TRAIL/Apo-2L: mechanisms and clinical applications in cancer
1Department of Pharmaceutical Sciences, University of Maryland - School of Pharmacy Greenebaum Cancer Center, 20 North Pine Street, Baltimore, MD 21201, USA. rsrivast@rx.umaryland.edu
Abstract:
TNF-related apoptosis-inducing ligand (TRAIL/APO-2L) is a member of the TNF family that promotes apoptosis by binding to the transmembrane receptors TRAIL-R1/DR4 and TRAIL-R2/DR5. Its cytotoxic activity is relatively selective to the human tumor cell lines without much effect on the normal cells. Hence, it exerts an antitumor activity without causing toxicity, as apparent by studies with several xenograft models. This review discusses the intracellular mechanisms by which TRAIL induces apoptosis. The major pathway of its action proceeds through the formation of DISC and activation of caspase-8. The apoptotic processes, therefore, follow two signaling pathways, namely the mitochondrial-independent activation of caspase-3, and mitochondrial-dependent apoptosis due to cleavage of BID by caspase-8, the formation of apoptosomes, and activation of caspase-9 and the downstream caspases. Bcl-2 and Bcl-X(L) have no effect on TRAIL-induced apoptosis in lymphoid cells, whereas these genes block or delay apoptosis in nonlymphoid cancer cells. TRAIL participates in cytotoxicity mediated by activated NK cells, monocytes, and some cytotoxic T cells. Hence, TRAIL may prove to be an effective antitumor agent. In addition, it may enhance the effectiveness of treatment with chemotherapeutic drugs and irradiation. Nontagged Apo-2L/TRAIL does not cause hepatotoxicity in monkeys and chimpanzees and in normal human hepatocytes. Thus, nontagged Apo-2L/TRAIL appears to be a promising new candidate for use in the treatment of cancer.
Insights
Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) selectively induces cancer cell death. This review details TRAIL
Area of Science:
- Molecular Biology
- Immunology
- Oncology
Background:
- TRAIL/APO-2L, a TNF family member, induces apoptosis via TRAIL-R1/DR4 and TRAIL-R2/DR5.
- TRAIL exhibits selective cytotoxicity towards human tumor cell lines, sparing normal cells.
- Preclinical studies in xenograft models demonstrate TRAIL's antitumor activity without significant toxicity.
Purpose of the Study:
- To review the intracellular mechanisms of TRAIL-induced apoptosis.
- To elucidate the signaling pathways involved in TRAIL-mediated cell death.
- To assess TRAIL's potential as an anticancer therapeutic agent.
Main Methods:
- Review of existing literature on TRAIL signaling pathways.
- Analysis of intracellular mechanisms including DISC formation and caspase activation.
- Examination of TRAIL's interaction with apoptosis regulators like Bcl-2 and Bcl-X(L).
Main Results:
- TRAIL induces apoptosis primarily through DISC formation and caspase-8 activation.
- Two major apoptotic pathways are identified: mitochondrial-independent (caspase-3) and mitochondrial-dependent (caspase-9).
- TRAIL enhances cytotoxicity mediated by immune cells and shows potential synergistic effects with chemotherapy and irradiation.
Conclusions:
- TRAIL is a promising antitumor agent due to its selective cancer cell-killing properties.
- Nontagged Apo-2L/TRAIL demonstrates no hepatotoxicity in preclinical models, further supporting its therapeutic potential.
- TRAIL offers a novel strategy for cancer treatment, potentially enhancing existing therapies.
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