INPP5K and SIL1 associated pathologies with overlapping clinical phenotypes converge through dysregulation of PHGDH
Denisa Hathazi1,2, Dan Cox3, Adele D'Amico4
1Leibniz -Institut für Analytische Wissenschaften - ISAS - e.V, Dortmund, Germany.
Abstract:
Marinesco-Sjögren syndrome is a rare human disorder caused by biallelic mutations in SIL1 characterized by cataracts in infancy, myopathy and ataxia, symptoms which are also associated with a novel disorder caused by mutations in INPP5K. While these phenotypic similarities may suggest commonalties at a molecular level, an overlapping pathomechanism has not been established yet. In this study, we present six new INPP5K patients and expand the current mutational and phenotypical spectrum of the disease showing the clinical overlap between Marinesco-Sjögren syndrome and the INPP5K phenotype. We applied unbiased proteomic profiling on cells derived from Marinesco-Sjögren syndrome and INPP5K patients and identified alterations in d-3-PHGDH as a common molecular feature. d-3-PHGDH modulates the production of l-serine and mutations in this enzyme were previously associated with a neurological phenotype, which clinically overlaps with Marinesco-Sjögren syndrome and INPP5K disease. As l-serine administration represents a promising therapeutic strategy for d-3-PHGDH patients, we tested the effect of l-serine in generated sil1, phgdh and inpp5k a+b zebrafish models, which showed an improvement in their neuronal phenotype. Thus, our study defines a core phenotypical feature underpinning a key common molecular mechanism in three rare diseases and reveals a common and novel therapeutic target for these patients.
Insights
Marinesco-Sjögren syndrome and INPP5K disease share a common molecular feature, d-3-PHGDH, impacting l-serine production. L-serine shows therapeutic potential in zebrafish models for these rare neurological disorders.
Area of Science:
- Genetics and Molecular Biology
- Rare Diseases
- Neuroscience
Background:
- Marinesco-Sjögren syndrome (MSS) and a novel INPP5K-related disorder present overlapping phenotypes like infantile cataracts, myopathy, and ataxia.
- The molecular basis for these shared clinical features between MSS (SIL1 mutations) and INPP5K disease remains unestablished.
Purpose of the Study:
- To investigate the molecular commonalities between MSS and INPP5K disease.
- To expand the mutational and phenotypic spectrum of INPP5K disease.
- To identify a shared molecular mechanism and potential therapeutic targets.
Main Methods:
- Proteomic profiling of cells from MSS and INPP5K patients.
- Genetic analysis of new INPP5K patients.
- Development and testing of SIL1, PHGDH, and INPP5K zebrafish models.
Main Results:
- Identified alterations in 3-phosphoglycerate dehydrogenase (d-3-PHGDH) as a common molecular feature in MSS and INPP5K disease.
- d-3-PHGDH modulates l-serine production; its mutations are linked to neurological phenotypes.
- L-serine administration improved neuronal phenotypes in SIL1, PHGDH, and INPP5K zebrafish models.
Conclusions:
- Established a core phenotypical feature and a common molecular mechanism underlying MSS, INPP5K disease, and d-3-PHGDH-related neurological disorders.
- Revealed d-3-PHGDH and l-serine metabolism as a novel, shared therapeutic target for these rare diseases.
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