Utilizing AI for the Identification and Validation of Novel Therapeutic Targets and Repurposed Drugs for Endometriosis

子宫内膜异位症 生物 癌症研究 药物重新定位 细胞凋亡 基因敲除 间质细胞 药理学 生物信息学 内科学 药品 医学 生物化学
作者
Bonnie Hei Man Liu,Yuezhen Lin,Xi Long,Sze Wan Hung,Anna V. Gaponova,Feng Ren,Alex Zhavoronkov,Frank W. Pun,Chi Chiu Wang
出处
期刊:Advanced Science [Wiley]
卷期号:12 (5): e2406565-e2406565 被引量:12
标识
DOI:10.1002/advs.202406565
摘要

Endometriosis affects over 190 million women globally, and effective therapies are urgently needed to address the burden of endometriosis on women's health. Using an artificial intelligence (AI)-driven target discovery platform, two unreported therapeutic targets, guanylate-binding protein 2 (GBP2) and hematopoietic cell kinase (HCK) are identified, along with a drug repurposing target, integrin beta 2 (ITGB2) for the treatment of endometriosis. GBP2, HCK, and ITGB2 are upregulated in human endometriotic specimens. siRNA-mediated knockdown of GBP2 and HCK significantly reduced cell viability and proliferation while stimulating apoptosis in endometrial stromal cells. In subcutaneous and intraperitoneal endometriosis mouse models, siRNAs targeting GBP2 and HCK notably reduced lesion volume and weight, with decreased proliferation and increased apoptosis within lesions. Both subcutaneous and intraperitoneal administration of Lifitegrast, an approved ITGB2 antagonist, effectively suppresses lesion growth. Collectively, these data present Lifitegrast as a previously unappreciated intervention for endometriosis treatment and identify GBP2 and HCK as novel druggable targets in endometriosis treatment. This study underscores AI's potential to accelerate the discovery of novel drug targets and facilitate the repurposing of treatment modalities for endometriosis.
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