染色质
生物
转录调控
转录组
调节器
基因
细胞生物学
神经科学
基因组
基因表达调控
舱室(船)
抄写(语言学)
基因表达
长非编码RNA
下调和上调
遗传学
计算生物学
转录因子
大脑皮层
染色质重塑
缺血
皮质(解剖学)
核糖核酸
抑制因子
脑缺血
基因调控网络
发起人
作者
Hadjer Namous,Raghu Vemuganti
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2026-02-01
标识
DOI:10.64898/2026.01.28.702387
摘要
Ischemic stroke triggers massive transcriptional reprogramming, yet how the brain's higher-order chromatin architecture orchestrates this response remains unknown. We mapped the spatiotemporal reorganization of the genome in the mouse peri-infarct cerebral cortex following transient middle cerebral artery occlusion at 6h and 24h of reperfusion. By integrating high-resolution Hi-C data with transcriptomic and cis-regulatory landscapes, we show that stroke induces a hierarchical rewiring of genome architecture across compartments, domains, and loops. Early A to B compartment shifts were largely transcriptionally silent for coding genes, whereas B compartments were enriched for upregulated noncoding RNAs. We also observe structural dependencies between scales. Gained loops do not independently drive differential expression. Instead, their regulatory potential is gated by their domain context. Loops nested within expanded Topologically Associating Domains (TADs) show a higher percentage of stroke-responsive transcripts. Flow analyses indicate that gained TADs establish the primary scaffold for transcriptional responses, while compartment identity refines the specificity of noncoding RNA regulation. These findings suggest that post-stroke gene expression follows a selective, multi-scale architectural hierarchy, with chromatin remodeling as a central regulator of the early ischemic stress response and genome architecture is a determinant of transcriptional outcomes.
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