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PKC 412 sensitizes U1810 non-small cell lung cancer cells to DNA damage
Therese H Hemström1, Bertrand Joseph, Gunnar Schulte
1Division of Toxicology, Institute of Environmental Medicine, Karolinska Institutet, Box 210, SE-171 77 Stockholm, Sweden.
Abstract:
Non-small cell lung carcinoma (NSCLC) is characterized by resistance to drug-induced apoptosis, which might explain the survival of lung cancer cells following treatment. Recently we have shown that the broad-range kinase inhibitor staurosporine (STS) reactivates the apoptotic machinery in U1810 NSCLC cells [Joseph et al., Oncogene 21 (2002) 65]. Lately, several STS analogs that are more specific in kinase inhibition have been suggested for tumor treatment. In this study the apoptosis-inducing ability of the STS analogs PKC 412 and Ro 31-8220 used alone or in combination with DNA-damaging agents in U1810 cells was investigated. In these cells Ro 31-8220 neither induced apoptosis when used alone, nor sensitized cells to etoposide treatment. PKC 412 as a single agent induced death of a small number of U1810 cells, whereas it efficiently triggered a dose- and time-dependent apoptosis in U1285 small cell lung carcinoma cells. In both cell types PKC 412 triggered release of mitochondrial proteins followed by caspase activation. However, concomitant activation of a caspase-independent pathway was essential to kill NSCLC cells. Importantly, PKC 412 was able to sensitize etoposide- and radiation-induced death of U1810 cells. The best sensitization was achieved when PKC 412 was administered 24 h after treatments. In U1810 cells, Ro 31-8220 decreased PMA-induced ERK phosphorylation as efficiently as PKC 412, indicating that the failure of Ro 31-8220 to induce apoptosis was not due to weaker inhibition of conventional and novel PKC isoforms. However, Ro 31-8220 increased the basal level of ERK and Akt phosphorylation in both cell lines, whereas Akt phosphorylation was suppressed in the U1810 cells, which might influence apoptosis. These results suggest that PKC 412 could be a useful tool in increasing the efficiency of therapy of NSCLC.
Insights
Staurosporine analogs PKC 412 and Ro 31-8220 were tested for their ability to induce apoptosis in non-small cell lung carcinoma (NSCLC) cells. PKC 412 showed promise in sensitizing NSCLC cells to chemotherapy and radiation, suggesting its potential as a therapeutic agent.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Non-small cell lung carcinoma (NSCLC) exhibits resistance to apoptosis, contributing to treatment failure.
- Staurosporine (STS), a broad-range kinase inhibitor, has previously demonstrated apoptosis-reactivating properties in NSCLC cells.
- Specific STS analogs are being investigated for improved tumor treatment efficacy.
Purpose of the Study:
- To investigate the apoptosis-inducing potential of STS analogs PKC 412 and Ro 31-8220 in NSCLC cells.
- To evaluate the combination effects of these analogs with DNA-damaging agents like etoposide.
- To explore the underlying mechanisms of apoptosis induction and sensitization.
Main Methods:
- Treatment of U1810 and U1285 NSCLC cell lines with PKC 412 and Ro 31-8220, alone and in combination with etoposide or radiation.
- Assessment of apoptosis induction, mitochondrial protein release, and caspase activation.
- Analysis of extracellular signal-regulated kinase (ERK) and Akt phosphorylation levels.
Main Results:
- Ro 31-8220 did not induce apoptosis or sensitize cells to etoposide.
- PKC 412 induced apoptosis in U1285 cells and sensitized U1810 cells to etoposide and radiation, particularly when administered 24 hours post-treatment.
- Both analogs inhibited PMA-induced ERK phosphorylation, but Ro 31-8220 altered basal ERK and Akt phosphorylation, potentially impacting apoptosis.
Conclusions:
- PKC 412 demonstrates potential as a sensitizing agent to enhance NSCLC therapy efficacy.
- The combination of PKC 412 with conventional treatments like etoposide and radiation warrants further investigation for NSCLC treatment.
- Differential effects on apoptotic pathways and kinase phosphorylation highlight the distinct roles of PKC 412 and Ro 31-8220.
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