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Death receptor ligands, in particular TRAIL, to overcome drug resistance
S de Jong1, T Timmer, F J Heijenbrok
1Department of Medical Oncology, University Hospital Groningen, The Netherlands.
Abstract:
The efficacy of chemotherapeutic drugs is hampered by the occurrence of intrinsic and acquired drug resistance. A variety of mechanisms cause drug-resistance. A final common factor, however, is the reduced capacity of drug resistant cells to go into apoptosis following treatment with DNA damaging agents. This is due to defects in apoptotic pathways, for example, changes in p53. The presence of a common factor makes it of interest to search for ways that facilitate the cell to go into apoptosis following exposure to chemotherapeutic drugs. The death receptor ligands tumor necrosis factor (TNF), Fas ligand (FasL) and TNF-related apoptosis-inducing ligand (TRAIL) are able to induce apoptosis by binding to their cell membrane receptors. Recombinant forms of these ligands are capable to potentiate the effect of chemotherapeutic drugs in vitro and in vivo in the animal model. Based on preclinical toxicity and activity profiling, especially TRAIL is considered to be of interest for clinical use. Systemic treatment of non-human primates with TRAIL did not result in acute toxicity. Animal studies demonstrated antitumor activity of TRAIL and potentiation of the chemotherapy efficacy by TRAIL. Phase 1 studies with TRAIL will therefore be initiated. As TRAIL is supposed to be non-toxic, it will be a major challenge to design surrogate end points to find the optimal dose in the clinic. In analogy to the herceptin therapy, it may be helpful to characterize the tumor of the patient. In addition, ex vivo exposure of the tumor may also be useful to select the proper ligand therapy for the individual patient. For optimal effect it is most likely that ligand therapy will be combined with chemotherapy, but even a combination of ligands for patient treatments can be envisioned. It is to be expected that smart, small molecules targeting these death receptors will be designed in order to lower toxicity and increase antitumor activity.
Insights
Drug resistance in chemotherapy can be overcome by inducing apoptosis. Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) shows promise in preclinical models, with clinical trials planned to enhance chemotherapy efficacy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Chemotherapeutic drug efficacy is limited by intrinsic and acquired drug resistance.
- Drug resistance often involves reduced apoptosis in cancer cells following DNA damage.
- Defects in apoptotic pathways, such as p53 alterations, contribute to drug resistance.
Purpose of the Study:
- To investigate methods to enhance apoptosis in drug-resistant cancer cells.
- To evaluate the potential of death receptor ligands, specifically TRAIL, in overcoming drug resistance.
- To assess the preclinical efficacy and safety of TRAIL as an adjunct to chemotherapy.
Main Methods:
- Utilized recombinant death receptor ligands, including TNF, FasL, and TRAIL.
- Evaluated the ability of these ligands to induce apoptosis in cancer cells.
- Assessed the potentiation of chemotherapeutic effects by TRAIL in vitro and in vivo animal models.
- Conducted preclinical toxicity and activity profiling of TRAIL.
Main Results:
- Recombinant death receptor ligands, particularly TRAIL, demonstrated the ability to induce apoptosis.
- TRAIL showed significant antitumor activity and enhanced chemotherapy efficacy in animal models.
- Systemic administration of TRAIL in non-human primates did not result in acute toxicity.
- TRAIL is considered a promising candidate for clinical trials due to its safety and efficacy profile.
Conclusions:
- TRAIL holds significant potential for clinical application in cancer treatment, especially in combination with chemotherapy.
- Further research is needed to establish optimal dosing and treatment strategies for TRAIL therapy.
- Development of small molecules targeting death receptors may offer improved therapeutic outcomes with reduced toxicity.