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Annealing synchronizes the 70S ribosome into a minimum-energy conformation

Researchers commonly anneal metals, alloys, and semiconductors to repair defects and improve microstructures via recrystallization. Theoretical studies indicate that simulated annealing on biological macromolecules helps predict the final structures with minimum free energy. Experimental validation...

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Autores principales: Chu, Xiaofeng, Su, Xin, Liu, Mingdong, Li, Li, Li, Tianhao, Qin, Yicheng, Lu, Guoliang, Qi, Lei, Liu, Yunhui, Lin, Jinzhong, Shen, Qing-Tao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8872765/
https://www.ncbi.nlm.nih.gov/pubmed/35177473
http://dx.doi.org/10.1073/pnas.2111231119
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author Chu, Xiaofeng
Su, Xin
Liu, Mingdong
Li, Li
Li, Tianhao
Qin, Yicheng
Lu, Guoliang
Qi, Lei
Liu, Yunhui
Lin, Jinzhong
Shen, Qing-Tao
author_facet Chu, Xiaofeng
Su, Xin
Liu, Mingdong
Li, Li
Li, Tianhao
Qin, Yicheng
Lu, Guoliang
Qi, Lei
Liu, Yunhui
Lin, Jinzhong
Shen, Qing-Tao
author_sort Chu, Xiaofeng
collection PubMed
description Researchers commonly anneal metals, alloys, and semiconductors to repair defects and improve microstructures via recrystallization. Theoretical studies indicate that simulated annealing on biological macromolecules helps predict the final structures with minimum free energy. Experimental validation of this homogenizing effect and further exploration of its applications are fascinating scientific questions that remain elusive. Here, we chose the apo-state 70S ribosome from Escherichia coli as a model, wherein the 30S subunit undergoes a thermally driven intersubunit rotation and exhibits substantial structural flexibility as well as distinct free energy. We experimentally demonstrate that annealing at a fast cooling rate enhances the 70S ribosome homogeneity and improves local resolution on the 30S subunit. After annealing, the 70S ribosome is in a nonrotated state with respect to corresponding intermediate structures in unannealed or heated ribosomes. Manifold-based analysis further indicates that the annealed 70S ribosome takes a narrow conformational distribution and exhibits a minimum-energy state in the free-energy landscape. Our experimental results offer a facile yet robust approach to enhance protein stability, which is ideal for high-resolution cryogenic electron microscopy. Beyond structure determination, annealing shows great potential for synchronizing proteins on a single-molecule level and can be extended to study protein folding and explore conformational and energy landscapes.
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spelling pubmed-88727652022-02-25 Annealing synchronizes the 70S ribosome into a minimum-energy conformation Chu, Xiaofeng Su, Xin Liu, Mingdong Li, Li Li, Tianhao Qin, Yicheng Lu, Guoliang Qi, Lei Liu, Yunhui Lin, Jinzhong Shen, Qing-Tao Proc Natl Acad Sci U S A Biological Sciences Researchers commonly anneal metals, alloys, and semiconductors to repair defects and improve microstructures via recrystallization. Theoretical studies indicate that simulated annealing on biological macromolecules helps predict the final structures with minimum free energy. Experimental validation of this homogenizing effect and further exploration of its applications are fascinating scientific questions that remain elusive. Here, we chose the apo-state 70S ribosome from Escherichia coli as a model, wherein the 30S subunit undergoes a thermally driven intersubunit rotation and exhibits substantial structural flexibility as well as distinct free energy. We experimentally demonstrate that annealing at a fast cooling rate enhances the 70S ribosome homogeneity and improves local resolution on the 30S subunit. After annealing, the 70S ribosome is in a nonrotated state with respect to corresponding intermediate structures in unannealed or heated ribosomes. Manifold-based analysis further indicates that the annealed 70S ribosome takes a narrow conformational distribution and exhibits a minimum-energy state in the free-energy landscape. Our experimental results offer a facile yet robust approach to enhance protein stability, which is ideal for high-resolution cryogenic electron microscopy. Beyond structure determination, annealing shows great potential for synchronizing proteins on a single-molecule level and can be extended to study protein folding and explore conformational and energy landscapes. National Academy of Sciences 2022-02-17 2022-02-22 /pmc/articles/PMC8872765/ /pubmed/35177473 http://dx.doi.org/10.1073/pnas.2111231119 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Chu, Xiaofeng
Su, Xin
Liu, Mingdong
Li, Li
Li, Tianhao
Qin, Yicheng
Lu, Guoliang
Qi, Lei
Liu, Yunhui
Lin, Jinzhong
Shen, Qing-Tao
Annealing synchronizes the 70S ribosome into a minimum-energy conformation
title Annealing synchronizes the 70S ribosome into a minimum-energy conformation
title_full Annealing synchronizes the 70S ribosome into a minimum-energy conformation
title_fullStr Annealing synchronizes the 70S ribosome into a minimum-energy conformation
title_full_unstemmed Annealing synchronizes the 70S ribosome into a minimum-energy conformation
title_short Annealing synchronizes the 70S ribosome into a minimum-energy conformation
title_sort annealing synchronizes the 70s ribosome into a minimum-energy conformation
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8872765/
https://www.ncbi.nlm.nih.gov/pubmed/35177473
http://dx.doi.org/10.1073/pnas.2111231119
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