Litcius/Paper detail

Synthetic immune checkpoint engagers protect HLA-deficient iPSCs and derivatives from innate immune cell cytotoxicity

Alessia Gravina, Grigol Tediashvili, Yueting Zheng, Kumiko A. Iwabuchi, Sara M. Peyrot, Susan Z. Roodsari, Lauren Gargiulo, Shin Kaneko, Mitsujiro Osawa, Sonja Schrepfer, T. Deuse

2023Cell stem cell25 citationsDOIOpen Access PDF

Abstract

Immune rejection of allogeneic cell therapeutics remains a major problem for immuno-oncology and regenerative medicine. Allogeneic cell products so far have inferior persistence and efficacy when compared with autologous alternatives. Engineering of hypoimmune cells may greatly improve their therapeutic benefit. We present a new class of agonistic immune checkpoint engagers that protect human leukocyte antigen (HLA)-depleted induced pluripotent stem cell-derived endothelial cells (iECs) from innate immune cells. Engagers with agonistic functionality to their inhibitory receptors TIM3 and SIRPα effectively protect engineered iECs from natural killer (NK) cell and macrophage killing. The SIRPα engager can be combined with truncated CD64 to generate fully immune evasive iECs capable of escaping allogeneic cellular and immunoglobulin G (IgG) antibody-mediated rejection. Synthetic immune checkpoint engagers have high target specificity and lack retrograde signaling in the engineered cells. This modular design allows for the exploitation of more inhibitory immune pathways for immune evasion and could contribute to the advancement of allogeneic cell therapeutics.

Topics & Concepts

Immune systemInnate immune systemBiologyInduced pluripotent stem cellImmunologyHuman leukocyte antigenImmune checkpointChimeric antigen receptorAntigenAntibodyCancer researchT cellImmunotherapyEmbryonic stem cellGeneticsGeneCAR-T cell therapy researchCRISPR and Genetic EngineeringPluripotent Stem Cells Research