Related Experiment Video
Updated: May 30, 2026

Cell Death Associated with Abnormal Mitosis Observed by Confocal Imaging in Live Cancer Cells
Published on: August 21, 2013
New pyrazolo[3,4-d]pyrimidine SRC inhibitors induce apoptosis in mesothelioma cell lines through p27 nuclear
P Indovina1, F Giorgi, V Rizzo
1Department of Human Pathology and Oncology, University of Siena, Siena, Italy.
Abstract:
Malignant mesothelioma (MM) is a highly aggressive tumor of the serous membranes for which there is currently no effective curative modality. Recent data suggest that hyperactivation of the tyrosine kinase SRC has a key role in MM development and therefore this kinase represents an important molecular target for MM therapy. We tested new pyrazolo[3,4-d]pyrimidine SRC inhibitors on a panel of MM cell lines expressing the active form of SRC. These SRC inhibitors exerted a significant proapoptotic effect on MM cells without affecting the normal mesothelial cell line MET-5A, supporting a possible use of these SRC inhibitors for a safe treatment of MM. We also showed that SRC inhibitor-induced apoptosis occurred concomitantly with an increase in the nuclear stability of the cyclin-dependent kinase inhibitor p27. This finding is remarkable considering that loss of nuclear p27 expression is a well-established adverse prognostic factor in MM, and p27 nuclear localization is crucial for its tumor-suppressive function. Consistently, SRC inhibition seems to promote the increase in p27 nuclear level also by inactivating the AKT kinase and downregulating cyclin D1, which would otherwise delay p27 nuclear import and provoke its cytoplasmic accumulation. To determine whether p27 stabilization has a direct role in apoptosis induced by SRC inhibition, we stably silenced the CDKN1B gene, encoding p27, in MSTO-211H and REN mesothelioma cells by transduction with lentiviral vectors expressing short hairpin RNAs against the CDKN1B transcript. Strikingly, p27 silencing was able to suppress the apoptosis induced by these SRC inhibitors in both MM cell lines, suggesting that p27 has a crucial proapoptotic role in MM cells treated with SRC inhibitors. Our findings reveal a new mechanism, dependent on p27 nuclear stabilization, by which SRC inhibition can induce apoptosis in MM cells and provide a new rationale for the use of SRC inhibitors in MM therapy.
Insights
New SRC inhibitors show promise for treating malignant mesothelioma (MM). These drugs induce cancer cell death by increasing nuclear p27 levels, a key tumor suppressor, offering a potential new therapeutic strategy for MM.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Malignant mesothelioma (MM) is an aggressive cancer with limited treatment options.
- Hyperactivation of tyrosine kinase SRC is implicated in MM development.
- SRC represents a potential therapeutic target for MM.
Purpose of the Study:
- To evaluate novel pyrazolo[3,4-d]pyrimidine SRC inhibitors for MM treatment.
- To investigate the mechanism of SRC inhibitor-induced apoptosis in MM cells.
- To determine the role of p27 nuclear stabilization in SRC inhibition-mediated apoptosis.
Main Methods:
- Testing SRC inhibitors on MM cell lines and a normal mesothelial cell line.
- Assessing apoptosis induction and p27 nuclear localization.
- Utilizing gene silencing (shRNA) of CDKN1B (p27) to confirm p27's role.
Main Results:
- SRC inhibitors demonstrated significant proapoptotic effects on MM cells, sparing normal cells.
- Apoptosis correlated with increased nuclear stability of p27.
- SRC inhibition led to p27 stabilization, partly via AKT inactivation and cyclin D1 downregulation.
- Silencing p27 abolished SRC inhibitor-induced apoptosis, confirming p27's essential role.
Conclusions:
- SRC inhibitors induce apoptosis in MM cells through a novel mechanism involving p27 nuclear stabilization.
- These findings support the therapeutic potential of SRC inhibitors for MM treatment.
- Targeting SRC and enhancing p27 nuclear localization may offer a new strategy for MM therapy.
Related Concept Videos
The Intrinsic Apoptotic Pathway
Abnormal Proliferation