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Controlling the Size, Shape and Stability of Supramolecular Polymers in Water
Published on: August 2, 2012
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TDP-43 α-helical structure tunes liquid-liquid phase separation and function.
Alexander E Conicella1,2,3, Gregory L Dignon4,5, Gül H Zerze4,6
1Department of Molecular Pharmacology, Physiology, and Biotechnology, Brown University, Providence, RI 02912.
Summary
Designed mutations in the TDP-43 protein enhance its assembly and function by modulating helical structure. This finding offers insights into amyotrophic lateral sclerosis (ALS) pathogenesis and applications in cellular biology.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Liquid-liquid phase separation (LLPS) is crucial for membraneless organelle (MLO) formation in RNA processing.
- The RNA-binding protein TDP-43 is implicated in MLOs and amyotrophic lateral sclerosis (ALS) pathogenesis.
- ALS-associated TDP-43 mutations can disrupt its self-interaction and function.
Purpose of the Study:
- To investigate how designed single mutations in TDP-43 can modulate its helical structure to enhance assembly and function.
- To explore the role of specific glycine residues in inhibiting TDP-43 helical extension and helix-helix interactions.
- To understand the impact of TDP-43 mutations on LLPS, MLO fluidity, and splicing function.
Main Methods:
- Molecular simulation and NMR spectroscopy to analyze TDP-43 structure and dimerization.
- In vitro phase separation assays to assess TDP-43 assembly.
- Cellular assays using reporter compartments to measure fluidity of phase-separated TDP-43.
- Minigene assays to evaluate TDP-43 splicing function.
Main Results:
- Two conserved glycine residues (G335 and G338) inhibit TDP-43 helical extension and interactions.
- Variants at G335/G338, including ALS-associated G335D, partially relieve this inhibition.
- Substitution to alanine (G335A) significantly enhances TDP-43 in vitro phase separation.
- G335A mutation decreases the fluidity of phase-separated TDP-43 compartments in cells.
- G335A mutation enhances TDP-43 splicing function in a minigene assay.
Conclusions:
- The helical region of TDP-43 is a tunable module for controlling protein assembly and function.
- Biophysical principles can be applied to precisely modulate TDP-43 behavior in LLPS.
- Findings provide insights into ALS pathogenesis and potential applications in synthetic biology.

