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Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures

The L-shape form of tRNA is maintained by tertiary interactions occurring in the core. Base changes in this domain can cause structural defects and impair tRNA activity. Here, we report on a method to safely engineer structural variations in this domain utilizing the noncanonical scaffold of tRNA(Py...

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Autores principales: Sakamoto, Kensaku, Hayashi, Akiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6337575/
https://www.ncbi.nlm.nih.gov/pubmed/30587834
http://dx.doi.org/10.3390/ijms20010092
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author Sakamoto, Kensaku
Hayashi, Akiko
author_facet Sakamoto, Kensaku
Hayashi, Akiko
author_sort Sakamoto, Kensaku
collection PubMed
description The L-shape form of tRNA is maintained by tertiary interactions occurring in the core. Base changes in this domain can cause structural defects and impair tRNA activity. Here, we report on a method to safely engineer structural variations in this domain utilizing the noncanonical scaffold of tRNA(Pyl). First, we constructed a naïve hybrid between archaeal tRNA(Pyl) and tRNA(Tyr), which consisted of the acceptor and T stems of tRNA(Tyr) and the other parts of tRNA(Pyl). This hybrid tRNA efficiently translated the UAG codon to 3-iodotyrosine in Escherichia coli cells, when paired with a variant of the archaeal tyrosyl-tRNA synthetase. The amber suppression efficiency was slightly lower than that of the “bench-mark” archaeal tRNA(Tyr) suppressor assuming the canonical structure. After a series of modifications to this hybrid tRNA, we obtained two artificial types of tRNA(Tyr): ZtRNA had an augmented D (auD) helix in a noncanonical form and the D and T loops bound by the standard tertiary base pairs, and YtRNA had a canonical auD helix and non-standard interloop interactions. It was then suggested that the ZtRNA scaffold could also support the glycylation and glutaminylation of tRNA. The synthetic diversity of tRNA would help create new tRNA–aminoacyl-tRNA synthetase pairs for reprogramming the genetic code.
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spelling pubmed-63375752019-01-22 Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures Sakamoto, Kensaku Hayashi, Akiko Int J Mol Sci Article The L-shape form of tRNA is maintained by tertiary interactions occurring in the core. Base changes in this domain can cause structural defects and impair tRNA activity. Here, we report on a method to safely engineer structural variations in this domain utilizing the noncanonical scaffold of tRNA(Pyl). First, we constructed a naïve hybrid between archaeal tRNA(Pyl) and tRNA(Tyr), which consisted of the acceptor and T stems of tRNA(Tyr) and the other parts of tRNA(Pyl). This hybrid tRNA efficiently translated the UAG codon to 3-iodotyrosine in Escherichia coli cells, when paired with a variant of the archaeal tyrosyl-tRNA synthetase. The amber suppression efficiency was slightly lower than that of the “bench-mark” archaeal tRNA(Tyr) suppressor assuming the canonical structure. After a series of modifications to this hybrid tRNA, we obtained two artificial types of tRNA(Tyr): ZtRNA had an augmented D (auD) helix in a noncanonical form and the D and T loops bound by the standard tertiary base pairs, and YtRNA had a canonical auD helix and non-standard interloop interactions. It was then suggested that the ZtRNA scaffold could also support the glycylation and glutaminylation of tRNA. The synthetic diversity of tRNA would help create new tRNA–aminoacyl-tRNA synthetase pairs for reprogramming the genetic code. MDPI 2018-12-26 /pmc/articles/PMC6337575/ /pubmed/30587834 http://dx.doi.org/10.3390/ijms20010092 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sakamoto, Kensaku
Hayashi, Akiko
Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures
title Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures
title_full Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures
title_fullStr Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures
title_full_unstemmed Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures
title_short Synthetic Tyrosine tRNA Molecules with Noncanonical Secondary Structures
title_sort synthetic tyrosine trna molecules with noncanonical secondary structures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6337575/
https://www.ncbi.nlm.nih.gov/pubmed/30587834
http://dx.doi.org/10.3390/ijms20010092
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