Key result
Seneca Valley Virus 2C and 3Cpro proteins induce tumor cell apoptosis via intrinsic mitochondrial pathways.
Why the study?
The detailed mechanism underlying Seneca Valley virus-mediated destruction of tumor cells remained unclear.
This study elucidates the molecular mechanism by which Seneca Valley virus induces apoptosis in tumor cells, highlighting the roles of viral proteins 2C and 3Cpro.
Hypothesis-generating for SVV oncolytic virotherapy in cancer; extends mechanistic insights but leaves open human translation.
Seneca Valley virus (SVV) is the only member of the genus Senecavirus of the Picornaviridae family. SVV can selectively infect and lyse tumor cells with neuroendocrine features and is used as an oncolytic virus for treating small-cell lung cancers. However, the detailed mechanism underlying SVV-mediated destruction of tumor cells remains unclear. In this study, we found that SVV can increase the proportion of apoptotic 293T cells in a dose- and time-dependent manner. SVV-induced apoptosis was initiated via extrinsic and intrinsic pathways through activation of caspase-3, the activity of which could be attenuated by a pan-caspase inhibitor (Z-VAD-FMK). We confirmed that SVV 2C and 3Cpro play critical roles in SVV-induced apoptosis. The SVV 2C protein was located solely in the mitochondria and activated caspase-3 to induce apoptosis. SVV 3Cpro induced apoptosis through its protease activity, which was accompanied by release of cytochrome C into the cytoplasm, but did not directly cleave PARP1.
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Liu et al. (2019) studied Neuroendocrine tumors (in vitro models). Seneca Valley Virus (SVV) 2C and 3Cpro proteins vs. Mock-treated or empty vector was evaluated on Apoptosis induction (cleavage of PARP1 and caspase activation). Seneca Valley Virus 2C and 3Cpro proteins induced apoptosis in tumor cells via the mitochondrion-mediated intrinsic pathway and activation of caspase-3.
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