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Updated: Jul 6, 2026

Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Protective effects of interrupting the binding of calmodulin to mutant huntingtin
Nichole L Dudek1, Ying Dai, Nancy A Muma
1Department of Pharmacology and Experimental Therapeutics, Loyola University Chicago School of Medicine, Maywood, Illinois, USA.
Abstract:
There is evidence suggesting that transglutaminase (TG) 2 plays a role in stabilizing monomeric and aggregated huntingtin, thereby contributing to the pathophysiology of Huntington disease. Calmodulin (CaM) regulates TG2 cross-linking of N-terminal mutant huntingtin in cells and colocalizes with TG and huntingtin in inclusions in Huntington disease cortex. The current study examined the effects of small fragments of CaM in human embryonic kidney 293T cells expressing N-terminal mutant huntingtin and transglutaminase 2. Four CaM fragments were developed: first 76 amino acids, last 72 amino acids, 77 amino acids in the center (CaM-center), and the overlapping region of last 72 amino acids and CaM-center (CaM-overlap). The last 72 amino acids, CaM-center, and CaM-overlap significantly decreased amounts of TG-modified huntingtin by 40% to 60%, and cytotoxicity decreased up to 40% compared with cells not expressing any CaM construct. Carbachol-stimulated release of intracellular calcium is significantly higher in cells expressing N-terminal mutant huntingtin and TG2 compared with vector-transfected cells; expression of either CaM-center or CaM-overlap in these cells returned the levels of carbachol-stimulated intracellular calcium release to control values. Furthermore, CaM-overlap expression significantly decreased huntingtin binding to CaM. These data further suggest that CaM regulates TG2 activity, plays a role in the disease-related modifications to mutant huntingtin, and that disruption of CaM-huntingtin interaction is potentially a new target for therapeutic intervention in Huntington disease.
Insights
Calmodulin fragments reduce transglutaminase 2-modified huntingtin and cell death in Huntington disease models. Disrupting calmodulin-huntingtin interaction offers a potential therapeutic strategy for this neurodegenerative disorder.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Transglutaminase (TG) 2 stabilizes mutant huntingtin, contributing to Huntington disease pathology.
- Calmodulin (CaM) regulates TG2 activity and interacts with huntingtin in disease-relevant cellular inclusions.
Purpose of the Study:
- To investigate the therapeutic potential of CaM fragments in modulating TG2-mediated huntingtin modification and associated cytotoxicity.
- To explore the role of CaM-huntingtin interactions in Huntington disease pathogenesis.
Main Methods:
- Utilized human embryonic kidney 293T cells expressing N-terminal mutant huntingtin and TG2.
- Developed and tested four distinct CaM fragments (full N-terminus, full C-terminus, CaM-center, CaM-overlap).
- Assessed levels of TG-modified huntingtin, cytotoxicity, intracellular calcium release, and CaM-huntingtin binding.
Main Results:
- CaM-center and CaM-overlap fragments significantly reduced TG-modified huntingtin by 40-60% and cytotoxicity by up to 40%.
- CaM-center and CaM-overlap restored normal intracellular calcium release levels in cells with mutant huntingtin and TG2.
- CaM-overlap expression decreased huntingtin binding to CaM.
Conclusions:
- CaM fragments effectively regulate TG2 activity and mitigate disease-associated huntingtin modifications.
- Disrupting the CaM-huntingtin interaction presents a promising therapeutic avenue for Huntington disease.
- CaM fragments demonstrate potential for novel therapeutic interventions in Huntington disease.
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