Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family

<p>Abstract</p> <p>Background</p> <p>Gram-negative bacteria use periplasmic-binding proteins (bPBP) to transport nutrients through the periplasm. Despite immense diversity within the recognized substrates, all members of the family share a common fold that includes two...

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Main Authors: Dallakyan Sargis, Huynh Dang H, Livesay Dennis R, Jacobs Donald J
Format: Article
Language:English
Published: BMC 2008-08-01
Series:Chemistry Central Journal
Online Access:http://journal.chemistrycentral.com/content/2/1/17
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spelling doaj-0ec312cd7aa34a1f96b81843b40d305d2021-08-02T12:02:08ZengBMCChemistry Central Journal1752-153X2008-08-01211710.1186/1752-153X-2-17Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein familyDallakyan SargisHuynh Dang HLivesay Dennis RJacobs Donald J<p>Abstract</p> <p>Background</p> <p>Gram-negative bacteria use periplasmic-binding proteins (bPBP) to transport nutrients through the periplasm. Despite immense diversity within the recognized substrates, all members of the family share a common fold that includes two domains that are separated by a conserved hinge. The hinge allows the protein to cycle between open (apo) and closed (ligated) conformations. Conformational changes within the proteins depend on a complex interplay of mechanical and thermodynamic response, which is manifested as an increase in thermal stability and decrease of flexibility upon ligand binding.</p> <p>Results</p> <p>We use a distance constraint model (DCM) to quantify the give and take between thermodynamic stability and mechanical flexibility across the bPBP family. Quantitative stability/flexibility relationships (QSFR) are readily evaluated because the DCM links mechanical and thermodynamic properties. We have previously demonstrated that QSFR is moderately conserved across a mesophilic/thermophilic RNase H pair, whereas the observed variance indicated that different enthalpy-entropy mechanisms allow similar mechanical response at their respective melting temperatures. Our predictions of heat capacity and free energy show marked diversity across the bPBP family. While backbone flexibility metrics are mostly conserved, cooperativity correlation (long-range couplings) also demonstrate considerable amount of variation. Upon ligand removal, heat capacity, melting point, and mechanical rigidity are, as expected, lowered. Nevertheless, significant differences are found in molecular cooperativity correlations that can be explained by the detailed nature of the hydrogen bond network.</p> <p>Conclusion</p> <p>Non-trivial mechanical and thermodynamic variation across the family is explained by differences within the underlying H-bond networks. The mechanism is simple; variation within the H-bond networks result in altered mechanical linkage properties that directly affect intrinsic flexibility. Moreover, varying numbers of H-bonds and their strengths control the likelihood for energetic fluctuations as H-bonds break and reform, thus directly affecting thermodynamic properties. Consequently, these results demonstrate how unexpected large differences, especially within cooperativity correlation, emerge from subtle differences within the underlying H-bond network. This inference is consistent with well-known results that show allosteric response within a family generally varies significantly. Identifying the hydrogen bond network as a critical determining factor for these large variances may lead to new methods that can predict such effects.</p> http://journal.chemistrycentral.com/content/2/1/17
collection DOAJ
language English
format Article
sources DOAJ
author Dallakyan Sargis
Huynh Dang H
Livesay Dennis R
Jacobs Donald J
spellingShingle Dallakyan Sargis
Huynh Dang H
Livesay Dennis R
Jacobs Donald J
Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family
Chemistry Central Journal
author_facet Dallakyan Sargis
Huynh Dang H
Livesay Dennis R
Jacobs Donald J
author_sort Dallakyan Sargis
title Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family
title_short Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family
title_full Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family
title_fullStr Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family
title_full_unstemmed Hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family
title_sort hydrogen bond networks determine emergent mechanical and thermodynamic properties across a protein family
publisher BMC
series Chemistry Central Journal
issn 1752-153X
publishDate 2008-08-01
description <p>Abstract</p> <p>Background</p> <p>Gram-negative bacteria use periplasmic-binding proteins (bPBP) to transport nutrients through the periplasm. Despite immense diversity within the recognized substrates, all members of the family share a common fold that includes two domains that are separated by a conserved hinge. The hinge allows the protein to cycle between open (apo) and closed (ligated) conformations. Conformational changes within the proteins depend on a complex interplay of mechanical and thermodynamic response, which is manifested as an increase in thermal stability and decrease of flexibility upon ligand binding.</p> <p>Results</p> <p>We use a distance constraint model (DCM) to quantify the give and take between thermodynamic stability and mechanical flexibility across the bPBP family. Quantitative stability/flexibility relationships (QSFR) are readily evaluated because the DCM links mechanical and thermodynamic properties. We have previously demonstrated that QSFR is moderately conserved across a mesophilic/thermophilic RNase H pair, whereas the observed variance indicated that different enthalpy-entropy mechanisms allow similar mechanical response at their respective melting temperatures. Our predictions of heat capacity and free energy show marked diversity across the bPBP family. While backbone flexibility metrics are mostly conserved, cooperativity correlation (long-range couplings) also demonstrate considerable amount of variation. Upon ligand removal, heat capacity, melting point, and mechanical rigidity are, as expected, lowered. Nevertheless, significant differences are found in molecular cooperativity correlations that can be explained by the detailed nature of the hydrogen bond network.</p> <p>Conclusion</p> <p>Non-trivial mechanical and thermodynamic variation across the family is explained by differences within the underlying H-bond networks. The mechanism is simple; variation within the H-bond networks result in altered mechanical linkage properties that directly affect intrinsic flexibility. Moreover, varying numbers of H-bonds and their strengths control the likelihood for energetic fluctuations as H-bonds break and reform, thus directly affecting thermodynamic properties. Consequently, these results demonstrate how unexpected large differences, especially within cooperativity correlation, emerge from subtle differences within the underlying H-bond network. This inference is consistent with well-known results that show allosteric response within a family generally varies significantly. Identifying the hydrogen bond network as a critical determining factor for these large variances may lead to new methods that can predict such effects.</p>
url http://journal.chemistrycentral.com/content/2/1/17
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