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Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Getting TRAIL back on track for cancer therapy
J Lemke1, S von Karstedt2, J Zinngrebe2
11] Centre for Cell Death, Cancer and Inflammation (CCCI), UCL Cancer Institute, University College London, 72 Huntley Street, London WC1E 6DD, UK [2] Clinic of General and Visceral Surgery, University of Ulm, Albert-Einstein-Allee 23, 89081 Ulm, Germany.
Abstract:
Unlike other members of the TNF superfamily, the TNF-related apoptosis-inducing ligand (TRAIL, also known as Apo2L) possesses the unique capacity to induce apoptosis selectively in cancer cells in vitro and in vivo. This exciting discovery provided the basis for the development of TRAIL-receptor agonists (TRAs), which have demonstrated robust anticancer activity in a number of preclinical studies. Subsequently initiated clinical trials testing TRAs demonstrated, on the one hand, broad tolerability but revealed, on the other, that therapeutic benefit was rather limited. Several factors that are likely to account for TRAs' sobering clinical performance have since been identified. First, because of initial concerns over potential hepatotoxicity, TRAs with relatively weak agonistic activity were selected to enter clinical trials. Second, although TRAIL can induce apoptosis in several cancer cell lines, it has now emerged that many others, and importantly, most primary cancer cells are resistant to TRAIL monotherapy. Third, so far patients enrolled in TRA-employing clinical trials were not selected for likelihood of benefitting from a TRA-comprising therapy on the basis of a valid(ated) biomarker. This review summarizes and discusses the results achieved so far in TRA-employing clinical trials in the light of these three shortcomings. By integrating recent insight on apoptotic and non-apoptotic TRAIL signaling in cancer cells, we propose approaches to introduce novel, revised TRAIL-based therapeutic concepts into the cancer clinic. These include (i) the use of recently developed highly active TRAs, (ii) the addition of efficient, but cancer-cell-selective TRAIL-sensitizing agents to overcome TRAIL resistance and (iii) employing proteomic profiling to uncover resistance mechanisms. We envisage that this shall enable the design of effective TRA-comprising therapeutic concepts for individual cancer patients in the future.
Insights
TNF-related apoptosis-inducing ligand (TRAIL) shows promise for selective cancer cell apoptosis. However, limited clinical benefit of TRAIL-receptor agonists (TRAs) is linked to weak activity, cancer cell resistance, and lack of biomarkers. Revised TRAIL-based therapies are proposed.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- TNF-related apoptosis-inducing ligand (TRAIL) selectively induces apoptosis in cancer cells.
- TRAIL-receptor agonists (TRAs) showed preclinical anticancer activity but limited clinical benefit.
- Factors limiting TRA efficacy include weak agonistic activity, cancer cell resistance, and lack of biomarkers.
Purpose of the Study:
- To review TRA-based clinical trial outcomes.
- To discuss shortcomings of current TRA therapies.
- To propose revised TRAIL-based therapeutic strategies for cancer treatment.
Main Methods:
- Review of preclinical and clinical studies on TRAIL and TRAs.
- Analysis of factors contributing to limited clinical efficacy.
- Integration of insights into TRAIL signaling pathways.
Main Results:
- TRA clinical trials demonstrated broad tolerability but limited therapeutic benefit.
- Weak agonistic activity, TRAIL resistance in cancer cells, and absence of biomarkers were identified as key limitations.
- Recent insights into TRAIL signaling offer potential for improved therapeutic strategies.
Conclusions:
- Revised TRAIL-based therapeutic concepts are needed to improve clinical outcomes.
- Strategies include using highly active TRAs, combining TRAs with sensitizing agents, and employing proteomic profiling for biomarker discovery.
- Personalized TRAIL-based therapies hold promise for future cancer treatment.
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