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Updated: Oct 12, 2025

Assay to Measure Nucleocytoplasmic Transport in Real Time within Motor Neuron-like NSC-34 Cells
Published on: May 16, 2017
Epigenetic Small Molecules Rescue Nucleocytoplasmic Transport and DNA Damage Phenotypes in C9ORF72 ALS/FTD
Melina Ramic1, Nadja S Andrade1, Matthew J Rybin1
1Center for Therapeutic Innovation, Department of Psychiatry & Behavioral Sciences, University of Miami Miller School of Medicine, 1501 NW 10th Ave, Miami, FL 33136, USA.
Abstract:
Amyotrophic lateral sclerosis (ALS) is a progressive and fatal neurodegenerative disease with available treatments only marginally slowing progression or improving survival. A hexanucleotide repeat expansion mutation in the C9ORF72 gene is the most commonly known genetic cause of both sporadic and familial cases of ALS and frontotemporal dementia (FTD). The C9ORF72 expansion mutation produces five dipeptide repeat proteins (DPRs), and while the mechanistic determinants of DPR-mediated neurotoxicity remain incompletely understood, evidence suggests that disruption of nucleocytoplasmic transport and increased DNA damage contributes to pathology. Therefore, characterizing these disturbances and determining the relative contribution of different DPRs is needed to facilitate the development of novel therapeutics for C9ALS/FTD. To this end, we generated a series of nucleocytoplasmic transport "biosensors", composed of the green fluorescent protein (GFP), fused to different classes of nuclear localization signals (NLSs) and nuclear export signals (NESs). Using these biosensors in conjunction with automated microscopy, we investigated the role of the three most neurotoxic DPRs (PR, GR, and GA) on seven nuclear import and two export pathways. In addition to other DPRs, we found that PR had pronounced inhibitory effects on the classical nuclear export pathway and several nuclear import pathways. To identify compounds capable of counteracting the effects of PR on nucleocytoplasmic transport, we developed a nucleocytoplasmic transport assay and screened several commercially available compound libraries, totaling 2714 compounds. In addition to restoring nucleocytoplasmic transport efficiencies, hits from the screen also counteract the cytotoxic effects of PR. Selected hits were subsequently tested for their ability to rescue another C9ALS/FTD phenotype-persistent DNA double strand breakage. Overall, we found that DPRs disrupt multiple nucleocytoplasmic transport pathways and we identified small molecules that counteract these effects-resulting in increased viability of PR-expressing cells and decreased DNA damage markers in patient-derived motor neurons. Several HDAC inhibitors were validated as hits, supporting previous studies that show that HDAC inhibitors confer therapeutic effects in neurodegenerative models.
Insights
Researchers identified small molecules that counteract toxic effects of C9ORF72 dipeptide repeat proteins (DPRs) in amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). These compounds restore nucleocytoplasmic transport and reduce DNA damage, offering therapeutic potential for C9ALS/FTD.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) are progressive neurodegenerative diseases with limited treatment options.
- The C9ORF72 gene hexanucleotide repeat expansion is a leading genetic cause of ALS and FTD.
- Dipeptide repeat proteins (DPRs) produced by this mutation disrupt cellular functions, including nucleocytoplasmic transport and DNA repair.
Purpose of the Study:
- To investigate the impact of specific DPRs on nucleocytoplasmic transport pathways.
- To identify small molecules that can counteract DPR-induced nucleocytoplasmic transport defects and neurotoxicity.
- To evaluate the efficacy of identified compounds in reducing DNA damage in C9ALS/FTD models.
Main Methods:
- Development of green fluorescent protein (GFP)-based biosensors for nucleocytoplasmic transport.
- Automated microscopy to assess the effects of DPRs (PR, GR, GA) on nuclear import and export pathways.
- High-throughput screening of a compound library (2714 compounds) to identify inhibitors of DPR-mediated transport disruption.
- Assessment of compound efficacy in cell viability assays and DNA double-strand break assays.
Main Results:
- The PR DPR significantly inhibited classical nuclear export and several nuclear import pathways.
- Screening identified compounds that restored nucleocytoplasmic transport and reduced PR-induced cytotoxicity.
- Selected compounds also mitigated persistent DNA double-strand breaks, a key C9ALS/FTD phenotype.
- HDAC inhibitors were among the validated hits, supporting their therapeutic potential.
Conclusions:
- DPRs associated with C9ORF72 mutations disrupt multiple nucleocytoplasmic transport pathways.
- Small molecules, including HDAC inhibitors, can counteract these transport defects and associated neurotoxicity.
- These findings provide a basis for developing novel therapeutics for C9ALS/FTD by targeting nucleocytoplasmic transport and DNA damage.
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