category
bioRxiv
date
Feb 20, 2026
slug
status
Published
summary
1.发现新型lncRNA ACHLYS与剪接因子NSRa相互作用,通过调控生物分子凝聚体影响可变剪接;2.揭示ACHLYS通过NSRa介导的相分离机制调控根发育;3.首次证明lncRNA可作为剪接因子的相分离调节剂,为表观遗传调控提供新视角。
tags
测序技术
蛋白质组学
type
Post

📄 原文题目

The long non-coding RNA ACHLYS modulates biomolecular condensates to regulate alternative splicing in root development

🔗 原文链接

💡 AI 核心解读

1.发现新型lncRNA ACHLYS与剪接因子NSRa相互作用,通过调控生物分子凝聚体影响可变剪接;2.揭示ACHLYS通过NSRa介导的相分离机制调控根发育;3.首次证明lncRNA可作为剪接因子的相分离调节剂,为表观遗传调控提供新视角。

📝 英文原版摘要

Alternative splicing (AS) enables eukaryotes to dynamically adjust RNA and protein isoforms encoded in one gene. Long non-coding RNAs (lncRNA) have emerged as novel regulators of AS through multiple modes of action, including interactions with splicing factor (SF) proteins. Here, we used Arabidopsis thaliana lateral root development to dissect the specificity of lncRNAs in AS regulation. Data mining and a transient expression screen allowed us to identify novel lncRNAs interacting in vivo with the well-characterized SFs Nuclear speckle RNA binding protein A (NSRa) and glycine-rich RNA-binding protein 7 (GRP7), that are differentially expressed during lateral root organogenesis. We identified 4 lncRNAs affecting more than 250 AS events in plant cells, whereby most AS events are unique for each lncRNA. Notably, 19% of the AS events linked to two NSRa-recognized lncRNAs are identical and positively correlated. One lncRNA was named ACHLYS and is highly conserved in several Brassicaceae whereas another was the recently characterized FLAIL lncRNA. ACHLYS knockdown (KD-ACHLYS) and overexpressing lines (OE-ACHLYS) modulate AS regulation in plants and affect root architecture. In parallel, we performed NSRa-iCLIP to determine in vivo genome-wide NSRa binding sites. Interestingly, NSRa binding sites are locally enriched in ACHLYS-dependent AS introns and ACHLYS itself. A specific ACHLYS-induced AS event requires NSRa function showing that ACHLYS defines AS targets through NSRa interaction on specific transcripts. In vitro assays indicate that direct interaction of NSRa with ACHLYS promotes NSRa phase separation. Furthermore, overexpression of ACHLYS in NSRa-GFP plants results in increased accumulation of NSRa in Nuclear speckles. Our data revealed that ACHLYS can modulate NSRa co
ndensates in vivo and binds to NSRa for modifying AS patterns, suggesting a new mechanism where lncRNAs can fine tune SFs regulation and the transcriptome output in eukaryotic organogenesis.
胆固醇生物合成是CEBPA突变型急性髓系白血病的可靶向脆弱性非整倍体核型动力学的统一模型
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