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DR4 specific TRAIL variants are more efficacious than wild-type TRAIL in pancreatic cancer
Rui Yu1, Stella Maris Albarenque, Robbert H Cool
1a National University of Ireland; Galway; National Centre for Biomedical Engineering Science and Apoptosis Research Centre; Molecular Therapeutics Group ; Galway , Ireland.
Abstract:
Current treatment modalities for pancreatic carcinoma afford only modest survival benefits. TRAIL, as a potent and specific inducer of apoptosis in cancer cells, would be a promising new treatment option. However, since not all pancreatic cancer cells respond to TRAIL, further improvements and optimizations are still needed. One strategy to improve the effectiveness of TRAIL-based therapies is to specifically target one of the 2 cell death inducing TRAIL-receptors, TRAIL-R1 or TRAIL-R2 to overcome resistance. To this end, we designed constructs expressing soluble TRAIL (sTRAIL) variants that were rendered specific for either TRAIL-R1 or TRAIL-R2 by amino acid changes in the TRAIL ectodomain. When we expressed these constructs, including wild-type sTRAIL (sTRAIL(wt)), TRAIL-R1 (sTRAIL(DR4)) and TRAIL-R2 (sTRAIL(DR5)) specific variants, in 293 producer cells we found all to be readily expressed and secreted into the supernatant. These supernatants were subsequently transferred onto target cancer cells and apoptosis measured. We found that the TRAIL-R1 specific variant had higher apoptosis-inducing activity in human pancreatic carcinoma Colo357 cells as well as PancTu1 cells that were additionally sensitized by targeting of XIAP. Finally, we tested TRAIL-R1 specific recombinant TRAIL protein (rTRAIL(DR4)) on Colo357 xenografts in nude mice and found them to be more efficacious than rTRAIL(wt). Our results demonstrate the benefits of synthetic biological approaches and show that TRAIL-R1 specific variants can potentially enhance the therapeutic efficacy of TRAIL-based therapies in pancreatic cancer, suggesting that they can possibly become part of individualized and tumor specific combination treatments in the future.
Insights
Targeting TRAIL-R1 with specific variants of TNF-related apoptosis-inducing ligand (TRAIL) enhances apoptosis in pancreatic cancer cells. This TRAIL-R1 specificity improves therapeutic efficacy in preclinical models, offering a promising strategy for pancreatic cancer treatment.
Area of Science:
- Cancer Biology
- Molecular Therapeutics
- Synthetic Biology
Background:
- Pancreatic carcinoma has limited treatment options with modest survival benefits.
- TNF-related apoptosis-inducing ligand (TRAIL) induces cancer cell apoptosis but faces resistance.
- Targeting specific TRAIL receptors (TRAIL-R1 or TRAIL-R2) may overcome TRAIL resistance.
Purpose of the Study:
- To design and evaluate TRAIL variants specific for TRAIL-R1 or TRAIL-R2.
- To assess the efficacy of TRAIL-R1 specific variants in inducing apoptosis in pancreatic cancer cells.
- To investigate the therapeutic potential of TRAIL-R1 specific variants in vivo.
Main Methods:
- Constructed soluble TRAIL (sTRAIL) variants with altered ectodomains for TRAIL-R1 or TRAIL-R2 specificity.
- Expressed and secreted wild-type sTRAIL and specific variants using 293 producer cells.
- Measured apoptosis induction in human pancreatic cancer cell lines (Colo357, PancTu1) and tested efficacy in mouse xenografts.
Main Results:
- All sTRAIL variants were expressed and secreted.
- TRAIL-R1 specific variant showed higher apoptosis-inducing activity in pancreatic cancer cells, especially when sensitized.
- TRAIL-R1 specific recombinant TRAIL protein (rTRAIL(DR4)) was more efficacious than wild-type rTRAIL in a mouse xenograft model.
Conclusions:
- Synthetic biology approaches can create targeted TRAIL variants.
- TRAIL-R1 specific variants demonstrate enhanced therapeutic potential for pancreatic cancer.
- These targeted variants could form the basis for future individualized and tumor-specific combination therapies.
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