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A soluble activator that favors the ex vivo expansion of CD8+CD27+ T cells
Esther I. Matus, Amanda Sparkes, Jean Gariépy
Esther I. Matus, Amanda Sparkes, Jean Gariépy
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Resource and Technical Advance Therapeutics

A soluble activator that favors the ex vivo expansion of CD8+CD27+ T cells

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Abstract

Adoptive cell therapy involves the infusion of tumor-reactive T cells into patients with cancer to provide antitumor immunity. The ex vivo expansion and differentiation of such T cells are key parameters that affect their therapeutic potential. Human T cells are presently expanded in culture through the use of anti-CD3 and anti-CD28 mAbs immobilized on beads, expressed on cells, or assembled in the context of soluble antibody complexes. Here we report the design of a small, bispecific single-chain variable fragment construct agonizing both CD3 and CD28 pathways. This soluble T cell expansion protein, termed T-CEP, activates, expands, and differentiates human T cells ex vivo at concentrations in the femtomolar range. Importantly, T-CEP promotes the preferential growth of human CD8+ T cells over the course of 12 days in comparison with methods involving immobilized anti-CD3 mAb/soluble anti-CD28 mAb or soluble anti-CD3/CD28 mAb complexes. The differentiation profile of the resulting human T cell population is also singularly affected by T-CEP, favoring the expansion of a preferred CD8+CD27+ T cell phenotype. The activity profile of T-CEP on human T cells ex vivo suggests its use in generating human T cell populations that are more suited for adoptive cell therapy.

Authors

Esther I. Matus, Amanda Sparkes, Jean Gariépy

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Figure 3

Low concentrations of T-CEP promote the ex vivo activation and proliferation of human T cells.

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Low concentrations of T-CEP promote the ex vivo activation and prolifera...
(A) Representative CFSE profiles depicting the proliferation status of human T cells after a 5-day exposure to T cell–expanding conditions, without added cytokines. Immobilized anti-CD3 (i αCD3) and soluble αCD28 (s αCD28) agonistic mAbs were used at working concentrations of 5 μg/mL and 1 μg/mL, respectively, while the final concentration of TACs in wells was approximately 1.5 μg/mL. T-CEP was dispensed into wells to a final concentration of 10 ng/mL (170 fM). Similar T cell expansion profiles were observed from PBMCs isolated from 5 donors. (B) The early proliferative capabilities of T-CEP as measured by CFSE (day 5 after stimulation). T-CEP stimulation led to consistently elevated proliferation levels of CD4+ and CD8+ T cells, where both CD4+ and CD8+ T cell proliferation levels were significantly higher than recorded for cells treated with TACs or i αCD3 with s αCD28 (n = 5 donors, 1-way repeated measures ANOVA with a Tukey’s multiple-comparison test). (C) Representative cytokine secretion levels observed at day 5 for human T cells exposed ex vivo to cell expansion conditions. Cytokine secretion profiles observed for each of 5 T cell donors (n = 2, 1-way ANOVA with Dunnett’s test). TACs, tetrameric antibody complexes; i αCD3, immobilized anti-CD3; s αCD28, soluble anti-CD28. *P < 0.05; **P < 0.01; ☐, T-CEP; ○, TACs; ◇, i αCD3 + s αCD28; △, i αCD3.

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ISSN 2379-3708

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