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Long-term Live-cell Imaging to Assess Cell Fate in Response to Paclitaxel
Published on: May 14, 2018
Paclitaxel-induced cognitive decline was attenuated by necroptosis inhibition
Lan-Lan Liu1, Shuang Zhao1, Zhao Li1
1Department of Anesthesiology, Hebei Medical University Third Hospital.
Abstract:
Anti-cancer agent paclitaxel induces cognitive impairment. Paclitaxel can induce limited neuron apoptosis and wide scope of neuroinflammation, but its precise mechanisms remain unclear. In this study, we determined paclitaxel causes necroptosis, a programmed cell death, via activation of the RIPK1-RIPK3-MLKL signaling pathway in hippocampal neurons (HT22 cells). Flow cytometric analysis, propidium iodide staining, and western blotting techniques were used to evaluate paclitaxel-induced necroptosis. Cell viability was determined using the Cell Counting Kit-8 assay, and the Ca2+ levels were measured using a Fluo-4 AM fluorescent probe. The number of cells positive for both annexin V and propidium iodide staining was significantly higher in paclitaxel-treated than vehicle-treated HT22 cells. Additionally, the nuclei of paclitaxel-treated cells exhibited more diffused necrotic propidium iodide staining than the vehicle-treated cells. The expression of necroptosis-associated proteins, including receptor-interacting protein kinase (RIPK)1, RIPK3, mixed lineage kinase domain-like protein (MLKL), and phosphorylated (p)-MLKL, were increased following paclitaxel treatment. Treating HT22 cells with necrostatin-1, a specific inhibitor for RIPK1, effectively decreased paclitaxel-induced necroptosis through lowering intracellular Ca2+ overload. In addition, administration of necrostatin-1 to paclitaxel-treated mice rescued cognitive impairments, as assessed by novel object recognition and Morris water maze tests. Necrostatin-1 also reduced the increases in necroptosis-associated protein levels of RIPK1, RIPK3, MLKL, and p-MLKL in hippocampal tissue of paclitaxel-treated mice. Paclitaxel induces cognitive deficits through RIPK1-mediated necroptosis. The inhibition of necroptosis may be a potential therapeutic approach to reduce paclitaxel-induced cognitive deficits.
Insights
Paclitaxel, an anti-cancer drug, causes cognitive impairment by triggering programmed cell death called necroptosis in brain cells. Inhibiting this process with necrostatin-1 can reverse these deficits, offering a potential therapeutic strategy.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Paclitaxel is an effective anti-cancer agent.
- Paclitaxel use is associated with cognitive impairment, but the underlying mechanisms are not fully understood.
- Previous studies suggest paclitaxel may induce neuroinflammation and neuron apoptosis.
Purpose of the Study:
- To investigate the precise mechanisms by which paclitaxel induces cognitive impairment.
- To determine if paclitaxel induces necroptosis, a programmed cell death pathway, in hippocampal neurons.
- To evaluate the potential of inhibiting necroptosis as a therapeutic strategy for paclitaxel-induced cognitive deficits.
Main Methods:
- Utilized HT22 hippocampal cells and paclitaxel-treated mice models.
- Assessed paclitaxel-induced necroptosis using flow cytometry, propidium iodide staining, and Western blotting.
- Measured cell viability and intracellular calcium (Ca2+) levels.
- Administered necrostatin-1, a RIPK1 inhibitor, to evaluate its protective effects.
- Evaluated cognitive function in mice using novel object recognition and Morris water maze tests.
Main Results:
- Paclitaxel treatment significantly increased cell death indicative of necroptosis in HT22 cells.
- Paclitaxel elevated the expression of key necroptosis pathway proteins: RIPK1, RIPK3, MLKL, and phosphorylated MLKL.
- Necrostatin-1 treatment reduced paclitaxel-induced necroptosis and intracellular Ca2+ overload in HT22 cells.
- Administration of necrostatin-1 in mice reversed paclitaxel-induced cognitive impairments and reduced necroptosis markers in hippocampal tissue.
Conclusions:
- Paclitaxel induces cognitive deficits through the activation of RIPK1-mediated necroptosis in hippocampal neurons.
- Inhibiting the RIPK1-RIPK3-MLKL necroptosis pathway represents a promising therapeutic approach to mitigate paclitaxel-induced cognitive impairment.
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