Designed protein logic to target cells with precise combinations of surface antigens

Precise cell targeting is challenging because most mammalian cell types lack a single surface marker that distinguishes them from other cells. A solution would be to target cells using specific combinations of proteins present on their surfaces. In this study, we design colocalization-dependent prot...

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Veröffentlicht in:Science (American Association for the Advancement of Science) 2020-09, Vol.369 (6511), p.1637-1643
Hauptverfasser: Lajoie, Marc J., Boyken, Scott E., Salter, Alexander, Bruffey, Jilliane, Rajan, Anusha, Langan, Robert A., Olshefsky, Audrey, Muhunthan, Vishaka, Bick, Matthew J., Gewe, Mesfin, Quijano-Rubio, Alfredo, Johnson, JayLee, Lenz, Garreck, Nguyen, Alisha, Pun, Suzie, Correnti, Colin E., Riddell, Stanley R., Baker, David
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Sprache:eng
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Zusammenfassung:Precise cell targeting is challenging because most mammalian cell types lack a single surface marker that distinguishes them from other cells. A solution would be to target cells using specific combinations of proteins present on their surfaces. In this study, we design colocalization-dependent protein switches (Co-LOCKR) that perform AND, OR, and NOT Boolean logic operations. These switches activate through a conformational change only when all conditions are met, generating rapid, transcription-independent responses at single-cell resolution within complex cell populations. We implement AND gates to redirect T cell specificity against tumor cells expressing two surface antigens while avoiding off-target recognition of single-antigen cells, and three-input switches that add NOT or OR logic to avoid or include cells expressing a third antigen. Thus, de novo designed proteins can perform computations on the surface of cells, integrating multiple distinct binding interactions into a single output.
ISSN:0036-8075
1095-9203
DOI:10.1126/science.aba6527