Thomas Comptdaer, Meryem Tardivel, Claire Schirmer, Luc Buée, Marie-Christine Galas
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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. 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引用次数: 0
摘要
虽然双螺旋结构长期以来一直是其标志性代表,但 DNA 在结构上是动态的,可以采用其他二级构型。具体来说,富含鸟嘌呤的 DNA 序列可以折叠成鸟嘌呤四重(G4)结构。这些 G4 作为基因表达和基因组稳定性的调节因子发挥着关键作用,并影响着蛋白质的平衡。尽管G4具有重要意义,但其与阿尔茨海默病(AD)等神经退行性疾病的关系却一直未得到足够重视。最近的研究发现,在来自阿尔茨海默病大脑的 sarkosyl 不溶性聚集体中发现了预测会形成 G4 的 DNA 序列,从而对 G4 结构 DNA(G4 DNA)参与病理过程提出了质疑。利用免疫荧光和共聚焦显微镜分析,我们研究了tau病理学(包括AD在内的tau病的特征)对小鼠神经元中G4 DNA分布的影响及其与AD大脑的相关性。在健康神经元中,G4 DNA可在细胞核中检测到,并明显存在于核小体中。然而,在tau病理的转基因小鼠模型(THY-Tau22)中,疾病的早期阶段表现出G4 DNA的核分布障碍。此外,G4 DNA会在神经元的细胞质中积累,表现出tau低聚物和氧化性DNA损伤。在病理后期,当出现较大的 tau 聚合体时,这种分布改变仍会持续。G4 DNA在细胞质中的沉积似乎仍然不是tau聚集过程中的关键因素。在AD大脑皮层的神经元中也观察到了类似的模式。此外,G4 DNA分布的紊乱还与神经元细胞核和核小体大小的各种变化有关,这表明了对压力的反应和促生存机制的激活。我们的研究结果揭示了 tau 病理学对 G4 DNA 动态以及神经元核和核小体机械生物学的重大影响。这些发现揭示了tau病因发病机制的新层面。
Cell redistribution of G quadruplex-structured DNA is associated with morphological changes of nuclei and nucleoli in neurons during tau pathology progression
While 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.
期刊介绍:
Brain Pathology is the journal of choice for biomedical scientists investigating diseases of the nervous system. The official journal of the International Society of Neuropathology, Brain Pathology is a peer-reviewed quarterly publication that includes original research, review articles and symposia focuses on the pathogenesis of neurological disease.