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Keratinocyte-derived cytokine TSLP promotes growth and metastasis of melanoma by regulating the tumor-associated immune microenvironment
Wenjin Yao, Beatriz German, Dounia Chraa, Antoine Braud, Cecile Hugel, Pierre Meyer, Guillaume Davidson, Patrick Laurette, Gabrielle Mengus, Eric Flatter, Pierre Marschall, Justine Segaud, Marine Guivarch, Pierre Hener, Marie-Christine Birling, Dan Lipsker, Irwin Davidson, Mei Li
Wenjin Yao, Beatriz German, Dounia Chraa, Antoine Braud, Cecile Hugel, Pierre Meyer, Guillaume Davidson, Patrick Laurette, Gabrielle Mengus, Eric Flatter, Pierre Marschall, Justine Segaud, Marine Guivarch, Pierre Hener, Marie-Christine Birling, Dan Lipsker, Irwin Davidson, Mei Li
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Research Article Dermatology Oncology

Keratinocyte-derived cytokine TSLP promotes growth and metastasis of melanoma by regulating the tumor-associated immune microenvironment

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Abstract

Malignant melanoma is a major public health issue displaying frequent resistance to targeted therapy and immunotherapy. A major challenge lies in better understanding how melanoma cells evade immune elimination and how tumor growth and metastasis is facilitated by the tumor microenvironment. Here, we show that expression of the cytokine thymic stromal lymphopoietin (TSLP) by epidermal keratinocytes is induced by cutaneous melanoma in both mice and humans. Using genetically engineered models of melanoma and tumor cell grafting combined with TSLP-KO or overexpression, we defined a crosstalk between melanoma cells, keratinocytes, and immune cells in establishing a tumor-promoting microenvironment. Keratinocyte-derived TSLP is induced by signals derived from melanoma cells and subsequently acts via immune cells to promote melanoma progression and metastasis. Furthermore, we show that TSLP signals through TSLP receptor–expressing (TSLPR-expressing) DCs to play an unrecognized role in promoting GATA3+ Tregs expressing a gene signature including ST2, CCR8, ICOS, PD-1, CTLA-4, and OX40 and exhibiting a potent suppressive activity on CD8+ T cell proliferation and IFN-γ production. An analogous population of GATA3-expressing Tregs was also identified in human melanoma tumors. Our study provides insights into the role of TSLP in programming a protumoral immune microenvironment in cutaneous melanoma.

Authors

Wenjin Yao, Beatriz German, Dounia Chraa, Antoine Braud, Cecile Hugel, Pierre Meyer, Guillaume Davidson, Patrick Laurette, Gabrielle Mengus, Eric Flatter, Pierre Marschall, Justine Segaud, Marine Guivarch, Pierre Hener, Marie-Christine Birling, Dan Lipsker, Irwin Davidson, Mei Li

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Figure 4

TSLP promotes GATA3+ Tregs in melanoma-draining lymph nodes.

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TSLP promotes GATA3+ Tregs in melanoma-draining lymph nodes.
(A) qPCR an...
(A) qPCR analyses. Data are shown as mean ± SEM. Student’s t test. n = 3 for WT and Tslp–/– groups; n = 4–6 for Braf/Pten/Tslp+/+ and Braf/Pten/Tslp–/– groups. (B and C) Flow cytometry analyses of GATA3 and Foxp3 among CD4+ T cells, showing representative FACS plots (B), as well as their frequencies and cell numbers (C). One-way ANOVA test. n = 3–4 (WT and Tslp–/–); n = 4 (Braf/Pten/Tslp+/+); n = 6 (Braf/Pten/Tslp–/–). (D) Histogram presentation for indicated markers analyzed in the GATA3/Foxp3 CD4+ T cell populations. (E) A summary for the pattern of median fluorescence intensity (MFI) comparisons of the examined markers in the indicated cell populations between Braf/Pten/Tslp+/+ and Braf/Pten/Tslp–/– LNs. Red, significantly higher in Braf/Pten/Tslp+/+ than Braf/Pten/Tslp–/–. Purple, tendency to be higher in Braf/Pten/Tslp+/+ than Braf/Pten/Tslp–/–. Gray, equal between Braf/Pten/Tslp+/+ and Braf/Pten/Tslp–/–. (F) Frequencies and cell numbers of GATA3/Foxp3 CD4+ T cells in ELNs of Braf/Tslp+/+ and Braf/Tslp–/– treated with ETOH or MC903, as indicated in Figure 2A. Student’s t test. n = 2 (ETOH groups); n = 4 (MC903 groups). (G) Histogram presentation for indicated markers analyzed in the GATA3/Foxp3 CD4 T cell populations in ELNs of MC903-treated Braf/Tslp+/+ mice. (H) Frequencies and cell numbers of GATA3/Foxp3 CD4+ T cells in ELNs of CT (CD11c-Cre0/0Crlf2L2/L2) and Crlf2CD11c–/– (CD11c-CreTg/0Crlf2L2/L2) mice grafted with B16F10 cells and treated with ETOH or MC903, as indicated in Figure 3A. Student’s t test. n = 3 (ETOH groups); n = 5 (MC903 groups). All data are representative of more than 3 independent experiments with similar results. *P < 0.05; **P < 0.01.

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