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Published on: April 24, 2021
Repurposed drugs targeting eIF2α-P-mediated translational repression prevent neurodegeneration in mice
Mark Halliday1, Helois Radford1, Karlijn A M Zents2
1MRC Toxicology Unit, Hodgkin Building, Lancaster Road, Leicester LE1 9HN, UK.
Abstract:
See Mercado and Hetz (doi:10.1093/brain/awx107) for a scientific commentary on this article.Signalling through the PERK/eIF2α-P branch of the unfolded protein response plays a critical role in controlling protein synthesis rates in cells. This pathway is overactivated in brains of patients with Alzheimer's disease and related disorders and has recently emerged as a promising therapeutic target for these currently untreatable conditions. Thus, in mouse models of neurodegenerative disease, prolonged overactivation of PERK/eIF2α-P signalling causes sustained attenuation of protein synthesis, leading to memory impairment and neuronal loss. Re-establishing translation rates by inhibition of eIF2α-P activity, genetically or pharmacologically, restores memory and prevents neurodegeneration and extends survival. However, the experimental compounds used preclinically are unsuitable for use in humans, due to associated toxicity or poor pharmacokinetic properties. To discover compounds that have anti-eIF2α-P activity suitable for clinical use, we performed phenotypic screens on a NINDS small molecule library of 1040 drugs. We identified two compounds, trazodone hydrochloride and dibenzoylmethane, which reversed eIF2α-P-mediated translational attenuation in vitro and in vivo. Both drugs were markedly neuroprotective in two mouse models of neurodegeneration, using clinically relevant doses over a prolonged period of time, without systemic toxicity. Thus, in prion-diseased mice, both trazodone and dibenzoylmethane treatment restored memory deficits, abrogated development of neurological signs, prevented neurodegeneration and significantly prolonged survival. In tauopathy-frontotemporal dementia mice, both drugs were neuroprotective, rescued memory deficits and reduced hippocampal atrophy. Further, trazodone reduced p-tau burden. These compounds therefore represent potential new disease-modifying treatments for dementia. Trazodone in particular, a licensed drug, should now be tested in clinical trials in patients.
Insights
Two drugs, trazodone and dibenzoylmethane, reversed protein synthesis inhibition in mouse models of Alzheimer's disease and related dementias, showing neuroprotective effects and potential for new dementia treatments.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- The PERK/eIF2α-P pathway of the unfolded protein response regulates protein synthesis and is overactivated in Alzheimer's disease.
- This overactivation leads to memory deficits and neuronal loss in mouse models, presenting a therapeutic target.
Purpose of the Study:
- To identify clinically suitable compounds that inhibit eIF2α-P activity.
- To evaluate the neuroprotective and disease-modifying potential of identified compounds in mouse models of neurodegeneration.
Main Methods:
- Phenotypic screening of a 1040-drug NINDS small molecule library.
- In vitro and in vivo testing of identified compounds in prion and tauopathy-frontotemporal dementia mouse models.
- Assessment of memory, neurological signs, neurodegeneration, and survival.
Main Results:
- Trazodone hydrochloride and dibenzoylmethane reversed eIF2α-P-mediated translational attenuation.
- Both drugs demonstrated significant neuroprotection, restored memory, prevented neurodegeneration, and prolonged survival in mouse models.
- Trazodone also reduced phosphorylated tau (p-tau) burden in tauopathy models.
Conclusions:
- Trazodone and dibenzoylmethane are promising disease-modifying treatments for dementia.
- Trazodone, a licensed drug, warrants clinical trials for dementia patients.

