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Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines

Essential cellular processes of microtubule disassembly and protein degradation, which span lengths from tens of [Formula: see text] m to nm, are mediated by specialized molecular machines with similar hexameric structure and function. Our molecular simulations at atomistic and coarse-grained scales...

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Autores principales: Varikoti, Rohith Anand, Fonseka, Hewafonsekage Yasan Y., Kelly, Maria S., Javidi, Alex, Damre, Mangesh, Mullen, Sarah, Nugent, Jimmie L., Gonzales, Christopher M., Stan, George, Dima, Ruxandra I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182431/
https://www.ncbi.nlm.nih.gov/pubmed/35683705
http://dx.doi.org/10.3390/nano12111849
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author Varikoti, Rohith Anand
Fonseka, Hewafonsekage Yasan Y.
Kelly, Maria S.
Javidi, Alex
Damre, Mangesh
Mullen, Sarah
Nugent, Jimmie L.
Gonzales, Christopher M.
Stan, George
Dima, Ruxandra I.
author_facet Varikoti, Rohith Anand
Fonseka, Hewafonsekage Yasan Y.
Kelly, Maria S.
Javidi, Alex
Damre, Mangesh
Mullen, Sarah
Nugent, Jimmie L.
Gonzales, Christopher M.
Stan, George
Dima, Ruxandra I.
author_sort Varikoti, Rohith Anand
collection PubMed
description Essential cellular processes of microtubule disassembly and protein degradation, which span lengths from tens of [Formula: see text] m to nm, are mediated by specialized molecular machines with similar hexameric structure and function. Our molecular simulations at atomistic and coarse-grained scales show that both the microtubule-severing protein spastin and the caseinolytic protease ClpY, accomplish spectacular unfolding of their diverse substrates, a microtubule lattice and dihydrofolate reductase (DHFR), by taking advantage of mechanical anisotropy in these proteins. Unfolding of wild-type DHFR requires disruption of mechanically strong [Formula: see text]-sheet interfaces near each terminal, which yields branched pathways associated with unzipping along soft directions and shearing along strong directions. By contrast, unfolding of circular permutant DHFR variants involves single pathways due to softer mechanical interfaces near terminals, but translocation hindrance can arise from mechanical resistance of partially unfolded intermediates stabilized by [Formula: see text]-sheets. For spastin, optimal severing action initiated by pulling on a tubulin subunit is achieved through specific orientation of the machine versus the substrate (microtubule lattice). Moreover, changes in the strength of the interactions between spastin and a microtubule filament, which can be driven by the tubulin code, lead to drastically different outcomes for the integrity of the hexameric structure of the machine.
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spelling pubmed-91824312022-06-10 Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines Varikoti, Rohith Anand Fonseka, Hewafonsekage Yasan Y. Kelly, Maria S. Javidi, Alex Damre, Mangesh Mullen, Sarah Nugent, Jimmie L. Gonzales, Christopher M. Stan, George Dima, Ruxandra I. Nanomaterials (Basel) Article Essential cellular processes of microtubule disassembly and protein degradation, which span lengths from tens of [Formula: see text] m to nm, are mediated by specialized molecular machines with similar hexameric structure and function. Our molecular simulations at atomistic and coarse-grained scales show that both the microtubule-severing protein spastin and the caseinolytic protease ClpY, accomplish spectacular unfolding of their diverse substrates, a microtubule lattice and dihydrofolate reductase (DHFR), by taking advantage of mechanical anisotropy in these proteins. Unfolding of wild-type DHFR requires disruption of mechanically strong [Formula: see text]-sheet interfaces near each terminal, which yields branched pathways associated with unzipping along soft directions and shearing along strong directions. By contrast, unfolding of circular permutant DHFR variants involves single pathways due to softer mechanical interfaces near terminals, but translocation hindrance can arise from mechanical resistance of partially unfolded intermediates stabilized by [Formula: see text]-sheets. For spastin, optimal severing action initiated by pulling on a tubulin subunit is achieved through specific orientation of the machine versus the substrate (microtubule lattice). Moreover, changes in the strength of the interactions between spastin and a microtubule filament, which can be driven by the tubulin code, lead to drastically different outcomes for the integrity of the hexameric structure of the machine. MDPI 2022-05-28 /pmc/articles/PMC9182431/ /pubmed/35683705 http://dx.doi.org/10.3390/nano12111849 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Varikoti, Rohith Anand
Fonseka, Hewafonsekage Yasan Y.
Kelly, Maria S.
Javidi, Alex
Damre, Mangesh
Mullen, Sarah
Nugent, Jimmie L.
Gonzales, Christopher M.
Stan, George
Dima, Ruxandra I.
Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines
title Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines
title_full Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines
title_fullStr Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines
title_full_unstemmed Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines
title_short Exploring the Effect of Mechanical Anisotropy of Protein Structures in the Unfoldase Mechanism of AAA+ Molecular Machines
title_sort exploring the effect of mechanical anisotropy of protein structures in the unfoldase mechanism of aaa+ molecular machines
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182431/
https://www.ncbi.nlm.nih.gov/pubmed/35683705
http://dx.doi.org/10.3390/nano12111849
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