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Updated: Oct 15, 2025

Lighting Up the Pathways to Caspase Activation Using Bimolecular Fluorescence Complementation
Published on: March 5, 2018
p62/SQSTM1-induced caspase-8 aggresomes are essential for ionizing radiation-mediated apoptosis
Su Hyun Lee1,2, Won Jin Cho1, Abdo J Najy1
1Department of Pathology, Wayne State University School of Medicine, Karmanos Cancer Institute, Detroit, MI, 48201, USA.
Abstract:
The autophagy-lysosome pathway and apoptosis constitute vital determinants of cell fate and engage in a complex interplay in both physiological and pathological conditions. Central to this interplay is the archetypal autophagic cargo adaptor p62/SQSTM1/Sequestosome-1 which mediates both cell survival and endoplasmic reticulum stress-induced apoptosis via aggregation of ubiquitinated caspase-8. Here, we investigated the role of p62-mediated apoptosis in head and neck squamous cell carcinoma (HNSCC), which can be divided into two groups based on human papillomavirus (HPV) infection status. We show that increased autophagic flux and defective apoptosis are associated with radioresistance in HPV(-) HNSCC, whereas HPV(+) HNSCC fail to induce autophagic flux and readily undergo apoptotic cell death upon radiation treatments. The degree of radioresistance and tumor progression of HPV(-) HNSCC respectively correlated with autophagic activity and cytosolic levels of p62. Pharmacological activation of the p62-ZZ domain using small molecule ligands sensitized radioresistant HPV(-) HNSCC cells to ionizing radiation by facilitating p62 self-polymerization and sequestration of cargoes leading to apoptosis. The self-polymerizing activity of p62 was identified as the essential mechanism by which ubiquitinated caspase-8 is sequestered into aggresome-like structures, without which irradiation fails to induce apoptosis in HNSCC. Our results suggest that harnessing p62-dependent sequestration of ubiquitinated caspase-8 provides a novel therapeutic avenue in patients with radioresistant tumors.
Insights
p62 protein regulates apoptosis and autophagy, impacting head and neck cancer radioresistance. Activating p62 self-polymerization sensitizes radioresistant tumors to radiation therapy by promoting cancer cell death.
Area of Science:
- Cell Biology
- Oncology
- Cancer Research
Background:
- The autophagy-lysosome pathway and apoptosis are critical for cell fate.
- p62/SQSTM1/Sequestosome-1 is a key adaptor protein linking autophagy and apoptosis.
- Head and neck squamous cell carcinoma (HNSCC) has distinct subtypes based on HPV status.
Purpose of the Study:
- To investigate the role of p62-mediated apoptosis in HNSCC radioresistance.
- To explore the differential response to radiation in HPV(-) and HPV(+) HNSCC.
- To identify therapeutic strategies targeting p62 in radioresistant HNSCC.
Main Methods:
- Analysis of autophagic flux and apoptosis in HPV(-) and HPV(+) HNSCC.
- Correlation of radioresistance and tumor progression with autophagic activity and p62 levels.
- Pharmacological activation of the p62-ZZ domain using small molecule ligands.
Main Results:
- HPV(-) HNSCC exhibits increased autophagic flux and defective apoptosis, correlating with radioresistance and p62 levels.
- HPV(+) HNSCC shows impaired autophagic flux and readily undergoes apoptosis upon radiation.
- Small molecule ligands targeting the p62-ZZ domain sensitized radioresistant HPV(-) HNSCC to ionizing radiation.
Conclusions:
- p62 self-polymerization and sequestration of ubiquitinated caspase-8 into aggresome-like structures are essential for radiation-induced apoptosis.
- Harnessing p62-dependent mechanisms offers a novel therapeutic approach for radioresistant HNSCC.
- Targeting p62 may overcome radioresistance in HPV(-) HNSCC.
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