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Differential effects of HDAC8 targeting on Foxp3+ Tregs and effector T cells promote antitumor immunity
Fanhua Kong, Yan Xiong, Liqing Wang, Rongxiang Han, Hossein Fazelinia, Jennifer Roof, Lynn Spruce, Aaron B. Beeler, Wayne W. Hancock
Fanhua Kong, Yan Xiong, Liqing Wang, Rongxiang Han, Hossein Fazelinia, Jennifer Roof, Lynn Spruce, Aaron B. Beeler, Wayne W. Hancock
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Research Article Immunology Oncology

Differential effects of HDAC8 targeting on Foxp3+ Tregs and effector T cells promote antitumor immunity

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Abstract

HDAC8, an evolutionarily distinct, X-linked, zinc-dependent class I histone/protein deacetylase, is implicated in developmental disorders, parasitic infections, myopathy, and cancers. Our study demonstrates the important role of HDAC8 in immune cells by conditional targeting of HDAC8 in murine T cells and application of selective HDAC8 inhibitors. Using flow cytometry, RNA-seq, and ChIP-seq analyses, we demonstrate that knocking down or inhibiting HDAC8 impaired murine regulatory T cell (Treg) suppressive function in vitro and in vivo, but promoted conventional host T cell responses, thereby limiting syngeneic tumor growth. Mechanistically, HDAC8 knockout downregulated Foxp3 expression, enhanced H3K27 acetylation levels, and promoted IL-2, IL-6, Fas, and FasL expression in both Treg and conventional effector T cells. Thus, our combined genetic and pharmacologic studies establish the central importance of HDAC8 in T cell responses and suggest that selective HDAC8 inhibitors represent a potential therapeutic approach in immuno-oncology.

Authors

Fanhua Kong, Yan Xiong, Liqing Wang, Rongxiang Han, Hossein Fazelinia, Jennifer Roof, Lynn Spruce, Aaron B. Beeler, Wayne W. Hancock

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Figure 1

Conditional deletion or inhibition of HDAC8 promotes antitumor immunity in an implantable tumor model involving s.c. injection of TC-1 and AE-17.ova cells.

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Conditional deletion or inhibition of HDAC8 promotes antitumor immunity ...
(A) Tumor growth in CD4-Cre (n = 7) and HDAC8–/– (n = 10) mice. (B) TC-1 tumor growth in immunocompetent C57BL/6 mice treated with control (diluted DMSO, n = 10) or HDAC8i (OJI-1, n = 10) via Alzet pump. (C) TC-1 tumor growth in immunodeficient C57BL/6 mice treated with control (diluted DMSO, n = 10) or HDAC8i (OJI-1, n = 10) via Alzet pump. (D) AE-17.ova tumor growth in immunocompetent C57BL/6 mice treated with control (diluted DMSO, n = 10) or HDAC8i (OJI-1, n = 10) via Alzet pump. (E) AE-17.ova tumor growth in immunodeficient C57BL/6 mice treated with control (diluted DMSO, n = 10) or HDAC8i (OJI-1, n = 10) via Alzet pump. (F) Flow cytometric analysis of TC-1 intratumoral infiltrating CD4+ and CD8+ T cells in CD4-Cre (n = 3) and HDAC8–/– (n = 3) groups. (G) Flow cytometry was used to analyze IFN-γ expression by T cells in TC-1 tumors of CD4-Cre (n = 3) and HDAC8–/– (n = 3) mice. (H) Proportion of Foxp3+ Tregs and CD8+ T cells in TC-1 tumors of mice treated with HDAC8i (OJI-1, 5 mg/kg/d) for 14 days via Alzet pumps (n = 3/group). (I) qRT-PCR analysis of TC-1 tumor biopsies in CD4-Cre and HDAC8–/– mice (n = 3/group). (J) qRT-PCR analysis of TC-1 tumor biopsies in DMSO- and HDAC8i-treated (OJI-1, 5 mg/kg/d) mice (n = 3/group). Assays were run in triplicate and repeated at least 3 times. The results of a representative experiment are shown. Data are expressed as the mean ± SD of 3 independent experiments. NS, not significant. Comparisons between 2 groups utilized a 2-tailed Student’s t test for normally distributed data.

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