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A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation

The phylogenetically-derived secondary structures of telomerase RNAs (TR) from ciliates, yeasts and vertebrates are surprisingly conserved and contain a pseudoknot domain at a similar location downstream of the template. As the pseudoknot domains of Tetrahymena TR (tTR) and human TR (hTR) mediate ce...

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Autores principales: Marie-Egyptienne, Delphine T., Cerone, Maria Antonietta, Londoño-Vallejo, J. Arturo, Autexier, Chantal
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1236975/
https://www.ncbi.nlm.nih.gov/pubmed/16192571
http://dx.doi.org/10.1093/nar/gki848
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author Marie-Egyptienne, Delphine T.
Cerone, Maria Antonietta
Londoño-Vallejo, J. Arturo
Autexier, Chantal
author_facet Marie-Egyptienne, Delphine T.
Cerone, Maria Antonietta
Londoño-Vallejo, J. Arturo
Autexier, Chantal
author_sort Marie-Egyptienne, Delphine T.
collection PubMed
description The phylogenetically-derived secondary structures of telomerase RNAs (TR) from ciliates, yeasts and vertebrates are surprisingly conserved and contain a pseudoknot domain at a similar location downstream of the template. As the pseudoknot domains of Tetrahymena TR (tTR) and human TR (hTR) mediate certain similar functions, we hypothesized that they might be functionally interchangeable. We constructed a chimeric TR (htTR) by exchanging the hTR pseudoknot sequences for the tTR pseudoknot region. The chimeric RNA reconstituted human telomerase activity when coexpressed with hTERT in vitro, but exhibited defects in repeat addition processivity and levels of DNA synthesis compared to hTR. Activity was dependent on tTR sequences within the chimeric RNA. htTR interacted with hTERT in vitro and dimerized predominantly via a region of its hTR backbone, the J7b/8a loop. Introduction of htTR in telomerase-negative cells stably expressing hTERT did not reconstitute an active enzyme able to elongate telomeres. Thus, our results indicate that the chimeric RNA reconstituted a weakly active nonprocessive human telomerase enzyme in vitro that was defective in telomere elongation in vivo. This suggests that there may be species-specific requirements for pseudoknot functions.
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spelling pubmed-12369752005-09-30 A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation Marie-Egyptienne, Delphine T. Cerone, Maria Antonietta Londoño-Vallejo, J. Arturo Autexier, Chantal Nucleic Acids Res Article The phylogenetically-derived secondary structures of telomerase RNAs (TR) from ciliates, yeasts and vertebrates are surprisingly conserved and contain a pseudoknot domain at a similar location downstream of the template. As the pseudoknot domains of Tetrahymena TR (tTR) and human TR (hTR) mediate certain similar functions, we hypothesized that they might be functionally interchangeable. We constructed a chimeric TR (htTR) by exchanging the hTR pseudoknot sequences for the tTR pseudoknot region. The chimeric RNA reconstituted human telomerase activity when coexpressed with hTERT in vitro, but exhibited defects in repeat addition processivity and levels of DNA synthesis compared to hTR. Activity was dependent on tTR sequences within the chimeric RNA. htTR interacted with hTERT in vitro and dimerized predominantly via a region of its hTR backbone, the J7b/8a loop. Introduction of htTR in telomerase-negative cells stably expressing hTERT did not reconstitute an active enzyme able to elongate telomeres. Thus, our results indicate that the chimeric RNA reconstituted a weakly active nonprocessive human telomerase enzyme in vitro that was defective in telomere elongation in vivo. This suggests that there may be species-specific requirements for pseudoknot functions. Oxford University Press 2005 2005-09-28 /pmc/articles/PMC1236975/ /pubmed/16192571 http://dx.doi.org/10.1093/nar/gki848 Text en © The Author 2005. Published by Oxford University Press. All rights reserved
spellingShingle Article
Marie-Egyptienne, Delphine T.
Cerone, Maria Antonietta
Londoño-Vallejo, J. Arturo
Autexier, Chantal
A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation
title A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation
title_full A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation
title_fullStr A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation
title_full_unstemmed A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation
title_short A human-Tetrahymena pseudoknot chimeric telomerase RNA reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation
title_sort human-tetrahymena pseudoknot chimeric telomerase rna reconstitutes a nonprocessive enzyme in vitro that is defective in telomere elongation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1236975/
https://www.ncbi.nlm.nih.gov/pubmed/16192571
http://dx.doi.org/10.1093/nar/gki848
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