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Characterizing Histone Post-translational Modification Alterations in Yeast Neurodegenerative Proteinopathy Models
Published on: March 24, 2019
Expression of Huntingtin and TDP-43 Derivatives in Fission Yeast Can Cause Both Beneficial and Toxic Effects
Luis Marte1, Susanna Boronat1, Rubén Barrios1
1Oxidative Stress and Cell Cycle Group, Universitat Pompeu Fabra, C/Doctor Aiguader 88, 08003 Barcelona, Spain.
Abstract:
Many neurodegenerative disorders display protein aggregation as a hallmark, Huntingtin and TDP-43 aggregates being characteristic of Huntington disease and amyotrophic lateral sclerosis, respectively. However, whether these aggregates cause the diseases, are secondary by-products, or even have protective effects, is a matter of debate. Mutations in both human proteins can modulate the structure, number and type of aggregates, as well as their toxicity. To study the role of protein aggregates in cellular fitness, we have expressed in a highly tractable unicellular model different variants of Huntingtin and TDP-43. They each display specific patterns of aggregation and toxicity, even though in both cases proteins have to be very highly expressed to affect cell fitness. The aggregation properties of Huntingtin, but not of TDP-43, are affected by chaperones such as Hsp104 and the Hsp40 couple Mas5, suggesting that the TDP-43, but not Huntingtin, derivatives have intrinsic aggregation propensity. Importantly, expression of the aggregating form of Huntingtin causes a significant extension of fission yeast lifespan, probably as a consequence of kidnapping chaperones required for maintaining stress responses off. Our study demonstrates that in general these prion-like proteins do not cause toxicity under normal conditions, and in fact they can protect cells through indirect mechanisms which up-regulate cellular defense pathways.
Insights
Protein aggregates in neurodegenerative diseases like Huntington
Area of Science:
- Molecular biology
- Cell biology
- Neuroscience
Background:
- Protein aggregation is a hallmark of neurodegenerative disorders.
- The role of protein aggregates (e.g., Huntingtin, TDP-43) in disease pathogenesis is debated.
- Mutations influence aggregate structure, toxicity, and cellular effects.
Purpose of the Study:
- To investigate the role of protein aggregates in cellular fitness using a unicellular model.
- To compare the aggregation and toxicity patterns of Huntingtin and TDP-43 variants.
- To explore the influence of chaperones on protein aggregation.
Main Methods:
- Expression of different Huntingtin and TDP-43 variants in a unicellular model (fission yeast).
- Analysis of aggregation patterns, toxicity, and lifespan.
- Investigation of chaperone interactions (Hsp104, Mas5).
Main Results:
- High protein expression is required for aggregation-induced effects on cell fitness.
- Huntingtin aggregation is modulated by chaperones; TDP-43 shows intrinsic aggregation.
- Aggregating Huntingtin extended yeast lifespan, potentially by sequestering chaperones.
Conclusions:
- Prion-like proteins generally do not cause toxicity under normal conditions.
- Protein aggregates can indirectly protect cells by up-regulating defense pathways.
- Cellular defense mechanisms are influenced by protein aggregation dynamics.

