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Therapeutic applications of TRAIL receptor agonists in cancer and beyond
Gustavo P Amarante-Mendes1, Thomas S Griffith2
1Departamento de Imunologia, Instituto de Ciências Biomédicas, Universidade de São Paulo, SP, Brazil; Instituto de Investigação em Imunologia, Instituto Nacional de Ciência e Tecnologia, Brazil.
Abstract:
TRAIL/Apo-2L is a member of the TNF superfamily first described as an apoptosis-inducing cytokine in 1995. Similar to TNF and Fas ligand, TRAIL induces apoptosis in caspase-dependent manner following TRAIL death receptor trimerization. Because tumor cells were shown to be particularly sensitive to this cytokine while normal cells/tissues proved to be resistant along with being able to synthesize and release TRAIL, it was rapidly appreciated that TRAIL likely served as one of our major physiologic weapons against cancer. In line with this, a number of research laboratories and pharmaceutical companies have attempted to exploit the ability of TRAIL to kill cancer cells by developing recombinant forms of TRAIL or TRAIL receptor agonists (e.g., receptor-specific mAb) for therapeutic purposes. In this review article we will describe the biochemical pathways used by TRAIL to induce different cell death programs. We will also summarize the clinical trials related to this pathway and discuss possible novel uses of TRAIL-related therapies. In recent years, the physiological importance of TRAIL has expanded beyond being a tumoricidal molecule to one critical for a number of clinical settings - ranging from infectious disease and autoimmunity to cardiovascular anomalies. We will also highlight some of these conditions where modulation of the TRAIL/TRAIL receptor system may be targeted in the future.
Insights
Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) is a cytokine that induces apoptosis, particularly in cancer cells. TRAIL-based therapies are being developed for cancer and other diseases.
Area of Science:
- Immunology
- Molecular Biology
- Oncology
Background:
- TRAIL/Apo-2L, a TNF superfamily member, induces apoptosis via death receptor trimerization.
- Tumor cells exhibit high sensitivity to TRAIL, while normal cells are resistant.
- TRAIL is recognized as a key physiological anti-cancer agent.
Purpose of the Study:
- To review TRAIL-mediated biochemical pathways for cell death induction.
- To summarize clinical trials involving TRAIL-based therapies.
- To explore novel therapeutic applications of TRAIL and its receptor system.
Main Methods:
- Biochemical pathway analysis of TRAIL-induced apoptosis.
- Review of clinical trial data for TRAIL-related therapies.
- Exploration of TRAIL's role in diverse physiological and pathological conditions.
Main Results:
- TRAIL induces apoptosis through caspase-dependent pathways.
- Clinical trials are investigating recombinant TRAIL and receptor agonists for cancer therapy.
- TRAIL's physiological roles extend to infectious diseases, autoimmunity, and cardiovascular conditions.
Conclusions:
- TRAIL is a potent inducer of apoptosis, especially in cancer cells.
- TRAIL-based therapies hold promise for treating cancer and other diseases.
- Targeting the TRAIL/TRAIL receptor system offers potential therapeutic strategies for various clinical settings.
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