Literature DB >> 34614185

The RNA chaperone StpA enables fast RNA refolding by destabilization of mutually exclusive base pairs within competing secondary structure elements.

Katharina F Hohmann1, Anja Blümler2, Alexander Heckel2, Boris Fürtig1.   

Abstract

In bacteria RNA gene regulatory elements refold dependent on environmental clues between two or more long-lived conformational states each associated with a distinct regulatory state. The refolding kinetics are strongly temperature-dependent and especially at lower temperatures they reach timescales that are biologically not accessible. To overcome this problem, RNA chaperones have evolved. However, the precise molecular mechanism of how these proteins accelerate RNA refolding reactions remains enigmatic. Here we show how the RNA chaperone StpA of Escherichia coli leads to an acceleration of a bistable RNA's refolding kinetics through the selective destabilization of key base pairing interactions. We find in laser assisted real-time NMR experiments on photocaged bistable RNAs that the RNA chaperone leads to a two-fold increase in refolding rates at low temperatures due to reduced stability of ground state conformations. Further, we can show that upon interaction with StpA, base pairing interactions in the bistable RNA are modulated to favor refolding through the dominant pseudoknotted transition pathway. Our results shed light on the molecular mechanism of the interaction between RNA chaperones and bistable RNAs and are the first step into a functional classification of chaperones dependent on their biophysical mode of operation.
© The Author(s) 2021. Published by Oxford University Press on behalf of Nucleic Acids Research.

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Year:  2021        PMID: 34614185      PMCID: PMC8565331          DOI: 10.1093/nar/gkab876

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


  50 in total

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2.  RNA chaperone StpA loosens interactions of the tertiary structure in the td group I intron in vivo.

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8.  RNA chaperone activity and RNA-binding properties of the E. coli protein StpA.

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9.  Influence of RNA structural stability on the RNA chaperone activity of the Escherichia coli protein StpA.

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Review 10.  Role of RNA chaperones in virus replication.

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  2 in total

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2.  Prp43/DHX15 exemplify RNA helicase multifunctionality in the gene expression network.

Authors:  Katherine E Bohnsack; Nidhi Kanwal; Markus T Bohnsack
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  2 in total

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