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The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations

The FtsQBL is an essential molecular complex sitting midway through bacterial divisome assembly. To visualize and understand its structure, and the consequences of its membrane anchorage, we produced a model of the E. coli complex using the deep-learning prediction utility, AlphaFold 2. The heterotr...

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Autores principales: Chen, Yu Wai, Kong, Wai-Po, Wong, Kwok-Yin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Research Network of Computational and Structural Biotechnology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10126914/
https://www.ncbi.nlm.nih.gov/pubmed/37114213
http://dx.doi.org/10.1016/j.csbj.2023.03.052
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author Chen, Yu Wai
Kong, Wai-Po
Wong, Kwok-Yin
author_facet Chen, Yu Wai
Kong, Wai-Po
Wong, Kwok-Yin
author_sort Chen, Yu Wai
collection PubMed
description The FtsQBL is an essential molecular complex sitting midway through bacterial divisome assembly. To visualize and understand its structure, and the consequences of its membrane anchorage, we produced a model of the E. coli complex using the deep-learning prediction utility, AlphaFold 2. The heterotrimeric model was inserted into a 3-lipid model membrane and subjected to a 500-ns atomistic molecular dynamics simulation. The model is superb in quality and captures most experimentally derived structural features, at both the secondary structure and the side-chain levels. The model consists of a uniquely interlocking module contributed by the C-terminal regions of all three proteins. The functionally important constriction control domain residues of FtsB and FtsL are located at a fixed vertical position of ∼43–49 Å from the membrane surface. While the periplasmic domains of all three proteins are well-defined and rigid, the single transmembrane helices of each are flexible and their collective twisting and bending contribute to most structural variations, according to principal component analysis. Considering FtsQ only, the protein is more flexible in its free state relative to its complexed state—with the biggest structural changes located at the elbow between the transmembrane helix and the α-domain. The disordered N-terminal domains of FtsQ and FtsL associate with the cytoplasmic surface of the inner membrane instead of freely venturing into the solvent. Contact network analysis highlighted the formation of the interlocking trimeric module in FtsQBL as playing a central role in mediating the overall structure of the complex.
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spelling pubmed-101269142023-04-26 The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations Chen, Yu Wai Kong, Wai-Po Wong, Kwok-Yin Comput Struct Biotechnol J Research Article The FtsQBL is an essential molecular complex sitting midway through bacterial divisome assembly. To visualize and understand its structure, and the consequences of its membrane anchorage, we produced a model of the E. coli complex using the deep-learning prediction utility, AlphaFold 2. The heterotrimeric model was inserted into a 3-lipid model membrane and subjected to a 500-ns atomistic molecular dynamics simulation. The model is superb in quality and captures most experimentally derived structural features, at both the secondary structure and the side-chain levels. The model consists of a uniquely interlocking module contributed by the C-terminal regions of all three proteins. The functionally important constriction control domain residues of FtsB and FtsL are located at a fixed vertical position of ∼43–49 Å from the membrane surface. While the periplasmic domains of all three proteins are well-defined and rigid, the single transmembrane helices of each are flexible and their collective twisting and bending contribute to most structural variations, according to principal component analysis. Considering FtsQ only, the protein is more flexible in its free state relative to its complexed state—with the biggest structural changes located at the elbow between the transmembrane helix and the α-domain. The disordered N-terminal domains of FtsQ and FtsL associate with the cytoplasmic surface of the inner membrane instead of freely venturing into the solvent. Contact network analysis highlighted the formation of the interlocking trimeric module in FtsQBL as playing a central role in mediating the overall structure of the complex. Research Network of Computational and Structural Biotechnology 2023-04-03 /pmc/articles/PMC10126914/ /pubmed/37114213 http://dx.doi.org/10.1016/j.csbj.2023.03.052 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Chen, Yu Wai
Kong, Wai-Po
Wong, Kwok-Yin
The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations
title The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations
title_full The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations
title_fullStr The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations
title_full_unstemmed The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations
title_short The structural integrity of the membrane-embedded bacterial division complex FtsQBL studied with molecular dynamics simulations
title_sort structural integrity of the membrane-embedded bacterial division complex ftsqbl studied with molecular dynamics simulations
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10126914/
https://www.ncbi.nlm.nih.gov/pubmed/37114213
http://dx.doi.org/10.1016/j.csbj.2023.03.052
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