AI Article Synopsis

  • Bispecific T cell engagers (BiTEs) are designed to kill cancer cells by linking them to cytotoxic T cells, while checkpoint inhibitory T cell engagers (CiTEs) enhance this effect by reversing cancer's natural defenses against the immune system.
  • Recent advancements have introduced improved chemical techniques for creating these bispecific antibodies, such as using click chemistry to assemble homogeneous, fragment-based structures.
  • The study demonstrates a chemical method to produce biotin-functionalized conjugates with two CiTEs, showing that the one containing sialidase significantly boosts T cell activity against cancer cells compared to standard BiTEs.

Article Abstract

Bispecific T cell engagers (BiTEs), a subset of bispecific antibodies (bsAbs), can promote a targeted cancer cell's death by bringing it close to a cytotoxic T cell. Checkpoint inhibitory T cell engagers (CiTEs) comprise a BiTE core with an added immunomodulatory protein, which serves to reverse cancer-cell immune-dampening strategies, improving efficacy. So far, protein engineering has been the main approach to generate bsAbs and CiTEs, but improved chemical methods for their generation have recently been developed. Homogeneous fragment-based bsAbs constructed from fragment antigen-binding regions (Fabs) can be generated using click chemistry. Here we describe a chemical method to generate biotin-functionalized three-protein conjugates, which include two CiTE molecules, one containing an anti-PD-1 Fab and the other containing an immunomodulatory enzyme, Salmonella typhimurium sialidase. The CiTEs' efficacy was shown to be superior to that of the simpler BiTE scaffold, with the sialidase-containing CiTE inducing substantially enhanced T cell-mediated cytotoxicity in vitro. The chemical method described here, more generally, enables the generation of multi-protein constructs with further biological applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10624612PMC
http://dx.doi.org/10.1038/s41557-023-01280-4DOI Listing

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