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Targeting the AKT pathway: Repositioning HIV protease inhibitors as radiosensitizers
Jayant S Goda1, Tejaswini Pachpor, Trinanjan Basu
1Department of Radiation Oncology; Clinical Biology Laboratory, Department of Radiation Oncology, Advance Centre for Treatment Research & Education in Cancer, Tata Memorial Center, Navi Mumbai, India.
Abstract:
Cellular resistance in tumour cells to different therapeutic approaches has been a limiting factor in the curative treatment of cancer. Resistance to therapeutic radiation is a common phenomenon which significantly reduces treatment options and impacts survival. One of the mechanisms of acquiring resistance to ionizing radiation is the overexpression or activation of various oncogenes like the EGFR (epidermal growth factor receptor), RAS (rat sarcoma) oncogene or loss of PTEN (phosphatase and tensin homologue) which in turn activates the phosphatidyl inositol 3-kinase/protein kinase B (PI3-K)/AKT pathway responsible for radiation resistance in various tumours. Blocking the pathway enhances the radiation response both in vitro and in vivo. Due to the differential activation of this pathway (constitutively activated in tumour cells and not in the normal host cells), it is an excellent candidate target for molecular targeted therapy to enhance radiation sensitivity. In this regard, HIV protease inhibitors (HPIs) known to interfere with PI3-K/AKT signaling in tumour cells, have been shown to sensitize various tumour cells to radiation both in vitro and in vivo. As a result, HPIs are now being investigated as possible radiosensitizers along with various chemotherapeutic drugs. This review describes the mechanisms by which PI3-K/AKT pathway causes radioresistance and the role of HIV protease inhibitors especially nelfinavir as a potential candidate drug to target the AKT pathway for overcoming radioresistance and its use in various clinical trials for different malignancies.
Insights
Tumor cells resist radiation therapy partly via the PI3-K/AKT pathway. HIV protease inhibitors like nelfinavir can block this pathway, enhancing radiation sensitivity and improving cancer treatment outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Radiotherapy
Background:
- Cancer treatment is limited by cellular resistance to therapies, particularly radiation.
- Radioresistance in tumors is often linked to the activation of signaling pathways like PI3-K/AKT, driven by oncogenes (e.g., EGFR, RAS) or loss of tumor suppressors (e.g., PTEN).
Purpose of the Study:
- To explore the mechanisms of PI3-K/AKT pathway-mediated radioresistance in tumors.
- To investigate the potential of HIV protease inhibitors (HPIs) as radiosensitizers by targeting the PI3-K/AKT pathway.
Main Methods:
- Review of literature on cancer radioresistance mechanisms.
- Analysis of studies investigating the role of the PI3-K/AKT pathway in radiation resistance.
- Examination of research on HIV protease inhibitors (HPIs), specifically nelfinavir, as radiosensitizers.
Main Results:
- The PI3-K/AKT pathway is constitutively activated in tumor cells, contributing significantly to radioresistance.
- Blocking the PI3-K/AKT pathway with agents like HPIs enhances tumor cell sensitivity to radiation both in vitro and in vivo.
- Nelfinavir, an HPI, shows promise in targeting the AKT pathway to overcome radioresistance.
Conclusions:
- The PI3-K/AKT pathway is a viable molecular target for enhancing radiation therapy efficacy.
- HPIs, particularly nelfinavir, represent a promising strategy for radiosensitization in cancer treatment.
- Further clinical trials are warranted to evaluate nelfinavir's role in combination cancer therapies.
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