Cell redistribution of G quadruplex‐structured DNA is associated with morphological changes of nuclei and nucleoli in neurons during tau pathology progression

Author:

Comptdaer Thomas1,Tardivel Meryem2,Schirmer Claire1,Buée Luc1,Galas Marie‐Christine1ORCID

Affiliation:

1. University of Lille, Inserm, CHU Lille, CNRS, LilNCog‐Lille Neuroscience and Cognition Lille France

2. University of Lille, CNRS, Inserm, CHU Lille, Institut Pasteur de Lille, US41‐UAR 2014‐PLBS Lille France

Abstract

AbstractWhile the double helical structure has long been its iconic representation, DNA is structurally dynamic and can adopt alternative secondary configurations. Specifically, guanine‐rich DNA sequences can fold in guanine quadruplexes (G4) structures. These G4 play pivotal roles as regulators of gene expression and genomic stability, and influence protein homeostasis. Despite their significance, the association of G4 with neurodegenerative diseases such as Alzheimer's disease (AD) has been underappreciated. Recent findings have identified DNA sequences predicted to form G4 in sarkosyl‐insoluble aggregates from AD brains, questioning the involvement of G4‐structured DNA (G4 DNA) in the pathology. Using immunofluorescence coupled to confocal microscopy analysis we investigated the impact of tau pathology, a hallmark of tauopathies including AD, on the distribution of G4 DNA in murine neurons and its relevance to AD brains. In healthy neurons, G4 DNA is detected in nuclei with a notable presence in nucleoli. However, in a transgenic mouse model of tau pathology (THY‐Tau22), early stages of the disease exhibit an impairment in the nuclear distribution of G4 DNA. In addition, G4 DNA accumulates in the cytoplasm of neurons exhibiting oligomerized tau and oxidative DNA damage. This altered distribution persists in the later stage of the pathology when larger tau aggregates are present. Still cytoplasmic deposition of G4 DNA does not appear to be a critical factor in the tau aggregation process. Similar patterns are observed in neurons from the AD cortex. Furthermore, the disturbance in G4 DNA distribution is associated with various changes in the size of neuronal nuclei and nucleoli, indicative of responses to stress and the activation of pro‐survival mechanisms. Our results shed light on a significant impact of tau pathology on the dynamics of G4 DNA and on nuclear and nucleolar mechanobiology in neurons. These findings reveal new dimensions in the etiopathogenesis of tauopathies.

Funder

EU Joint Programme – Neurodegenerative Disease Research

Centre National de la Recherche Scientifique

Institut National de la Santé et de la Recherche Médicale

Université de Lille

Fonds Wetenschappelijk Onderzoek

Innovationsfonden

Agence Nationale de la Recherche

Vetenskapsrådet

Medical Research Council

Publisher

Wiley

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