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The folding and unfolding behavior of ribonuclease H on the ribosome

The health of a cell depends on accurate translation and proper protein folding, whereas misfolding can lead to aggregation and disease. The first opportunity for a protein to fold occurs during translation, when the ribosome and surrounding environment can affect the nascent chain energy landscape....

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Autores principales: Jensen, Madeleine K., Samelson, Avi J., Steward, Annette, Clarke, Jane, Marqusee, Susan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7450101/
https://www.ncbi.nlm.nih.gov/pubmed/32527724
http://dx.doi.org/10.1074/jbc.RA120.013909
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author Jensen, Madeleine K.
Samelson, Avi J.
Steward, Annette
Clarke, Jane
Marqusee, Susan
author_facet Jensen, Madeleine K.
Samelson, Avi J.
Steward, Annette
Clarke, Jane
Marqusee, Susan
author_sort Jensen, Madeleine K.
collection PubMed
description The health of a cell depends on accurate translation and proper protein folding, whereas misfolding can lead to aggregation and disease. The first opportunity for a protein to fold occurs during translation, when the ribosome and surrounding environment can affect the nascent chain energy landscape. However, quantifying these environmental effects is challenging because ribosomal proteins and rRNA preclude most spectroscopic measurements of protein energetics. Here, we have applied two gel-based approaches, pulse proteolysis and force-profile analysis, to probe the folding and unfolding pathways of RNase H (RNH) nascent chains stalled on the prokaryotic ribosome in vitro. We found that ribosome-stalled RNH has an increased unfolding rate compared with free RNH. Because protein stability is related to the ratio of the unfolding and folding rates, this increase completely accounts for the observed change in protein stability and indicates that the folding rate is unchanged. Using arrest peptide–based force-profile analysis, we assayed the force generated during the folding of RNH on the ribosome. Surprisingly, we found that population of the RNH folding intermediate is required to generate sufficient force to release a stall induced by the SecM stalling sequence and that readthrough of SecM directly correlates with the stability of the RNH folding intermediate. Together, these results imply that the folding pathway of RNH is unchanged on the ribosome. Furthermore, our findings indicate that the ribosome promotes RNH unfolding while the nascent chain is proximal to the ribosome, which may limit the deleterious effects of RNH misfolding and assist in folding fidelity.
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spelling pubmed-74501012020-09-02 The folding and unfolding behavior of ribonuclease H on the ribosome Jensen, Madeleine K. Samelson, Avi J. Steward, Annette Clarke, Jane Marqusee, Susan J Biol Chem Editors' Picks The health of a cell depends on accurate translation and proper protein folding, whereas misfolding can lead to aggregation and disease. The first opportunity for a protein to fold occurs during translation, when the ribosome and surrounding environment can affect the nascent chain energy landscape. However, quantifying these environmental effects is challenging because ribosomal proteins and rRNA preclude most spectroscopic measurements of protein energetics. Here, we have applied two gel-based approaches, pulse proteolysis and force-profile analysis, to probe the folding and unfolding pathways of RNase H (RNH) nascent chains stalled on the prokaryotic ribosome in vitro. We found that ribosome-stalled RNH has an increased unfolding rate compared with free RNH. Because protein stability is related to the ratio of the unfolding and folding rates, this increase completely accounts for the observed change in protein stability and indicates that the folding rate is unchanged. Using arrest peptide–based force-profile analysis, we assayed the force generated during the folding of RNH on the ribosome. Surprisingly, we found that population of the RNH folding intermediate is required to generate sufficient force to release a stall induced by the SecM stalling sequence and that readthrough of SecM directly correlates with the stability of the RNH folding intermediate. Together, these results imply that the folding pathway of RNH is unchanged on the ribosome. Furthermore, our findings indicate that the ribosome promotes RNH unfolding while the nascent chain is proximal to the ribosome, which may limit the deleterious effects of RNH misfolding and assist in folding fidelity. American Society for Biochemistry and Molecular Biology 2020-08-14 2020-06-11 /pmc/articles/PMC7450101/ /pubmed/32527724 http://dx.doi.org/10.1074/jbc.RA120.013909 Text en © 2020 Jensen et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Editors' Picks
Jensen, Madeleine K.
Samelson, Avi J.
Steward, Annette
Clarke, Jane
Marqusee, Susan
The folding and unfolding behavior of ribonuclease H on the ribosome
title The folding and unfolding behavior of ribonuclease H on the ribosome
title_full The folding and unfolding behavior of ribonuclease H on the ribosome
title_fullStr The folding and unfolding behavior of ribonuclease H on the ribosome
title_full_unstemmed The folding and unfolding behavior of ribonuclease H on the ribosome
title_short The folding and unfolding behavior of ribonuclease H on the ribosome
title_sort folding and unfolding behavior of ribonuclease h on the ribosome
topic Editors' Picks
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7450101/
https://www.ncbi.nlm.nih.gov/pubmed/32527724
http://dx.doi.org/10.1074/jbc.RA120.013909
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