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Histone Deacetylase Inhibitor-Induced Autophagy in Tumor Cells: Implications for p53
Maria Mrakovcic1, Johannes Kleinheinz2, Leopold F Fröhlich3
1Institute of Physiological Chemistry and Pathobiochemistry, University of Münster, Waldeyerstrasse 15, 48149 Münster, Germany. maria.mrakovcic@web.de.
Abstract:
Autophagy is an essential process of the eukaryotic cell allowing degradation and recycling of dysfunctional cellular components in response to either physiological or pathological changes. Inhibition of autophagy in combination with chemotherapeutic treatment has emerged as a novel approach in cancer treatment leading to cell cycle arrest, differentiation, and apoptosis. Suberoyl hydroxamic acid (SAHA) is a broad-spectrum histone deacetylase inhibitor (HDACi) suppressing family members in multiple HDAC classes. Increasing evidence indicates that SAHA and other HDACi can, in addition to mitochondria-mediated apoptosis, also promote caspase-independent autophagy. SAHA-induced mTOR inactivation as a major regulator of autophagy activating the remaining autophagic core machinery is by far the most reported pathway in several tumor models. However, the question of which upstream mechanisms regulate SAHA-induced mTOR inactivation that consequently initiate autophagy has been mainly left unexplored. To elucidate this issue, we recently initiated a study clarifying different modes of SAHA-induced cell death in two human uterine sarcoma cell lines which led to the conclusion that the tumor suppressor protein p53 could act as a molecular switch between SAHA-triggered autophagic or apoptotic cell death. In this review, we present current research evidence about HDACi-mediated apoptotic and autophagic pathways, in particular with regard to p53 and its therapeutic implications.
Insights
Suberoyl hydroxamic acid (SAHA), a histone deacetylase inhibitor, can trigger cancer cell death through autophagy or apoptosis. The tumor suppressor protein p53 acts as a switch, influencing which pathway is activated by SAHA.
Area of Science:
- Cellular biology
- Molecular oncology
- Biochemistry
Background:
- Autophagy is a cellular degradation process crucial for survival and disease states.
- Autophagy inhibition combined with chemotherapy shows promise in cancer treatment.
- Suberoyl hydroxamic acid (SAHA) is a histone deacetylase inhibitor (HDACi) with known anti-cancer effects.
Purpose of the Study:
- To investigate the upstream mechanisms regulating SAHA-induced mTOR inactivation and subsequent autophagy.
- To clarify the role of the tumor suppressor protein p53 in mediating SAHA-induced cell death pathways.
- To review current evidence on HDACi-induced apoptosis and autophagy, focusing on p53's role.
Main Methods:
- Investigated SAHA-induced cell death in human uterine sarcoma cell lines.
- Analyzed the role of p53 as a molecular switch between autophagic and apoptotic cell death.
- Reviewed existing research on HDACi, autophagy, apoptosis, and p53 signaling.
Main Results:
- SAHA can induce both apoptosis and autophagy in cancer cells.
- SAHA-induced autophagy is often linked to mTOR inactivation.
- The tumor suppressor protein p53 appears to regulate the balance between SAHA-induced autophagy and apoptosis.
Conclusions:
- p53 plays a critical role in determining the mode of SAHA-induced cell death.
- Understanding p53's function could lead to improved therapeutic strategies combining HDAC inhibitors and chemotherapy.
- Further research into HDACi-mediated pathways is essential for optimizing cancer treatment.
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