Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular Rulers

Length determination is a fundamental problem in biology and chemistry. Numerous proteins measure distances on linear biopolymers to exert effects with remarkable spatial precision. Recently, ruler-like devices made of noncoding RNAs have been structurally and biochemically characterized. Two promin...

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Main Authors: Jinwei Zhang, Adrian R. Ferré-DAmaré
Format: Article
Language:English
Published: MDPI AG 2016-04-01
Series:Biomolecules
Subjects:
Online Access:http://www.mdpi.com/2218-273X/6/2/18
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spelling doaj-59e8b2eb96944e9d9b44ff91f4985f952020-11-24T23:01:32ZengMDPI AGBiomolecules2218-273X2016-04-01621810.3390/biom6020018biom6020018Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular RulersJinwei Zhang0Adrian R. Ferré-DAmaré1Laboratory of Molecular Biology, National Institute of Diabetes and Digestive and Kidney Diseases, 50 South Drive, Bethesda, MD 20892, USALaboratory of RNA Biophysics and Cellular Physiology, National Heart, Lung and Blood Institute, 50 South Drive, Bethesda, MD 20892, USALength determination is a fundamental problem in biology and chemistry. Numerous proteins measure distances on linear biopolymers to exert effects with remarkable spatial precision. Recently, ruler-like devices made of noncoding RNAs have been structurally and biochemically characterized. Two prominent examples are the RNase P ribozyme and the T-box riboswitch. Both act as molecular calipers. The two RNAs clamp onto the elbow of tRNA (or pre-tRNA) and make distance measurements orthogonal to each other. Here, we compare and contrast the molecular ruler characteristics of these RNAs. RNase P appears pre-configured to measure a fixed distance on pre-tRNA to ensure the fidelity of its maturation. RNase P is a multiple-turnover ribozyme, and its rigid structure efficiently selects pre-tRNAs, cleaves, and releases them. In contrast, the T-box is flexible and segmented, an architecture that adapts to the intrinsically flexible tRNA. The tripartite T-box inspects the overall shape, anticodon sequence, and aminoacylation status of an incoming tRNA while it folds co-transcriptionally, leading to a singular, conditional genetic switching event. The elucidation of the structures and mechanisms of action of these two RNA molecular rulers may augur the discovery of new RNA measuring devices in noncoding and viral transcriptomes, and inform the design of artificial RNA rulers.http://www.mdpi.com/2218-273X/6/2/18RNA structuremolecular rulerstRNARNase PT-boxriboswitchtRNA elbowinterdigitated T-loopsnoncoding RNAnoncanonical base pairs
collection DOAJ
language English
format Article
sources DOAJ
author Jinwei Zhang
Adrian R. Ferré-DAmaré
spellingShingle Jinwei Zhang
Adrian R. Ferré-DAmaré
Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular Rulers
Biomolecules
RNA structure
molecular rulers
tRNA
RNase P
T-box
riboswitch
tRNA elbow
interdigitated T-loops
noncoding RNA
noncanonical base pairs
author_facet Jinwei Zhang
Adrian R. Ferré-DAmaré
author_sort Jinwei Zhang
title Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular Rulers
title_short Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular Rulers
title_full Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular Rulers
title_fullStr Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular Rulers
title_full_unstemmed Trying on tRNA for Size: RNase P and the T-box Riboswitch as Molecular Rulers
title_sort trying on trna for size: rnase p and the t-box riboswitch as molecular rulers
publisher MDPI AG
series Biomolecules
issn 2218-273X
publishDate 2016-04-01
description Length determination is a fundamental problem in biology and chemistry. Numerous proteins measure distances on linear biopolymers to exert effects with remarkable spatial precision. Recently, ruler-like devices made of noncoding RNAs have been structurally and biochemically characterized. Two prominent examples are the RNase P ribozyme and the T-box riboswitch. Both act as molecular calipers. The two RNAs clamp onto the elbow of tRNA (or pre-tRNA) and make distance measurements orthogonal to each other. Here, we compare and contrast the molecular ruler characteristics of these RNAs. RNase P appears pre-configured to measure a fixed distance on pre-tRNA to ensure the fidelity of its maturation. RNase P is a multiple-turnover ribozyme, and its rigid structure efficiently selects pre-tRNAs, cleaves, and releases them. In contrast, the T-box is flexible and segmented, an architecture that adapts to the intrinsically flexible tRNA. The tripartite T-box inspects the overall shape, anticodon sequence, and aminoacylation status of an incoming tRNA while it folds co-transcriptionally, leading to a singular, conditional genetic switching event. The elucidation of the structures and mechanisms of action of these two RNA molecular rulers may augur the discovery of new RNA measuring devices in noncoding and viral transcriptomes, and inform the design of artificial RNA rulers.
topic RNA structure
molecular rulers
tRNA
RNase P
T-box
riboswitch
tRNA elbow
interdigitated T-loops
noncoding RNA
noncanonical base pairs
url http://www.mdpi.com/2218-273X/6/2/18
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