Université de Strasbourg, Laboratoire de Neuroscience Cognitives et Adaptatives (LNCA), Strasbourg, France; CNRS, UMR 7364, Strasbourg 67000, France; Université de Strasbourg, INSERM, UMR-S1118, Strasbourg, France.
Université de Strasbourg, Laboratoire de Neuroscience Cognitives et Adaptatives (LNCA), Strasbourg, France; CNRS, UMR 7364, Strasbourg 67000, France.
Prog Neurobiol. 2023 Aug;227:102483. doi: 10.1016/j.pneurobio.2023.102483. Epub 2023 Jun 15.
Cytoplasmic mislocalization of the nuclear Fused in Sarcoma (FUS) protein is associated to amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Cytoplasmic FUS accumulation is recapitulated in the frontal cortex and spinal cord of heterozygous Fus mice. Yet, the mechanisms linking FUS mislocalization to hippocampal function and memory formation are still not characterized. Herein, we show that in these mice, the hippocampus paradoxically displays nuclear FUS accumulation. Multi-omic analyses showed that FUS binds to a set of genes characterized by the presence of an ETS/ELK-binding motifs, and involved in RNA metabolism, transcription, ribosome/mitochondria and chromatin organization. Importantly, hippocampal nuclei showed a decompaction of the neuronal chromatin at highly expressed genes and an inappropriate transcriptomic response was observed after spatial training of Fus mice. Furthermore, these mice lacked precision in a hippocampal-dependent spatial memory task and displayed decreased dendritic spine density. These studies shows that mutated FUS affects epigenetic regulation of the chromatin landscape in hippocampal neurons, which could participate in FTD/ALS pathogenic events. These data call for further investigation in the neurological phenotype of FUS-related diseases and open therapeutic strategies towards epigenetic drugs.
细胞质中核融合肉瘤(FUS)蛋白的定位错误与肌萎缩侧索硬化症(ALS)和额颞叶痴呆(FTD)有关。杂合性 Fus 小鼠的额皮质和脊髓中重现了细胞质 FUS 的积累。然而,将 FUS 定位错误与海马功能和记忆形成联系起来的机制仍未被阐明。在此,我们发现这些小鼠的海马区反而出现了核 FUS 的积累。多组学分析表明,FUS 与一组具有 ETS/ELK 结合基序的基因结合,这些基因参与 RNA 代谢、转录、核糖体/线粒体和染色质组织。重要的是,海马核在高表达基因处表现出神经元染色质的解压缩,并且在 Fus 小鼠进行空间训练后观察到异常的转录组反应。此外,这些小鼠在海马依赖的空间记忆任务中缺乏准确性,并显示出树突棘密度降低。这些研究表明,突变的 FUS 影响了海马神经元染色质景观的表观遗传调控,这可能参与了 FTD/ALS 的发病事件。这些数据呼吁进一步研究 FUS 相关疾病的神经表型,并为表观遗传药物的治疗策略开辟了道路。