Related Experiment Video
Updated: Feb 16, 2026

Ex Vivo Infection of Live Tissue with Oncolytic Viruses
Published on: June 25, 2011
Oncolytic Properties of Ampakines In Vitro
Daniel P Radin1, Richard Purcell2, Arnold S Lippa2
1RespireRx Pharmaceuticals, Inc., Glen Rock, NJ, U.S.A. dradin@respirerx.com.
Background/Aim:
The 5-year survival rate of glioblastoma (GBM) is ~10%, demonstrating that a new therapeutic modality for this cancer is desperately needed. Complicating the search for such a modality is that most large molecules cannot pass through the blood brain barrier, so molecules demonstrating efficacy in vitro may not be useful in vivo because they never reach the brain. Recently, the selective serotonin reuptake inhibitor (SSRI) fluoxetine (FLX) was identified as an effective agent in targeting GBM in vitro and in vivo by agonizing AMPA-glutamate receptors (AMPARs), eliciting massive calcium influx and mitochondrial calcium overload and apoptosis.
Materials And Methods:
In the current study, we used a colorimetric cell viability assay to determine if we could enhance the oncolytic effect of FLX in vitro by pre-treating cells with an AMPAR-positive allosteric modulator (Ampakine).
Results:
Our results demonstrated for the first time that concentrations of the Class I ampakine CX614, which increase AMPAR agonist binding affinity, possess oncolytic activity as a sole agent and synergistically reduce GBM viability when paired with FLX. FLX also demonstrates a dose-dependent induction of apoptosis in cancer cells originating outside the CNS that overexpress calcium-permeable AMPARs. Likewise, CX614 inhibits cancer cell viability in a dose-dependent fashion and its combination with FLX synergistically reduces cell viability. These effects of CX614 were not seen with the Class II ampakines, CX717 and CX1739.
Conclusion:
CX614 inhibits the growth of multiple cancers in vitro and bolsters the oncolytic activity of FLX in several cancers.
Insights
The drug fluoxetine (FLX) shows promise against glioblastoma (GBM). Combining FLX with the ampakine CX614 enhances its cancer-killing effects, offering a potential new therapeutic strategy for GBM and other cancers.
Area of Science:
- Neuroscience
- Oncology
- Pharmacology
Background:
- Glioblastoma (GBM) has a poor 5-year survival rate (~10%), necessitating novel therapeutic approaches.
- The blood-brain barrier limits the efficacy of many potential GBM treatments.
- Selective serotonin reuptake inhibitors (SSRIs) like fluoxetine (FLX) show promise by targeting AMPA-glutamate receptors (AMPARs) to induce cancer cell apoptosis.
Purpose of the Study:
- To investigate if combining fluoxetine (FLX) with an AMPAR-positive allosteric modulator (Ampakine) can enhance its oncolytic effect against glioblastoma (GBM) in vitro.
- To evaluate the efficacy of Class I and Class II ampakines as single agents and in combination with FLX.
Main Methods:
- A colorimetric cell viability assay was used to assess cancer cell death.
- Cells were pre-treated with varying concentrations of ampakines (CX614, CX717, CX1739) alone and in combination with fluoxetine (FLX).
Main Results:
- The Class I ampakine CX614 demonstrated oncolytic activity as a single agent and synergistically reduced GBM viability when combined with FLX.
- FLX induced apoptosis in a dose-dependent manner in cancer cells overexpressing calcium-permeable AMPARs.
- CX614 also inhibited cancer cell viability dose-dependently and showed synergistic effects with FLX; Class II ampakines (CX717, CX1739) did not produce similar effects.
Conclusions:
- CX614 exhibits significant oncolytic potential against multiple cancers in vitro.
- Combining CX614 with FLX enhances the anti-cancer efficacy of FLX, suggesting a promising therapeutic strategy for GBM and other cancers.
Related Concept Videos
Physical and Chemical Properties of Matter
Properties of Transition Metals
General Properties of Solutions
Convolution Properties I
The commutative property reveals that the input and the impulse response of an LTI (Linear Time-Invariant) system can be interchanged without affecting the output:
Properties of DTFT II
The frequency differentiation property is illustrated by considering a DTFT pair and differentiating both sides with respect to ω.
Properties of the z-Transform I

