Tamoxifen induces cellular stress in the nervous system by inhibiting cholesterol synthesis
Franziska Denk1, Leanne M Ramer1,2, Erin L K S Erskine3
1Wolfson Centre for Age-Related Diseases, King's College London, Guy's Campus, London, SE1 1UL, UK.
Background:
Tamoxifen (TAM) is an important cancer therapeutic and an experimental tool for effecting genetic recombination using the inducible Cre-Lox technique. Despite its widespread use in the clinic and laboratory, we know little about its effects on the nervous system. This is of significant concern because TAM, via unknown mechanisms, induces cognitive impairment in humans. A hallmark of cellular stress is induction of Activating Transcription Factor 3 (Atf3), and so to determine whether TAM induces cellular stress in the adult nervous system, we generated a knock-in mouse in which Atf3 promoter activity drives transcription of TAM-dependent Cre recombinase (Cre-ERT2); when crossed with tdtomato reporter mice, Atf3 induction results in robust and permanent genetic labeling of cells in which it is up-regulated even transiently.
Results:
We found that granular neurons of the olfactory bulb and dentate gyrus, vascular cells and ependymal cells throughout the brain, and peripheral sensory neurons expressed tdtomato in response to TAM treatment. We also show that TAM induced Atf3 up-regulation through inhibition of cholesterol epoxide hydrolase (ChEH): reporter expression was mitigated by delivery in vitamin E-rich wheat germ oil (vitamin E depletes ChEH substrates), and was partially mimicked by a ChEH-specific inhibitor.
Conclusions:
This work demonstrates that TAM stresses cells of the adult central and peripheral nervous systems and highlights concerns about clinical and experimental use of TAM. We propose TAM administration in vitamin E-rich vehicles such as wheat germ oil as a simple remedy.
Insights
Tamoxifen (TAM) induces cellular stress in the adult nervous system, impacting cognitive function. Researchers found TAM activates Activating Transcription Factor 3 (Atf3) and suggest using vitamin E-rich vehicles to mitigate this effect.
Area of Science:
- Neuroscience
- Pharmacology
- Cellular Biology
Background:
- Tamoxifen (TAM) is a widely used cancer therapeutic and genetic tool.
- Its effects on the nervous system and mechanisms of cognitive impairment are poorly understood.
- Cellular stress marker Activating Transcription Factor 3 (Atf3) is a key focus.
Purpose of the Study:
- To investigate whether TAM induces cellular stress in the adult nervous system.
- To identify the molecular mechanisms underlying TAM-induced cellular stress.
- To explore potential remedies for TAM-induced neurotoxicity.
Main Methods:
- Generated a knock-in mouse model linking Atf3 promoter activity to TAM-dependent Cre recombinase (Cre-ERT2).
- Crossed with tdtomato reporter mice for permanent genetic labeling of Atf3-expressing cells.
- Investigated TAM's effects on cholesterol epoxide hydrolase (ChEH) and utilized vitamin E-rich wheat germ oil.
Main Results:
- TAM treatment led to tdtomato reporter expression in olfactory bulb, dentate gyrus, vascular cells, ependymal cells, and peripheral sensory neurons.
- TAM-induced Atf3 up-regulation was linked to ChEH inhibition.
- Reporter expression was reduced by vitamin E-rich wheat germ oil and mimicked by a ChEH inhibitor.
Conclusions:
- TAM induces cellular stress in both central and peripheral nervous systems.
- Clinical and experimental use of TAM warrants caution due to neurotoxic effects.
- Administering TAM in vitamin E-rich vehicles like wheat germ oil may offer a solution.
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