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GM-CSF disruption in CART cells modulates T cell activation and enhances CART cell anti-tumor activity.

Michelle J CoxClaudia Manriquez RomanErin E TapperElizabeth L SieglerDale ChappellCameron DurrantOmar AhmedSutapa SinhaRaphael MwangiNancy S ScottMehrdad HefaziKendall J SchickPaulina HorveiMichael W RuffIsmail CanMohamad AdadaEvandro BezerraLionel Aurelien Kankeu FonkouaSameer A ParikhNeil E KayReona SakemuraSaad Sirop Kenderian
Published in: Leukemia (2022)
Inhibitory myeloid cells and their cytokines play critical roles in limiting chimeric antigen receptor T (CART) cell therapy by contributing to the development of toxicities and resistance following infusion. We have previously shown that neutralization of granulocyte-macrophage colony-stimulating factor (GM-CSF) prevents these toxicities and enhances CART cell functions by inhibiting myeloid cell activation. In this report, we study the direct impact of GM-CSF disruption during the production of CD19-directed CART cells on their effector functions, independent of GM-CSF modulation of myeloid cells. In this study, we show that antigen-specific activation of GM-CSF KO CART19 cells consistently displayed reduced early activation, enhanced proliferation, and improved anti-tumor activity in a xenograft model for relapsed B cell malignancies. Activated CART19 cells significantly upregulate GM-CSF receptors. However, the interaction between GM-CSF and its upregulated receptors on CART cells was not the predominant mechanism of this activation phenotype. GM-CSF KO CART19 cell had reduced BH3 interacting-domain death agonist (Bid), suggesting an interaction between GM-CSF and intrinsic apoptosis pathways. In conclusion, our study demonstrates that CRISPR/Cas9-mediated GM-CSF knockout in CART cells directly ameliorates CART cell early activation and enhances anti-tumor activity in preclinical models.
Keyphrases
  • induced apoptosis
  • cell cycle arrest
  • cell therapy
  • endoplasmic reticulum stress
  • crispr cas
  • single cell
  • stem cells
  • dendritic cells
  • bone marrow
  • adipose tissue
  • pi k akt
  • mouse model
  • peripheral blood