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Updated: Feb 22, 2026

Assays for the Degradation of Misfolded Proteins in Cells
Published on: August 28, 2016
Cellular Chaperones As Therapeutic Targets in ALS to Restore Protein Homeostasis and Improve Cellular Function
Bernadett Kalmar1, Linda Greensmith1,2
1Sobell Department of Motor Neuroscience and Movement Disorders, UCL Institute of NeurologyLondon, United Kingdom.
Abstract:
Heat shock proteins (Hsps) are ubiquitously expressed chaperone proteins that enable cells to cope with environmental stresses that cause misfolding and denaturation of proteins. With aging this protein quality control machinery becomes less effective, reducing the ability of cells to cope with damaging environmental stresses and disease-causing mutations. In neurodegenerative disorders such as Amyotrophic Lateral Sclerosis (ALS), such mutations are known to result in protein misfolding, which in turn results in the formation of intracellular aggregates cellular dysfunction and eventual neuronal death. The exact cellular pathology of ALS and other neurodegenerative diseases has been elusive and thus, hindering the development of effective therapies. However, a common scheme has emerged across these "protein misfolding" disorders, in that the mechanism of disease involves one or more aspects of proteostasis; from DNA transcription, RNA translation, to protein folding, transport and degradation via proteosomal and autophagic pathways. Interestingly, members of the Hsp family are involved in each of these steps facilitating normal protein folding, regulating the rate of protein synthesis and degradation. In this short review we summarize the evidence that suggests that ALS is a disease of protein dyshomeostasis in which Hsps may play a key role. Overwhelming evidence now indicates that enabling protein homeostasis to cope with disease-causing mutations might be a successful therapeutic strategy in ALS, as well as other neurodegenerative diseases. Novel small molecule co-inducers of Hsps appear to be able to achieve this aim. Arimoclomol, a hydroxylamine derivative, has shown promising results in cellular and animal models of ALS, as well as other protein misfolding diseases such as Inclusion Body Myositis (IBM). Initial clinical investigations of Arimoclomol have shown promising results. Therefore, it is possible that the long series of unsuccessful clinical trials for ALS may soon be reversed, as optimal targeting of proteostasis in ALS may now be possible, and may deliver clinical benefit to patients.
Insights
Heat shock proteins (Hsps) help cells manage stress and protein misfolding common in neurodegenerative diseases like ALS. Enhancing protein homeostasis with Hsps, such as with Arimoclomol, shows therapeutic promise for ALS patients.
Area of Science:
- Molecular Biology
- Neuroscience
- Protein Biochemistry
Background:
- Heat shock proteins (Hsps) are crucial chaperones for cellular stress response and protein quality control.
- Aging impairs protein quality control, increasing susceptibility to stress and mutations.
- Neurodegenerative diseases like Amyotrophic Lateral Sclerosis (ALS) involve protein misfolding, aggregation, and neuronal death.
Purpose of the Study:
- To review evidence linking ALS and other neurodegenerative diseases to protein dyshomeostasis.
- To highlight the potential role of Heat shock proteins (Hsps) in ALS pathogenesis and therapy.
- To explore the therapeutic potential of Hsp co-inducers, like Arimoclomol, for ALS.
Main Methods:
- Review of existing scientific literature on Heat shock proteins (Hsps), proteostasis, and neurodegenerative diseases.
- Analysis of evidence implicating protein misfolding and dyshomeostasis in ALS.
- Examination of preclinical and clinical data for Hsp-modulating drugs, specifically Arimoclomol.
Main Results:
- ALS and related disorders are characterized by failures in proteostasis, affecting protein folding, transport, and degradation.
- Heat shock proteins (Hsps) are integral to all steps of proteostasis and are implicated in ALS.
- Arimoclomol, an Hsp co-inducer, demonstrates efficacy in cellular and animal models of ALS and other protein misfolding diseases.
Conclusions:
- Targeting protein homeostasis represents a promising therapeutic strategy for ALS and other neurodegenerative conditions.
- Enhancing Heat shock protein (Hsp) levels may counteract disease mechanisms driven by protein misfolding.
- Arimoclomol's positive results in preclinical and early clinical studies suggest potential for reversing therapeutic failures in ALS.
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