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Updated: May 24, 2026

Exploring Caspase Mutations and Post-Translational Modification by Molecular Modeling Approaches
Published on: October 13, 2022
Tumor-suppressing function of caspase-2 requires catalytic site Cys-320 and site Ser-139 in mice
Keqin Ren1, Jing Lu, Aleksey Porollo
1Department of Cancer and Cell Biology, University of Cincinnati College of Medicine, Cincinnati, Ohio 45267, USA.
Abstract:
The multifunctional caspase-2 protein is involved in apoptosis, NF-κB regulation, and tumor suppression in mice. However, the mechanisms of caspase-2 responsible for tumor suppression remain unclear. Here we identified two sites of caspase-2, the catalytic Cys-320 site and the Ser-139 site, to be important for suppression of cellular transformation and tumorigenesis. Using SV40- and K-Ras-transformed caspase-2 KO mouse embryonic fibroblast cells reconstituted with expression of wild-type, catalytic dead (C320A), or Ser-139 (S139A) mutant caspase-2, we demonstrated that similar to caspase-2 deficiency, when Cys-320 and Ser-139 were mutated, caspase-2 lost its ability to inhibit cellular transformation and tumorigenesis. These mutant cells exhibited enhanced cell proliferation, elevated clonogenic activity, accelerated anchorage-independent growth, and transformation and were highly tumorigenic, rapidly producing large tumors in athymic nude mice. Investigation into the underlying mechanism showed that these two residues are needed for caspase-2 to suppress NF-κB activity, promote apoptosis, and sustain the G(2)/M checkpoint following DNA damage induction. In addition, tumors in nude mice derived from the two mutant cell lines had higher constitutive NF-κB activity and elevated expression of NF-κB targets of antiapoptotic proteins Bcl-xL, XIAP, and cIAP2. A reduction in caspase-2 mRNA was associated with multiple types of cancers in patients. Together, these observations suggest the combined functions of caspase-2 in suppressing NF-κB activation, promoting apoptosis, and sustaining G(2)/M checkpoint contribute to caspase-2 tumor-suppressing function and that caspase-2 may also impact tumor suppression in humans. These findings provide insight into tumor suppression at the cross-roads of apoptosis, cell cycle checkpoint, and NF-κB pathways.
Insights
Caspase-2 protein
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Biology
Background:
- Caspase-2 is a multifunctional protein implicated in apoptosis, NF-κB regulation, and tumor suppression.
- The precise mechanisms by which caspase-2 exerts its tumor-suppressive functions are not fully understood.
Purpose of the Study:
- To investigate the roles of specific caspase-2 sites, Cys-320 and Ser-139, in suppressing cellular transformation and tumorigenesis.
- To elucidate the molecular mechanisms underlying caspase-2's tumor-suppressive activity, focusing on NF-κB signaling, apoptosis, and cell cycle checkpoints.
Main Methods:
- Utilized SV40- and K-Ras-transformed caspase-2 knockout mouse embryonic fibroblast cells.
- Reconstituted cells with wild-type, catalytic dead (C320A), or Ser-139 (S139A) mutant caspase-2.
- Assessed cellular transformation, tumorigenesis in athymic nude mice, NF-κB activity, apoptosis, and G(2)/M checkpoint function.
Main Results:
- Mutation of Cys-320 or Ser-139 in caspase-2 abrogated its ability to inhibit cellular transformation and tumorigenesis.
- Mutant cells displayed enhanced proliferation, clonogenic activity, anchorage-independent growth, and formed larger tumors rapidly.
- Caspase-2's suppression of NF-κB activity, promotion of apoptosis, and maintenance of the G(2)/M checkpoint were dependent on Cys-320 and Ser-139.
- Tumors from mutant cell lines showed elevated constitutive NF-κB activity and antiapoptotic protein expression.
Conclusions:
- The catalytic Cys-320 and Ser-139 sites are crucial for caspase-2's tumor-suppressive functions.
- Caspase-2's tumor suppression involves the coordinated regulation of NF-κB signaling, apoptosis, and the G(2)/M cell cycle checkpoint.
- Reduced caspase-2 expression correlates with human cancers, suggesting a conserved role in tumor suppression.
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