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Rapid Detection of Neurodevelopmental Phenotypes in Human Neural Precursor Cells NPCs
Published on: March 2, 2018
Morphological profiling in human neural progenitor cells classifies hits in a pilot drug screen for Alzheimer's
Amina H McDiarmid1, Katerina O Gospodinova1, Richard J R Elliott2
1Centre for Genomic & Experimental Medicine, Institute of Genetics & Cancer, University of Edinburgh, Western General Hospital, Edinburgh EH4 2XU, UK.
Abstract:
Alzheimer's disease accounts for 60-70% of dementia cases. Current treatments are inadequate and there is a need to develop new approaches to drug discovery. Recently, in cancer, morphological profiling has been used in combination with high-throughput screening of small-molecule libraries in human cells in vitro. To test feasibility of this approach for Alzheimer's disease, we developed a cell morphology-based drug screen centred on the risk gene, SORL1 (which encodes the protein SORLA). Increased Alzheimer's disease risk has been repeatedly linked to variants in SORL1, particularly those conferring loss or decreased expression of SORLA, and lower SORL1 levels are observed in post-mortem brain samples from individuals with Alzheimer's disease. Consistent with its role in the endolysosomal pathway, SORL1 deletion is associated with enlarged endosomes in neural progenitor cells and neurons. We, therefore, hypothesized that multi-parametric, image-based cell phenotyping would identify features characteristic of SORL1 deletion. An automated morphological profiling method (Cell Painting) was adapted to neural progenitor cells and used to determine the phenotypic response of SORL1 neural progenitor cells to treatment with compounds from a small internationally approved drug library (TargetMol, 330 compounds). We detected distinct phenotypic signatures for SORL1 neural progenitor cells compared to isogenic wild-type controls. Furthermore, we identified 16 compounds (representing 14 drugs) that reversed the mutant morphological signatures in neural progenitor cells derived from three SORL1 induced pluripotent stem cell sub-clones. Network pharmacology analysis revealed the 16 compounds belonged to five mechanistic groups: 20S proteasome, aldehyde dehydrogenase, topoisomerase I and II, and DNA synthesis inhibitors. Enrichment analysis identified DNA synthesis/damage/repair, proteases/proteasome and metabolism as key pathways/biological processes. Prediction of novel targets revealed enrichment in pathways associated with neural cell function and Alzheimer's disease. Overall, this work suggests that (i) a quantitative phenotypic metric can distinguish induced pluripotent stem cell-derived SORL1-/- neural progenitor cells from isogenic wild-type controls and (ii) phenotypic screening combined with multi-parametric high-content image analysis is a viable option for drug repurposing and discovery in this human neural cell model of Alzheimer's disease.
Insights
This study developed a cell morphology-based drug screen for Alzheimer's disease using the SORL1 gene. It identified 14 drugs that reversed disease-related cell changes, offering new avenues for Alzheimer's drug discovery.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Alzheimer's disease (AD) is the leading cause of dementia, with current treatments being insufficient.
- Genetic risk factors, such as variants in the SORL1 gene, play a significant role in AD pathogenesis.
- SORL1 gene variants are linked to decreased SORLA protein expression and altered endolysosomal pathways in AD.
Purpose of the Study:
- To assess the feasibility of using cell morphology-based phenotypic screening for Alzheimer's disease drug discovery.
- To develop and validate a high-throughput screening method centered on the AD risk gene SORL1.
- To identify potential drug candidates for Alzheimer's disease by screening a library of approved small molecules.
Main Methods:
- Adapted the Cell Painting assay for automated morphological profiling of neural progenitor cells (NPCs).
- Generated SORL1 knockout NPCs using induced pluripotent stem cells (iPSCs) to model AD-related cellular phenotypes.
- Screened a library of 330 compounds against SORL1-deficient NPCs to identify compounds reversing disease-associated morphological changes.
Main Results:
- Distinct phenotypic signatures were identified in SORL1-deficient NPCs compared to wild-type controls.
- Sixteen compounds, representing 14 distinct drugs, were found to reverse the observed mutant morphological phenotypes.
- Network pharmacology analysis indicated these compounds target pathways including the 20S proteasome, aldehyde dehydrogenase, topoisomerase, and DNA synthesis.
Conclusions:
- Quantitative phenotypic metrics can effectively distinguish SORL1-deficient NPCs from isogenic controls.
- Phenotypic screening combined with high-content image analysis is a viable strategy for drug repurposing and discovery in Alzheimer's disease models.
- The identified compounds offer potential therapeutic leads for Alzheimer's disease by targeting key biological pathways.
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