mu
Li, Tingting
Yuan, Xiaoyan
Shang, Yuan
Wang, Fu
Chen, Shoudeng
Zhang, Yi
A peripheral element assembles the compact core structure essential for group I intron self-splicing
title A peripheral element assembles the compact core structure essential for group I intron self-splicing
title_full A peripheral element assembles the compact core structure essential for group I intron self-splicing
title_fullStr A peripheral element assembles the compact core structure essential for group I intron self-splicing
title_full_unstemmed A peripheral element assembles the compact core structure essential for group I intron self-splicing
title_short A peripheral element assembles the compact core structure essential for group I intron self-splicing
title_sort peripheral element assembles the compact core structure essential for group i intron self-splicing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1185575/
https://www.ncbi.nlm.nih.gov/pubmed/16100381
http://dx.doi.org/10.1093/nar/gki770
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