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Heterogeneity in Lowe Syndrome: Mutations Affecting the Phosphatase Domain of OCRL1 Differ in Impact on Enzymatic
Jennifer J Lee1,2, Swetha Ramadesikan1,2, Adrianna F Black1,2
1Department of Biological Sciences, Purdue University, West Lafayette, IN 47907, USA.
Abstract:
Lowe Syndrome (LS) is a condition due to mutations in the OCRL1 gene, characterized by congenital cataracts, intellectual disability, and kidney malfunction. Unfortunately, patients succumb to renal failure after adolescence. This study is centered in investigating the biochemical and phenotypic impact of patient's OCRL1 variants (OCRL1VAR). Specifically, we tested the hypothesis that some OCRL1VAR are stabilized in a non-functional conformation by focusing on missense mutations affecting the phosphatase domain, but not changing residues involved in binding/catalysis. The pathogenic and conformational characteristics of the selected variants were evaluated in silico and our results revealed some OCRL1VAR to be benign, while others are pathogenic. Then we proceeded to monitor the enzymatic activity and function in kidney cells of the different OCRL1VAR. Based on their enzymatic activity and presence/absence of phenotypes, the variants segregated into two categories that also correlated with the severity of the condition they induce. Overall, these two groups mapped to opposite sides of the phosphatase domain. In summary, our findings highlight that not every mutation affecting the catalytic domain impairs OCRL1's enzymatic activity. Importantly, data support the inactive-conformation hypothesis. Finally, our results contribute to establishing the molecular and structural basis for the observed heterogeneity in severity/symptomatology displayed by patients.
Insights
Mutations in the OCRL1 gene cause Lowe Syndrome (LS). This study reveals that some OCRL1 variants, while affecting the catalytic domain, do not impair enzymatic activity, supporting a non-functional conformation hypothesis.
Area of Science:
- Biochemistry
- Genetics
- Molecular Biology
Background:
- Lowe Syndrome (LS) is a genetic disorder caused by mutations in the OCRL1 gene.
- LS is characterized by congenital cataracts, intellectual disability, and progressive kidney disease, often leading to renal failure.
Purpose of the Study:
- To investigate the biochemical and phenotypic impact of patient-derived OCRL1 variants (OCRL1VAR).
- To test the hypothesis that certain OCRL1 variants stabilize in a non-functional conformation, particularly missense mutations within the phosphatase domain.
Main Methods:
- In silico analysis of pathogenic and conformational characteristics of selected OCRL1 variants.
- Monitoring of enzymatic activity and cellular function of OCRL1 variants in kidney cells.
Main Results:
- In silico evaluation identified some OCRL1 variants as benign and others as pathogenic.
- Variants segregated into two categories based on enzymatic activity and phenotypic presentation, correlating with disease severity.
- Two distinct groups of variants mapped to opposite sides of the OCRL1 phosphatase domain.
Conclusions:
- Not all mutations within the OCRL1 catalytic domain necessarily impair enzymatic activity.
- The findings support the hypothesis that some OCRL1 variants adopt an inactive conformation.
- This study establishes a molecular and structural basis for the variable severity observed in Lowe Syndrome patients.
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