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Published on: September 1, 2019
Gossypol Treatment Restores Insufficient Apoptotic Function of DFF40/CAD in Human Glioblastoma Cells
Laura Martínez-Escardó1,2, Montse Alemany1,3, María Sánchez-Osuna1
1Cell Death, Senescence and Survival Group, Departament de Bioquímica i Biologia Molecular and Institut de Neurociències, Facultat de Medicina, Campus de Bellaterra, Universitat Autònoma de Barcelona, 08193 Bellaterra, Spain.
Abstract:
Glioblastoma (GBM) is a highly aggressive brain tumor and almost all patients die because of relapses. GBM-derived cells undergo cell death without nuclear fragmentation upon treatment with different apoptotic agents. Nuclear dismantling determines the point-of-no-return in the apoptotic process. DFF40/CAD is the main endonuclease implicated in apoptotic nuclear disassembly. To be properly activated, DFF40/CAD should reside in the cytosol. However, the endonuclease is poorly expressed in the cytosol and remains cumulated in the nucleus of GBM cells. Here, by employing commercial and non-commercial patient-derived GBM cells, we demonstrate that the natural terpenoid aldehyde gossypol prompts DFF40/CAD-dependent nuclear fragmentation. A comparative analysis between gossypol- and staurosporine-treated cells evidenced that levels of neither caspase activation nor DNA damage were correlated with the ability of each compound to induce nuclear fragmentation. Deconvoluted confocal images revealed that DFF40/CAD was almost completely excluded from the nucleus early after the staurosporine challenge. However, gossypol-treated cells maintained DFF40/CAD in the nucleus for longer times, shaping a ribbon-like structure piercing the nuclear fragments and building a network of bridged masses of compacted chromatin. Therefore, GBM cells can fragment their nuclei if treated with the adequate insult, making the cell death process irreversible.
Insights
Gossypol induces nuclear fragmentation in glioblastoma cells by retaining DFF40/CAD in the nucleus, a key step for irreversible cell death. This offers a new therapeutic strategy for aggressive brain tumors.
Area of Science:
- Oncology
- Cell Biology
- Molecular Medicine
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with high relapse rates.
- GBM cells undergo apoptosis without nuclear fragmentation, hindering irreversible cell death.
- DFF40/CAD, crucial for nuclear disassembly, is improperly localized in GBM cells.
Purpose of the Study:
- To investigate the effect of gossypol on DFF40/CAD localization and nuclear fragmentation in GBM cells.
- To compare gossypol's mechanism with staurosporine in inducing nuclear fragmentation.
- To explore gossypol as a potential therapeutic agent for GBM.
Main Methods:
- Utilized commercial and patient-derived GBM cell lines.
- Treated cells with gossypol and staurosporine.
- Performed comparative analysis of caspase activation, DNA damage, and DFF40/CAD localization using confocal microscopy.
Main Results:
- Gossypol treatment induced DFF40/CAD-dependent nuclear fragmentation in GBM cells.
- Nuclear fragmentation by gossypol was independent of caspase activation or DNA damage levels.
- Unlike staurosporine, gossypol maintained DFF40/CAD nuclear localization, facilitating chromatin fragmentation.
Conclusions:
- GBM cells can achieve irreversible cell death via nuclear fragmentation when treated with appropriate agents like gossypol.
- Gossypol's ability to retain DFF40/CAD in the nucleus is critical for inducing nuclear fragmentation.
- Targeting DFF40/CAD localization presents a potential therapeutic avenue for glioblastoma treatment.
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The Intrinsic Apoptotic Pathway

