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PRMT5 regulates T cell interferon response and is a target for acute graft-versus-host disease
Katiri J. Snyder, Nina C. Zitzer, Yandi Gao, Hannah K. Choe, Natalie E. Sell, Lotus Neidemire-Colley, Anora Ignaci, Charuta Kale, Raymond D. Devine, Maria G. Abad, Maciej Pietrzak, Min Wang, Hong Lin, Yang W. Zhang, Gregory K. Behbehani, Jane E. Jackman, Ramiro Garzon, Kris Vaddi, Robert A. Baiocchi, Parvathi Ranganathan
Katiri J. Snyder, Nina C. Zitzer, Yandi Gao, Hannah K. Choe, Natalie E. Sell, Lotus Neidemire-Colley, Anora Ignaci, Charuta Kale, Raymond D. Devine, Maria G. Abad, Maciej Pietrzak, Min Wang, Hong Lin, Yang W. Zhang, Gregory K. Behbehani, Jane E. Jackman, Ramiro Garzon, Kris Vaddi, Robert A. Baiocchi, Parvathi Ranganathan
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Research Article Immunology Transplantation

PRMT5 regulates T cell interferon response and is a target for acute graft-versus-host disease

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Abstract

Acute graft-versus-host disease (aGVHD) is a T cell–mediated immunological disorder and the leading cause of nonrelapse mortality in patients who receive allogeneic hematopoietic cell transplants. Based on recent observations that protein arginine methyltransferase 5 (PRMT5) and arginine methylation are upregulated in activated memory T cells, we hypothesized that PRMT5 is involved in the pathogenesis of aGVHD. Here, we show that PRMT5 expression and enzymatic activity were upregulated in activated T cells in vitro and in T cells from mice developing aGVHD after allogeneic transplant. PRMT5 expression was also upregulated in T cells of patients who developed aGVHD after allogeneic hematopoietic cell transplant compared with those who did not develop aGVHD. PRMT5 inhibition using a selective small-molecule inhibitor (C220) substantially reduced mouse and human allogeneic T cell proliferation and inflammatory IFN-γ and IL-17 cytokine production. Administration of PRMT5 small-molecule inhibitors substantially improves survival, reducing disease incidence and clinical severity in mouse models of aGVHD without adversely affecting engraftment. Importantly, we show that PRMT5 inhibition retained the beneficial graft-versus-leukemia effect by maintaining cytotoxic CD8+ T cell responses. Mechanistically, we show that PRMT5 inhibition potently reduced STAT1 phosphorylation as well as transcription of proinflammatory genes, including interferon-stimulated genes and IL-17. Additionally, PRMT5 inhibition deregulates the cell cycle in activated T cells and disrupts signaling by affecting ERK1/2 phosphorylation. Thus, we have identified PRMT5 as a regulator of T cell responses and as a therapeutic target in aGVHD.

Authors

Katiri J. Snyder, Nina C. Zitzer, Yandi Gao, Hannah K. Choe, Natalie E. Sell, Lotus Neidemire-Colley, Anora Ignaci, Charuta Kale, Raymond D. Devine, Maria G. Abad, Maciej Pietrzak, Min Wang, Hong Lin, Yang W. Zhang, Gregory K. Behbehani, Jane E. Jackman, Ramiro Garzon, Kris Vaddi, Robert A. Baiocchi, Parvathi Ranganathan

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Figure 1

PRMT5 expression and activity is upregulated in activated mouse and human T cells in vitro and in vivo.

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PRMT5 expression and activity is upregulated in activated mouse and huma...
Murine B6 T cells were stimulated with either CD3/CD28 Dynabeads or allogeneic BALB/c DCs for 4 days. (A and B) Prmt5 mRNA expression in T cells quantified by real-time PCR (n = 5). Expression relative to unstimulated (US) T cells, with β-actin used as a normalizer. Results are represented as mean ± SD of 2–3 independent experiments. Each symbol represents an individual donor. (C) PRMT5 protein and histone H3R8 symmetric dimethyl protein (H3R8me2s) analyzed by Western blot. One representative Western blot of 3 independent experiments is shown. (D) T cells isolated from healthy human donor (HD) PBMCs were stimulated with CD3/CD28 Dynabeads, with Prmt5 mRNA expression (n = 3 donors) quantified by real-time PCR, and (E) immunoblotted for PRMT5 protein expression and function (n = 2 donors). (F) In vitro PRMT5 methyltransferase activity in nuclear extracts derived from US versus CD3/CD28-stimulated human T cells. Results show specific activity measured in nanograms of dimethylated H4-Arg3 produced per 20 μg nuclear extract. Each symbol represents an individual replicate measurement, with mean ± SD. One representative assay of 3 independent experiments is shown. (G) Splenic T cells isolated from lethally irradiated B6D2F1 mice that received TCD-BM or TCD-BM + B6 allogeneic splenocytes around 25 days after transplant. mRNA expression (n = 9) and (H) protein expression. Two or 3 spleens were pooled from recipient mice to make 1 pooled sample, and 3 pooled samples were analyzed for PRMT5 protein expression by Western blot. (I) Healthy human PBMCs were collected from HDs (n = 7) and from patients after allogeneic bone marrow transplantation with or without GVHD at the time of collection (Supplemental Table 2). Patient samples were matched for day of transplant at which GVHD occurred. PBMCs were stained and analyzed for PRMT5 expression on T cells using mass cytometry; the gating strategy is shown in Supplemental Figure 8. Each symbol represents an individual donor. Data represent mean ± SD. *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001.

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