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CRISPR and Gene Augmentation Rescue Trabecular Meshwork Dysfunction in iPSC Models of Lowe Syndrome.

Created on 10 Sep 2026

Authors

Siyu Chen, Zhiquan Liu, Wenmin Wang, Qing Wang, Tia J Kowal, Fan Zhang, Grzegorz Walkiewicz, Faruk Hossen, Herbert M Lachman, Jinqiong Zhou, Yiting Wang, Yang Sun

Published in

Advanced science (Weinheim, Baden-Wurttemberg, Germany). Pages e77704. Sep 09, 2026. Epub Sep 09, 2026.

Abstract

Lowe syndrome is a rare, currently incurable multisystem disorder that affects the eyes, kidneys, and central nervous system. It is caused by mutations in the OCRL gene, which encodes an inositol 5-phosphatase. The disorder remains incurable, and the pathways underlying the ocular symptoms remain poorly understood, largely due to the lack of appropriate models. In this study, trabecular meshwork cell models of Lowe syndrome were generated to test two distinct gene therapy strategies: a mutation-agnostic OCRL DNA augmentation therapy and a patient-specific CRISPR-mediated gene correction strategy. The results showed that AAV2-OCRL demonstrated the highest transduction efficiency in patient iPSC-derived trabecular meshwork models (iHTM) among the three AAV-OCRL vectors evaluated, establishing it as a promising delivery vector. Targeted CRISPR-based gene therapy restored OCRL enzyme activity and corrected cellular defects in patient iPSC-derived trabecular meshwork cell models. Furthermore, RNA-sequencing analysis of these models revealed dysregulation of extracellular matrix organization, cell adhesion, focal adhesion, and cytoskeletal regulatory pathways, suggesting that disruption of interconnected ECM-adhesion-cytoskeletal networks may contribute to trabecular meshwork dysfunction in Lowe syndrome-associated glaucoma. These findings indicate the feasibility of OCRL gene augmentation and CRISPR-based gene editing in patient-derived ocular models and position AAV2-OCRL as a leading therapeutic candidate for Lowe syndrome.

PMID:
42717497
Bibliographic data and abstract were imported from PubMed on 10 Sep 2026.

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