Targeting TDP-43 Phase Separation Through Selective RNA-Binding Modulation
🧪 Overview
Targeting TDP-43 Phase Separation Through Selective RNA-Binding Modulation I propose a novel therapeutic paradigm for ALS-FTD that focuses on selectively disrupting pathological TDP-43 phase separation while preserving physiological condensate formation. The key insight is that disease-associated TDP-43 mutations alter the protein's RNA-binding specificity, creating aberrant protein-RNA networks that drive toxic phase transitions. Rather than broadly inhibiting TDP-43 aggregation, we should target the specific RNA sequences and secondary structures that stabilize pathological condensates. My central hypothesis is that disease-specific TDP-43 variants exhibit altered affinity for cryptic splice sites and repetitive RNA elements, creating a distinct "pathological RNA interactome" that can be therapeutically targeted. Normal TDP-43 condensates are dynamic and functional, regulated by high-affinity binding to UG-rich sequences in pre-mRNAs (PMID:21358617). However, ALS-associated mutations like A315T and M337V reduce this high-affinity binding while increasing promiscuous interactions with low-complexity RNA sequences (PMID:30449892).
...🧬 Mechanism
⚖️ Evidence
No linked papers recorded for this hypothesis yet.
🏥 Translation
🧬 3D Protein Structure — TDP
No curated PDB or AlphaFold mapping for TDP yet. Search RCSB →
💉 Clinical Trials
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Run scripts/backfill_clinvar_variants.py to fetch P/LP/VUS variants.
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🏆 Tournament
🏆 Arenas / Elo
📊 Market Indicators
💾 Resource Usage
No resource usage or linked notebooks recorded for this hypothesis yet.
▸Metadatasource: v1_phase_c_backfill · origin_type: debate_round_mining
| source | v1_phase_c_backfill |
| origin_type | debate_round_mining |
| _schema_version | 1 |