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Adoptively transferred Vγ9Vδ2 T cells show potent antitumor effects in a preclinical B cell lymphomagenesis model
Nicholas A. Zumwalde, Akshat Sharma, Xuequn Xu, Shidong Ma, Christine L. Schneider, James C. Romero-Masters, Amy W. Hudson, Annette Gendron-Fitzpatrick, Shannon C. Kenney, Jenny E. Gumperz
Nicholas A. Zumwalde, Akshat Sharma, Xuequn Xu, Shidong Ma, Christine L. Schneider, James C. Romero-Masters, Amy W. Hudson, Annette Gendron-Fitzpatrick, Shannon C. Kenney, Jenny E. Gumperz
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Research Article Immunology Oncology

Adoptively transferred Vγ9Vδ2 T cells show potent antitumor effects in a preclinical B cell lymphomagenesis model

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Abstract

A central issue for adoptive cellular immunotherapy is overcoming immunosuppressive signals to achieve tumor clearance. While γδ T cells are known to be potent cytolytic effectors that can kill a variety of cancers, it is not clear whether they are inhibited by suppressive ligands expressed in tumor microenvironments. Here, we have used a powerful preclinical model where EBV infection drives the de novo generation of human B cell lymphomas in vivo, and autologous T lymphocytes are held in check by PD-1/CTLA-4–mediated inhibition. We show that a single dose of adoptively transferred Vδ2+ T cells has potent antitumor effects, even in the absence of checkpoint blockade or activating compounds. Vδ2+ T cell immunotherapy given within the first 5 days of EBV infection almost completely prevented the outgrowth of tumors. Vδ2+ T cell immunotherapy given more than 3 weeks after infection (after neoplastic transformation is evident) resulted in a dramatic reduction in tumor burden. The immunotherapeutic Vδ2+ T cells maintained low cell surface expression of PD-1 in vivo, and their recruitment to tumors was followed by a decrease in B cells expressing PD-L1 and PD-L2 inhibitory ligands. These results suggest that adoptively transferred PD-1lo Vδ2+ T cells circumvent the tumor checkpoint environment in vivo.

Authors

Nicholas A. Zumwalde, Akshat Sharma, Xuequn Xu, Shidong Ma, Christine L. Schneider, James C. Romero-Masters, Amy W. Hudson, Annette Gendron-Fitzpatrick, Shannon C. Kenney, Jenny E. Gumperz

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Figure 7

Low PD-1 expression maintained in vivo by adoptively transferred γδ T cells.

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Low PD-1 expression maintained in vivo by adoptively transferred γδ T ce...
(A) Analysis of PD-1 expression by human T cell subsets from an EBV-infected mouse that was administered γδ T cells that had been expanded in vitro for 8 days. Filled histograms show anti–PD-1 staining; gray dotted lines show staining by an isotype-matched control mAb. (B) Expression of PD-1 by Vδ2+ T cells over the course of in vitro expansion. Total human peripheral blood mononuclear cells freshly isolated from healthy adult donors were cultured in medium containing 2.5 μM zoledronic acid (Zometa), and expression of PD-1 on Vδ2+ T cells was assessed by flow cytometry at the indicated time points. Data points show the means and standard deviations of results from 3–5 independent experiments taken at the indicated time points. (C) Plot showing PD-1 expression by in vitro–expanded γδ T cells immediately prior to injection into human umbilical cord blood mononuclear cell–engrafted (CBMC-engrafted) NSG mice (squares) or at the time of harvest from spleens 5 days later (circles). Adoptively transferred γδ T cells were differentiated from the CBMCs used for engraftment by analysis of HLA-A2 expression, which was intentionally mismatched. (D) EBV-infected mice were administered a mixed population of αβ and γδ T cells (approximately 35% αβ and 65% γδ) obtained by culture with a suboptimal concentration of Zometa. Flow cytometric analysis of splenocytes showing PD-1 expression by the adoptively transferred T cells (HLA-A2 positive) segregated according to γδ TCR expression, compared with T cells from the CBMC sample that was used for the initial engraftment (HLA-A2 negative). (E) Plot showing PD-1 expression by the indicated splenic T cell populations from 4 separate mice.

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