Kimberly M. Apodaca, Chong Xu, Kelsey L. Stanton, Miren L. Baroja, Angel R. Alfaro Doblado, Nils W. Engel, Nils Wellhausen, Arin Cox, Abdulla Berjis, Mei Ji, Omar Bushara, Diana Melendez Perez, Collin Welch, Esha Banerjee, Charles-Antoine Assenmacher, Neil C. Sheppard, John Scholler, Carl H. June, Beatriz M. Carreno, Gerald P. Linette
ABSTRACT: Allogeneic chimeric antigen receptor (CAR) T-cell therapies hold promise for certain malignant disorders, as they allow for scalability, on-demand availability, and enhanced product quality. Currently, allogeneic CAR T-cell approaches focus on deleting the αβ T-cell receptor complex and major histocompatibility complex (MHC)-I/II from CAR T cells to prevent graft-versus-host disease and rejection of allogeneic cells by the recipient's immune system. However, genetic ablation of MHC-I leads to natural killer (NK) cell activation in recipients because of the missing-self response. Here, we demonstrate the successful generation of universal allogeneic CAR T (UCART) cells that evade the NK cell's missing-self response and display similar performance to autologous CAR T cells both in vitro and in vivo. An HLA single-chain trimer platform enabled the demonstration that HLA-E presentation of a defined signal peptide sequence, VMAPRTLIL (designated as HLA-ESP-1C), confers resistance to NKG2A+ cell populations with negligible activation of NKG2C+ cell populations. Examination of additional receptor-ligand interactions that may impact NK cell activation confirmed that CD54 and CD58 ablation on UCART cells, in combination with HLA-ESP-1C expression, led to optimal resistance to heterogeneous NKG2A+/C+ NK cell populations. Finally, in a humanized mouse model reconstituted with allogeneic NK cells, we demonstrated that UCART19 cells promote stringent tumor control. Our work suggests an updated approach for allogeneic CAR T-cell therapy in clinical applications.