Authors
Jiangtao Yu, Xiaolu Zhu, Qianyu Lu, Haoli Ma, Zhongxiang Zhang, Qian Yu, Zilin Liu, Zhiqiang Li, Gang Li, Xiaoqing Jin
Published in
Brain : a journal of neurology. Oct 05, 2026. Epub Oct 05, 2026.
Abstract
RNA modifications, especially N6-methyladenosine (m6A), have emerged as pivotal regulators of gene expression in neurological disorders, yet their roles in ischaemic stroke remain unclear. Here, we performed a CRISPR-Cas9 loss-of-function screen targeting 118 RNA modification-related genes in neuronal cells subjected to oxygen-glucose deprivation/reoxygenation (OGD/R) and validated the findings in a mouse model of middle cerebral artery occlusion/reperfusion (MCAO/R). We identified Fto as a top negatively selected gene, with its expression progressively reduced and global m6A levels increased during ischaemic injury. Neuron-specific Fto knockout aggravated infarct size, neurological deficits, cognitive impairment, and neuronal apoptosis, accompanied by activation of multiple signalling pathways revealed by RNA-seq analysis. Integrated m6A-seq and RNA-seq profiling uncovered Atf3 as a hypermethylated and upregulated hub gene downstream of Fto deficiency, linking m6A dysregulation to enhanced neuronal apoptosis. In vitro assays confirmed that FTO knockdown increased ATF3 mRNA methylation and expression under OGD/R conditions, whereas Fto overexpression in vivo alleviated ischaemic brain injury, improved neurological outcomes, reduced Atf3 expression, and lowered global m6A levels. Together, our findings reveal the Fto/m6A/ATF3 axis as a critical mediator of ischaemic injury and highlight Fto restoration as a potential therapeutic strategy for stroke.
PMID:
42831527
Bibliographic data and abstract were imported from PubMed on 05 Oct 2026.
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