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Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics

A salt bridge, one of the representative structural factors established by non-covalent interactions, plays a crucial role in stabilizing the structure and regulating the protein function, but its role in dynamic processes has been elusive. Here, to scrutinize the structural and functional roles of...

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Autores principales: Choi, Minseo, Kim, Jong Goo, Muniyappan, Srinivasan, Kim, Hanui, Kim, Tae Wu, Lee, Yunbeom, Lee, Sang Jin, Kim, Seong Ok, Ihee, Hyotcherl
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8208487/
https://www.ncbi.nlm.nih.gov/pubmed/34194711
http://dx.doi.org/10.1039/d1sc01207j
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author Choi, Minseo
Kim, Jong Goo
Muniyappan, Srinivasan
Kim, Hanui
Kim, Tae Wu
Lee, Yunbeom
Lee, Sang Jin
Kim, Seong Ok
Ihee, Hyotcherl
author_facet Choi, Minseo
Kim, Jong Goo
Muniyappan, Srinivasan
Kim, Hanui
Kim, Tae Wu
Lee, Yunbeom
Lee, Sang Jin
Kim, Seong Ok
Ihee, Hyotcherl
author_sort Choi, Minseo
collection PubMed
description A salt bridge, one of the representative structural factors established by non-covalent interactions, plays a crucial role in stabilizing the structure and regulating the protein function, but its role in dynamic processes has been elusive. Here, to scrutinize the structural and functional roles of the salt bridge in the process of performing the protein function, we investigated the effects of salt bridges on the allosteric structural transition of homodimeric hemoglobin (HbI) by applying time-resolved X-ray solution scattering (TRXSS) to the K30D mutant, in which the interfacial salt bridges of the wild type (WT) are abolished. The TRXSS data of K30D are consistent with the kinetic model that requires one monomer intermediate in addition to three structurally distinct dimer intermediates (I(1), I(2), and I(3)) observed in WT and other mutants. The kinetic and structural analyses show that K30D has an accelerated biphasic transition from I(2) to I(3) by more than nine times compared to WT and lacks significant structural changes in the transition from R-like I(2) to T-like I(3) observed in WT, unveiling that the loss of the salt bridges interrupts the R–T allosteric transition of HbI. Besides, the correlation between the bimolecular CO recombination rates in K30D, WT, and other mutants reveals that the bimolecular CO recombination is abnormally decelerated in K30D, indicating that the salt bridges also affect the cooperative ligand binding in HbI. These comparisons of the structural dynamics and kinetics of K30D and WT show that the interfacial salt bridges not only assist the physical connection of two subunits but also play a critical role in the global structural signal transduction of one subunit to the other subunit via a series of well-organized structural transitions.
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spelling pubmed-82084872021-06-29 Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics Choi, Minseo Kim, Jong Goo Muniyappan, Srinivasan Kim, Hanui Kim, Tae Wu Lee, Yunbeom Lee, Sang Jin Kim, Seong Ok Ihee, Hyotcherl Chem Sci Chemistry A salt bridge, one of the representative structural factors established by non-covalent interactions, plays a crucial role in stabilizing the structure and regulating the protein function, but its role in dynamic processes has been elusive. Here, to scrutinize the structural and functional roles of the salt bridge in the process of performing the protein function, we investigated the effects of salt bridges on the allosteric structural transition of homodimeric hemoglobin (HbI) by applying time-resolved X-ray solution scattering (TRXSS) to the K30D mutant, in which the interfacial salt bridges of the wild type (WT) are abolished. The TRXSS data of K30D are consistent with the kinetic model that requires one monomer intermediate in addition to three structurally distinct dimer intermediates (I(1), I(2), and I(3)) observed in WT and other mutants. The kinetic and structural analyses show that K30D has an accelerated biphasic transition from I(2) to I(3) by more than nine times compared to WT and lacks significant structural changes in the transition from R-like I(2) to T-like I(3) observed in WT, unveiling that the loss of the salt bridges interrupts the R–T allosteric transition of HbI. Besides, the correlation between the bimolecular CO recombination rates in K30D, WT, and other mutants reveals that the bimolecular CO recombination is abnormally decelerated in K30D, indicating that the salt bridges also affect the cooperative ligand binding in HbI. These comparisons of the structural dynamics and kinetics of K30D and WT show that the interfacial salt bridges not only assist the physical connection of two subunits but also play a critical role in the global structural signal transduction of one subunit to the other subunit via a series of well-organized structural transitions. The Royal Society of Chemistry 2021-05-10 /pmc/articles/PMC8208487/ /pubmed/34194711 http://dx.doi.org/10.1039/d1sc01207j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Choi, Minseo
Kim, Jong Goo
Muniyappan, Srinivasan
Kim, Hanui
Kim, Tae Wu
Lee, Yunbeom
Lee, Sang Jin
Kim, Seong Ok
Ihee, Hyotcherl
Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics
title Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics
title_full Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics
title_fullStr Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics
title_full_unstemmed Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics
title_short Effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics
title_sort effect of the abolition of intersubunit salt bridges on allosteric protein structural dynamics
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8208487/
https://www.ncbi.nlm.nih.gov/pubmed/34194711
http://dx.doi.org/10.1039/d1sc01207j
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