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血管生成素-TIE2前馈回路促进PIK3CA驱动的静脉畸形。

Angiopoietin-TIE2 feedforward circuit promotes PIK3CA-driven venous malformations.

作者信息

Kraft Marle, Schoofs Hans, Petkova Milena, Andrade Jorge, Grosso Ana Rita, Benedito Rui, De Roo An-Katrien, Boon Laurence M, Vikkula Miikka, Kapp Friedrich G, Hägerling René, Potente Michael, Mäkinen Taija

机构信息

Uppsala University, Department of Immunology, Genetics and Pathology, Uppsala, Sweden.

Angiogenesis & Metabolism Laboratory, Center of Vascular Biomedicine, Berlin Institute of Health at Charité - Universitätsmedizin Berlin, Berlin, Germany.

出版信息

Nat Cardiovasc Res. 2025 May 23. doi: 10.1038/s44161-025-00655-9.

Abstract

Venous malformations (VMs) are vascular anomalies lacking curative treatments, often caused by somatic PIK3CA mutations that hyperactivate the PI3Kα-AKT-mTOR signaling pathway. Here, we identify a venous-specific signaling circuit driving disease progression, where excessive PI3Kα activity amplifies upstream TIE2 receptor signaling through autocrine and paracrine mechanisms. In Pik3ca-driven VM mouse models, single-cell transcriptomics and lineage tracking revealed clonal expansion of mutant endothelial cells with a post-capillary venous phenotype, characterized by suppression of the AKT-inhibited FOXO1 and its target genes, including the TIE2 antagonist ANGPT2. An imbalance in TIE2 ligands, likely exacerbated by aberrant recruitment of smooth muscle cells producing the agonist ANGPT1, increased TIE2 activity in both mouse and human VMs. While mTOR blockade had limited effects on advanced VMs in mice, inhibiting TIE2 or ANGPT effectively suppressed their growth. These findings uncover a PI3K-FOXO1-ANGPT-TIE2 circuit as a core driver of PIK3CA-related VMs and highlight TIE2 as a promising therapeutic target.

摘要

静脉畸形(VMs)是缺乏治愈性治疗方法的血管异常,通常由体细胞PIK3CA突变引起,这些突变会过度激活PI3Kα-AKT-mTOR信号通路。在此,我们确定了一个驱动疾病进展的静脉特异性信号回路,其中过量的PI3Kα活性通过自分泌和旁分泌机制放大上游TIE2受体信号。在Pik3ca驱动的VM小鼠模型中,单细胞转录组学和谱系追踪揭示了具有毛细血管后静脉表型的突变内皮细胞的克隆扩增,其特征是AKT抑制的FOXO1及其靶基因受到抑制,包括TIE2拮抗剂ANGPT2。TIE2配体的失衡,可能因产生激动剂ANGPT1的平滑肌细胞的异常募集而加剧,在小鼠和人类VM中均增加了TIE2活性。虽然mTOR阻断对小鼠晚期VM的影响有限,但抑制TIE2或ANGPT可有效抑制其生长。这些发现揭示了PI3K-FOXO1-ANGPT-TIE2回路是PIK3CA相关VM的核心驱动因素,并突出了TIE2作为一个有前景的治疗靶点。

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