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Diversity in kinetics correlated with structure in nano body-stabilized LacY

The structure of lactose permease, stabilized in a periplasmic open conformation by two Gly to Trp replacements (LacYww) and complexed with a nanobody directed against this conformation, provides the highest resolution structure of the symporter. The nanobody binds in a different manner than two oth...

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Autores principales: Kumar, Hemant, Finer-Moore, Janet, Smirnova, Irina, Kasho, Vladimir, Pardon, Els, Steyaert, Jan, Kaback, H. Ronald, Stroud, Robert M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7205474/
https://www.ncbi.nlm.nih.gov/pubmed/32380514
http://dx.doi.org/10.1371/journal.pone.0232846
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author Kumar, Hemant
Finer-Moore, Janet
Smirnova, Irina
Kasho, Vladimir
Pardon, Els
Steyaert, Jan
Kaback, H. Ronald
Stroud, Robert M.
author_facet Kumar, Hemant
Finer-Moore, Janet
Smirnova, Irina
Kasho, Vladimir
Pardon, Els
Steyaert, Jan
Kaback, H. Ronald
Stroud, Robert M.
author_sort Kumar, Hemant
collection PubMed
description The structure of lactose permease, stabilized in a periplasmic open conformation by two Gly to Trp replacements (LacYww) and complexed with a nanobody directed against this conformation, provides the highest resolution structure of the symporter. The nanobody binds in a different manner than two other nanobodies made against the same mutant, which also bind to the same general region on the periplasmic side. This region of the protein may represent an immune hotspot. The CDR3 loop of the nanobody is held by hydrogen bonds in a conformation that partially blocks access to the substrate-binding site. As a result, k(on) and k(off) for galactoside binding to either LacY or the double mutant complexed with the nanobody are lower than for the other two LacY/nanobody complexes though the K(d) values are similar, reflecting the fact that the nanobodies rigidify structures along the pathway. While the wild-type LacY/nanobody complex clearly stabilizes a similar ‘extracellular open’ conformation in solution, judged by binding kinetics, the complex with wild-type LacY did not yet crystallize, suggesting the nanobody does not bind strongly enough to shift the equilibrium to stabilize a periplasmic side-open conformation suitable for crystallization. However, the similarity of the galactoside binding kinetics for the nanobody-bound complexes with wild type LacY and with LacY(WW) indicates that they have similar structures, showing that the reported co-structures reliably show nanobody interactions with LacY.
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spelling pubmed-72054742020-05-12 Diversity in kinetics correlated with structure in nano body-stabilized LacY Kumar, Hemant Finer-Moore, Janet Smirnova, Irina Kasho, Vladimir Pardon, Els Steyaert, Jan Kaback, H. Ronald Stroud, Robert M. PLoS One Research Article The structure of lactose permease, stabilized in a periplasmic open conformation by two Gly to Trp replacements (LacYww) and complexed with a nanobody directed against this conformation, provides the highest resolution structure of the symporter. The nanobody binds in a different manner than two other nanobodies made against the same mutant, which also bind to the same general region on the periplasmic side. This region of the protein may represent an immune hotspot. The CDR3 loop of the nanobody is held by hydrogen bonds in a conformation that partially blocks access to the substrate-binding site. As a result, k(on) and k(off) for galactoside binding to either LacY or the double mutant complexed with the nanobody are lower than for the other two LacY/nanobody complexes though the K(d) values are similar, reflecting the fact that the nanobodies rigidify structures along the pathway. While the wild-type LacY/nanobody complex clearly stabilizes a similar ‘extracellular open’ conformation in solution, judged by binding kinetics, the complex with wild-type LacY did not yet crystallize, suggesting the nanobody does not bind strongly enough to shift the equilibrium to stabilize a periplasmic side-open conformation suitable for crystallization. However, the similarity of the galactoside binding kinetics for the nanobody-bound complexes with wild type LacY and with LacY(WW) indicates that they have similar structures, showing that the reported co-structures reliably show nanobody interactions with LacY. Public Library of Science 2020-05-07 /pmc/articles/PMC7205474/ /pubmed/32380514 http://dx.doi.org/10.1371/journal.pone.0232846 Text en © 2020 Kumar et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Kumar, Hemant
Finer-Moore, Janet
Smirnova, Irina
Kasho, Vladimir
Pardon, Els
Steyaert, Jan
Kaback, H. Ronald
Stroud, Robert M.
Diversity in kinetics correlated with structure in nano body-stabilized LacY
title Diversity in kinetics correlated with structure in nano body-stabilized LacY
title_full Diversity in kinetics correlated with structure in nano body-stabilized LacY
title_fullStr Diversity in kinetics correlated with structure in nano body-stabilized LacY
title_full_unstemmed Diversity in kinetics correlated with structure in nano body-stabilized LacY
title_short Diversity in kinetics correlated with structure in nano body-stabilized LacY
title_sort diversity in kinetics correlated with structure in nano body-stabilized lacy
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7205474/
https://www.ncbi.nlm.nih.gov/pubmed/32380514
http://dx.doi.org/10.1371/journal.pone.0232846
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