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Published on: January 20, 2023
PAC-1 activates procaspase-3 in vitro through relief of zinc-mediated inhibition
Quinn P Peterson1, David R Goode, Diana C West
1Department of Biochemistry, Roger Adams Laboratory, University of Illinois, Urbana, IL 61801, USA.
Abstract:
The direct induction of apoptosis has emerged as a powerful anticancer strategy, and small molecules that either inhibit or activate certain proteins in the apoptotic pathway have great potential as novel chemotherapeutic agents. Central to apoptosis is the activation of the zymogen procaspase-3 to caspase-3. Caspase-3 is the key "executioner" caspase, catalyzing the hydrolysis of a multitude of protein substrates within the cell. Interestingly, procaspase-3 levels are often elevated in cancer cells, suggesting a compound that directly stimulates the activation of procaspase-3 to caspase-3 could selectively induce apoptosis in cancer cells. We recently reported the discovery of a compound, PAC-1, which enhances procaspase-3 activity in vitro and induces apoptotic death in cancer cells in culture and in mouse xenograft models. Described herein is the mechanism by which PAC-1 activates procaspase-3 in vitro. We show that zinc inhibits the enzymatic activity of procaspase-3 and that PAC-1 strongly activates procaspase-3 in buffers that contain zinc. PAC-1 and zinc form a tight complex with one another, with a dissociation constant of approximately 42 nM. The combined data indicate that PAC-1 activates procaspase-3 in vitro by sequestering inhibitory zinc ions, thus allowing procaspase-3 to autoactivate itself to caspase-3. The small-molecule-mediated activation of procaspases has great therapeutic potential and thus this discovery of the in vitro mechanism of action of PAC-1 is critical to the development and optimization of other procaspase-activating compounds.
Insights
PAC-1, a novel compound, directly activates procaspase-3 (the cell death initiator) by binding to inhibitory zinc ions. This mechanism selectively induces apoptosis in cancer cells, offering a promising anticancer strategy.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Apoptosis, or programmed cell death, is a key target for anticancer therapies.
- Caspase-3 is a critical executioner enzyme in apoptosis, and its precursor, procaspase-3, is often elevated in cancer cells.
- Small molecules targeting apoptotic pathways hold potential as novel chemotherapeutic agents.
Purpose of the Study:
- To elucidate the in vitro mechanism of action of PAC-1, a compound that activates procaspase-3.
- To investigate how PAC-1 enhances procaspase-3 activity and induces apoptosis in cancer cells.
- To explore the therapeutic potential of small-molecule-mediated procaspase activation.
Main Methods:
- In vitro enzymatic assays to measure procaspase-3 activation.
- Biochemical analysis of PAC-1 and zinc interactions.
- Determination of the dissociation constant for the PAC-1 and zinc complex.
Main Results:
- Zinc was identified as an inhibitor of procaspase-3 enzymatic activity.
- PAC-1 demonstrated strong activation of procaspase-3 in the presence of zinc.
- PAC-1 and zinc form a stable complex with a dissociation constant of approximately 42 nM.
Conclusions:
- PAC-1 activates procaspase-3 by sequestering inhibitory zinc ions, facilitating procaspase-3 autoactivation to caspase-3.
- This zinc-sequestering mechanism provides a novel strategy for selective cancer cell apoptosis induction.
- Understanding PAC-1's mechanism is crucial for developing optimized procaspase-activating anticancer therapeutics.
Related Concept Videos
Caspases
The Intrinsic Apoptotic Pathway
The Extrinsic Apoptotic Pathway

