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Long-term Live-cell Imaging to Assess Cell Fate in Response to Paclitaxel
Published on: May 14, 2018
Inhibition of paclitaxel-induced decreases in calcium signaling
Jennifer H Benbow1, Taylor Mann, Camille Keeler
1Department of Pharmacology, University, New Haven, Connecticut 06520, USA.
Abstract:
Peripheral neuropathy is one of the most severe and irreversible side effects caused by treatment from several chemotherapeutic drugs, including paclitaxel (Taxol®) and vincristine. Strategies are needed that inhibit this unwanted side effect without altering the chemotherapeutic action of these drugs. We previously identified two proteins in the cellular pathway that lead to Taxol-induced peripheral neuropathy, neuronal calcium sensor-1 (NCS-1) and calpain. Prolonged treatment with Taxol induces activation of calpain, degradation of NCS-1, and loss of intracellular calcium signaling. This paper has focused on understanding the molecular basis for prevention of peripheral neuropathy by testing the effects of addition of two candidate compounds to the existing chemotherapeutic drug regime: lithium and ibudilast. We found that the co-administration of either lithium or ibudilast to neuroblastoma cells that were treated with Taxol or vincristine inhibited activation of calpain and the reductions in NCS-1 levels and calcium signaling associated with these chemotherapeutic drugs. The ability of Taxol to alter microtubule formation was unchanged by the addition of either candidate compound. These results allow us to suggest that it is possible to prevent the unnecessary and irreversible damage caused by chemotherapeutic drugs while still maintaining therapeutic efficacy. Specifically, the addition of either lithium or ibudilast to existing chemotherapy treatment protocols has the potential to prevent chemotherapy-induced peripheral neuropathy.
Insights
Lithium and ibudilast can prevent chemotherapy-induced peripheral neuropathy by inhibiting calpain activation and preserving neuronal calcium signaling without affecting drug efficacy.
Area of Science:
- Neuroscience
- Pharmacology
- Oncology
Background:
- Chemotherapy drugs like paclitaxel and vincristine can cause severe, irreversible peripheral neuropathy.
- Neuronal calcium sensor-1 (NCS-1) and calpain are key proteins involved in Taxol-induced peripheral neuropathy.
- Calpain activation and NCS-1 degradation disrupt intracellular calcium signaling, leading to nerve damage.
Purpose of the Study:
- To investigate the potential of lithium and ibudilast in preventing chemotherapy-induced peripheral neuropathy.
- To understand the molecular mechanisms underlying the neuroprotective effects of these compounds.
Main Methods:
- Neuroblastoma cells were treated with paclitaxel or vincristine, with or without lithium or ibudilast.
- Calpain activation, NCS-1 levels, and intracellular calcium signaling were measured.
- The effect of the compounds on paclitaxel's microtubule-disrupting ability was assessed.
Main Results:
- Co-administration of lithium or ibudilast inhibited calpain activation in cells treated with chemotherapy drugs.
- These compounds prevented the reduction in NCS-1 levels and calcium signaling caused by chemotherapy.
- Lithium and ibudilast did not interfere with paclitaxel's ability to alter microtubule formation.
Conclusions:
- Lithium and ibudilast show potential for preventing chemotherapy-induced peripheral neuropathy.
- These compounds can mitigate nerve damage without compromising the therapeutic effectiveness of chemotherapy.
- Adding lithium or ibudilast to chemotherapy protocols may offer a strategy to prevent irreversible nerve damage.
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