Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.

Tau hyperphosphorylation can be considered as one of the hallmarks of Alzheimer's disease and other tauophaties. Besides its well-known role as a microtubule associated protein, Tau displays a key function as a protector of genomic integrity in stress situations. Phosphorylation has been proven...

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Main Authors: Sergio Camero, María J Benítez, Raquel Cuadros, Félix Hernández, Jesús Avila, Juan S Jiménez
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4134230?pdf=render
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spelling doaj-1ca70002ee6c41d68b37ce23804de48e2020-11-24T21:30:30ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0198e10469010.1371/journal.pone.0104690Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.Sergio CameroMaría J BenítezRaquel CuadrosFélix HernándezJesús AvilaJuan S JiménezTau hyperphosphorylation can be considered as one of the hallmarks of Alzheimer's disease and other tauophaties. Besides its well-known role as a microtubule associated protein, Tau displays a key function as a protector of genomic integrity in stress situations. Phosphorylation has been proven to regulate multiple processes including nuclear translocation of Tau. In this contribution, we are addressing the physicochemical nature of DNA-Tau interaction including the plausible influence of phosphorylation. By means of surface plasmon resonance (SPR) we measured the equilibrium constant and the free energy, enthalpy and entropy changes associated to the Tau-DNA complex formation. Our results show that unphosphorylated Tau binding to DNA is reversible. This fact is in agreement with the protective role attributed to nuclear Tau, which stops binding to DNA once the insult is over. According to our thermodynamic data, oscillations in the concentration of dephosphorylated Tau available to DNA must be the variable determining the extent of Tau binding and DNA protection. In addition, thermodynamics of the interaction suggest that hydrophobicity must represent an important contribution to the stability of the Tau-DNA complex. SPR results together with those from Tau expression in HEK cells show that phosphorylation induces changes in Tau protein which prevent it from binding to DNA. The phosphorylation-dependent regulation of DNA binding is analogous to the Tau-microtubules binding inhibition induced by phosphorylation. Our results suggest that hydrophobicity may control Tau location and DNA interaction and that impairment of this Tau-DNA interaction, due to Tau hyperphosphorylation, could contribute to Alzheimer's pathogenesis.http://europepmc.org/articles/PMC4134230?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Sergio Camero
María J Benítez
Raquel Cuadros
Félix Hernández
Jesús Avila
Juan S Jiménez
spellingShingle Sergio Camero
María J Benítez
Raquel Cuadros
Félix Hernández
Jesús Avila
Juan S Jiménez
Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.
PLoS ONE
author_facet Sergio Camero
María J Benítez
Raquel Cuadros
Félix Hernández
Jesús Avila
Juan S Jiménez
author_sort Sergio Camero
title Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.
title_short Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.
title_full Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.
title_fullStr Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.
title_full_unstemmed Thermodynamics of the interaction between Alzheimer's disease related tau protein and DNA.
title_sort thermodynamics of the interaction between alzheimer's disease related tau protein and dna.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Tau hyperphosphorylation can be considered as one of the hallmarks of Alzheimer's disease and other tauophaties. Besides its well-known role as a microtubule associated protein, Tau displays a key function as a protector of genomic integrity in stress situations. Phosphorylation has been proven to regulate multiple processes including nuclear translocation of Tau. In this contribution, we are addressing the physicochemical nature of DNA-Tau interaction including the plausible influence of phosphorylation. By means of surface plasmon resonance (SPR) we measured the equilibrium constant and the free energy, enthalpy and entropy changes associated to the Tau-DNA complex formation. Our results show that unphosphorylated Tau binding to DNA is reversible. This fact is in agreement with the protective role attributed to nuclear Tau, which stops binding to DNA once the insult is over. According to our thermodynamic data, oscillations in the concentration of dephosphorylated Tau available to DNA must be the variable determining the extent of Tau binding and DNA protection. In addition, thermodynamics of the interaction suggest that hydrophobicity must represent an important contribution to the stability of the Tau-DNA complex. SPR results together with those from Tau expression in HEK cells show that phosphorylation induces changes in Tau protein which prevent it from binding to DNA. The phosphorylation-dependent regulation of DNA binding is analogous to the Tau-microtubules binding inhibition induced by phosphorylation. Our results suggest that hydrophobicity may control Tau location and DNA interaction and that impairment of this Tau-DNA interaction, due to Tau hyperphosphorylation, could contribute to Alzheimer's pathogenesis.
url http://europepmc.org/articles/PMC4134230?pdf=render
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