Chemotherapeutic xCT inhibitors sorafenib and erastin unraveled with the synaptic optogenetic function analysis tool
Marc Dahlmanns1, Eduard Yakubov2,3, Daishi Chen2
1Department of Psychiatry and Psychotherapy, Friedrich-Alexander University of Erlangen-Nuremberg, Erlangen, Germany.
Abstract:
In the search for new potential chemotherapeutics, the compounds' toxicity to healthy cells is an important factor. The brain with its functional units, the neurons, is especially endangered during the radio- and chemotherapeutic treatment of brain tumors. The effect of the potential compounds not only on neuronal survival but also neuronal function needs to be taken into account. Therefore, in this study we aimed to comprehend the biological effects of chemotherapeutic xCT inhibition on healthy neuronal cells with our synaptic optogenetic function analysis tool (SOFA). We combined common approaches, such as investigation of morphological markers, neuronal function and cell metabolism. The glutamate-cystine exchanger xCT (SLC7A11, system Xc-) is the main glutamate exporter in malignant brain tumors and as such a relevant drug target for treating deadly glioblastomas (WHO grades III and IV). Recently, two small molecules termed sorafenib (Nexavar) and erastin have been found to efficiently block xCT function. We investigated neuronal morphology, metabolic secretome profiles, synaptic function and cell metabolism of primary hippocampal cultures (containing neurons and glial cells) treated with sorafenib and erastin in clinically relevant concentrations. We found that sorafenib severely damaged neurons already after 24 h of treatment. Noteworthy, also at a lower concentration, where no morphological damage or metabolic disturbance was monitored, sorafenib still interfered with synaptic and metabolic homeostasis. In contrast, erastin-treated neurons displayed mostly inconspicuous morphology and metabolic rates. Key parameters of proper neuronal function, such as synaptic vesicle pool sizes, were however disrupted following erastin application. In conclusion, our data revealed that while sorafenib and erastin effectively inhibited xCT function they also interfered with essential neuronal (synaptic) function. These findings highlight the particular importance of investigating the effects of potential neurooncological and general cancer chemotherapeutics also on healthy neuronal cells and their function as revealed by the SOFA tool.
Insights
Chemotherapeutics sorafenib and erastin targeting xCT inhibit crucial neuronal functions. Sorafenib caused severe neuronal damage and synaptic disruption, while erastin impaired synaptic vesicle pools, impacting healthy brain cells.
Area of Science:
- Neuroscience
- Oncology
- Pharmacology
Background:
- Chemotherapeutics for brain tumors risk damaging healthy neurons.
- The glutamate-cystine exchanger xCT (SLC7A11, system Xc-) is a key drug target for glioblastomas.
- Assessing drug effects on neuronal survival and function is critical.
Purpose of the Study:
- To evaluate the impact of xCT inhibitors (sorafenib, erastin) on healthy neuronal cells.
- To analyze effects on neuronal morphology, metabolism, and synaptic function using the synaptic optogenetic function analysis tool (SOFA).
Main Methods:
- Primary hippocampal cultures (neurons and glial cells) were treated with sorafenib and erastin.
- Investigated neuronal morphology, metabolic secretome, synaptic function, and cell metabolism.
- Utilized the SOFA tool for detailed functional analysis.
Main Results:
- Sorafenib caused significant neuronal damage and disrupted synaptic/metabolic homeostasis, even at low concentrations.
- Erastin showed less morphological/metabolic impact but disrupted synaptic vesicle pool sizes.
- Both compounds interfered with essential neuronal functions despite inhibiting xCT.
Conclusions:
- Sorafenib and erastin, while targeting xCT, negatively affect healthy neuronal and synaptic function.
- These findings underscore the necessity of evaluating chemotherapeutics' neurotoxic potential.
- The SOFA tool is valuable for assessing drug effects on neuronal function.
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