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Updated: May 26, 2026

Artificial Intelligence Approaches to Assessing Primary Cilia
Published on: May 1, 2021
The Lowe syndrome protein OCRL1 is involved in primary cilia assembly
Brian G Coon1, Victor Hernandez, Kayalvizhi Madhivanan
1Department of Biological Sciences, Purdue University, West Lafayette, IN 47907, USA.
Insights
Lowe syndrome (LS) cells show primary cilia assembly defects, a hallmark of ciliopathies. Restoring Ocrl1 function corrected these defects, suggesting new therapeutic targets for this X-linked genetic disease.
Area of Science:
- Genetics
- Cell Biology
- Developmental Biology
Background:
- Lowe syndrome (LS) is a severe X-linked genetic disorder.
- LS is characterized by congenital cataracts, intellectual disability, and kidney dysfunction.
- The underlying molecular mechanisms of LS remain largely unknown.
Purpose of the Study:
- To investigate the cellular and molecular basis of Lowe syndrome.
- To determine if LS exhibits characteristics of a ciliopathy.
- To elucidate the role of OCRL1 in primary cilia function.
Main Methods:
- Analysis of primary cilia assembly in patient-derived cells.
- Ocrl1 knockdown experiments in cell lines.
- Rescue experiments with wild-type Ocrl1.
- Phenotypic analysis of a zebrafish model of LS.
- Investigation of Ocrl1's role in protein trafficking to primary cilia.
Main Results:
- Cells from LS patients exhibit defects in primary cilia assembly.
- Ocrl1 knockdown phenocopies these cilia defects, which are reversible.
- A zebrafish LS model displays cilia abnormalities and developmental defects.
- Ocrl1 is crucial for protein transport to primary cilia via Rab8 and IPIP27/Ses pathways.
Conclusions:
- Lowe syndrome is characterized by primary cilia dysfunction.
- Ocrl1 deficiency disrupts protein trafficking essential for cilia function.
- These findings reveal novel insights into LS pathogenesis and suggest potential therapeutic strategies targeting cilia pathways.
Abstract:
Lowe syndrome (LS) is a devastating, X-linked genetic disease characterized by the presence of congenital cataracts, profound learning disabilities and renal dysfunction. Unfortunately, children affected with LS often die early of health complications including renal failure. Although this syndrome was first described in the early 1950s and the affected gene, OCRL1, was identified more than 17 years ago, the mechanism by which Ocrl1 defects lead to LS's symptoms remains unknown. Here we show that LS display characteristics of a ciliopathy. Specifically, we found that patients' cells have defects in the assembly of primary cilia and this phenotype was reproduced in cell lines by knock-down of Ocrl1. Importantly, this defect could be rescued by re-introduction of WT Ocrl1 in both patient and Ocrl1 knock-down cells. In addition, a zebrafish animal model of LS exhibited cilia defects and multiple morphological and anatomical abnormalities typically seen in ciliopathies. Mechanistically, we show that Ocrl1 is involved in protein trafficking to the primary cilia in an Rab8-and IPIP27/Ses-dependent manner. Taking into consideration the relevance of the signaling pathways hosted by the primary cilium, our results suggest hitherto unrecognized mechanisms by which Ocrl1 deficiency may contribute to the phenotypic characteristics of LS. This conceptual change in our understanding of the disease etiology may provide an alternative avenue for the development of therapies.
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