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Driving CARs with alternative navigation tools - the potential of engineered binding scaffolds
Charlotte U Zajc1,2, Benjamin Salzer1,3, Joseph M Taft4
1Christian Doppler Laboratory for Next Generation CAR T Cells, Vienna, Austria.
Abstract:
T cells that are genetically engineered to express chimeric antigen receptors (CAR T cells) have shown impressive clinical efficacy against B-cell malignancies. In contrast to these highly potent CD19-targeting CAR T cells, many of those directed against other tumor entities and antigens currently suffer from several limitations. For example, it has been demonstrated that many scFvs used as antigen-binding domains in CARs show some degree of oligomerization, which leads to tonic signaling, T cell exhaustion, and poor performance in vivo. Therefore, in many cases alternatives to scFvs would be beneficial. Fortunately, due to the development of powerful protein engineering technologies, also non-immunoglobulin-based scaffolds can be engineered to specifically recognize antigens, thus eliminating the historical dependence on antibody-based binding domains. Here, we discuss the advantages and disadvantages of such engineered binding scaffolds, in particular with respect to their application in CARs. We review recent studies, collectively showing that there is no functional or biochemical aspect that necessitates the use of scFvs in CARs. Instead, antigen recognition can also be mediated efficiently by engineered binding scaffolds, as well as natural ligands or receptors fused to the CAR backbone. Finally, we critically discuss the risk of immunogenicity and show that the extent of nonhuman amino acid stretches in engineered scaffolds-even in those based on nonhuman proteins-is more similar to humanized scFvs than might be anticipated. Together, we expect that engineered binding scaffolds and natural ligands and receptors will be increasingly used for the design of CAR T cells.
Insights
Engineered binding scaffolds offer alternatives to traditional scFvs in chimeric antigen receptor (CAR) T-cell therapy, overcoming limitations like tonic signaling and improving in vivo performance for broader cancer treatment.
Area of Science:
- Immunology
- Biotechnology
- Oncology
Background:
- Chimeric antigen receptor (CAR) T-cell therapies show promise against B-cell malignancies.
- Limitations exist for CAR T-cells targeting other antigens, including issues with scFv binding domains causing tonic signaling and T-cell exhaustion.
Purpose of the Study:
- To discuss the advantages and disadvantages of engineered binding scaffolds as alternatives to scFvs in CAR T-cell design.
- To review studies evaluating non-antibody-based scaffolds for CAR T-cell applications.
Main Methods:
- Review of recent studies on engineered binding scaffolds, natural ligands, and receptors for CAR T-cell therapy.
- Critical discussion of immunogenicity risks associated with engineered scaffolds.
Main Results:
- Engineered binding scaffolds, natural ligands, and receptors can efficiently mediate antigen recognition for CAR T-cells.
- Non-immunoglobulin-based scaffolds can replace scFvs, mitigating issues like tonic signaling and T-cell exhaustion.
- The immunogenicity of engineered scaffolds is comparable to humanized scFvs.
Conclusions:
- Engineered binding scaffolds and natural ligands/receptors are viable alternatives to scFvs for CAR T-cell design.
- These alternatives offer potential for improved CAR T-cell efficacy and broader therapeutic applications.
- Future CAR T-cell designs are expected to increasingly utilize engineered binding scaffolds and natural ligands/receptors.
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