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Targetable mechanisms driving immunoevasion of persistent senescent cells link chemotherapy-resistant cancer to aging
Denise P. Muñoz, Steven M. Yannone, Anneleen Daemen, Yu Sun, Funda Vakar-Lopez, Misako Kawahara, Adam M. Freund, Francis Rodier, Jennifer D. Wu, Pierre-Yves Desprez, David H. Raulet, Peter S. Nelson, Laura J. van ’t Veer, Judith Campisi, Jean-Philippe Coppé
Denise P. Muñoz, Steven M. Yannone, Anneleen Daemen, Yu Sun, Funda Vakar-Lopez, Misako Kawahara, Adam M. Freund, Francis Rodier, Jennifer D. Wu, Pierre-Yves Desprez, David H. Raulet, Peter S. Nelson, Laura J. van ’t Veer, Judith Campisi, Jean-Philippe Coppé
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Research Article Aging Oncology

Targetable mechanisms driving immunoevasion of persistent senescent cells link chemotherapy-resistant cancer to aging

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Abstract

Cellular senescence is a tumor-suppressive mechanism that can paradoxically contribute to aging pathologies. Despite evidence of immune clearance in mouse models, it is not known how senescent cells (SnCs) persist and accumulate with age or in tumors in individuals. Here, we identify cooperative mechanisms that orchestrate the immunoevasion and persistence of normal and cancer human SnCs through extracellular targeting of natural killer receptor signaling. Damaged SnCs avoided immune recognition through MMP-dependent shedding of NKG2D ligands reinforced via paracrine suppression of NKG2D receptor–mediated immunosurveillance. These coordinated immunoediting processes were evident in residual, drug-resistant tumors from cohorts of more than 700 prostate and breast cancer patients treated with senescence-inducing genotoxic chemotherapies. Unlike in mice, these reversible senescence subversion mechanisms were independent of p53/p16 and exacerbated in oncogenic RAS-induced senescence. Critically, the p16INK4A tumor suppressor could disengage the senescence growth arrest from the damage-associated immune senescence program, which was manifest in benign nevus lesions, where indolent SnCs accumulated over time and preserved a non-proinflammatory tissue microenvironment maintaining NKG2D-mediated immunosurveillance. Our study shows how subpopulations of SnCs elude immunosurveillance and reveals potential secretome-targeted therapeutic strategies to selectively eliminate — and restore the clearance of — the detrimental SnCs that actively persist after chemotherapy and accumulate at sites of aging pathologies.

Authors

Denise P. Muñoz, Steven M. Yannone, Anneleen Daemen, Yu Sun, Funda Vakar-Lopez, Misako Kawahara, Adam M. Freund, Francis Rodier, Jennifer D. Wu, Pierre-Yves Desprez, David H. Raulet, Peter S. Nelson, Laura J. van ’t Veer, Judith Campisi, Jean-Philippe Coppé

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Figure 4

A subset of SnCs evade immune clearance by shedding NKG2D ligands.

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A subset of SnCs evade immune clearance by shedding NKG2D ligands.
(A) Q...
(A) Quantification of naive and persistent SnCs. Naive SnCs are mock-treated monocultures. Persistent SnCs survive exposure to PBMCs. SnCs that persisted after 10 days of coculture with PBMCs were treated again with fresh PBMCs, and survival was assessed after an additional 10 days. Shown are the fractions of persistent SnCs after 1 (left) or 2 (right) rounds of PBMC exposure. (B) NKG2D ligand mRNA levels measured by quantitative real-time PCR in naive and persistent SnCs. Values were normalized to the fibroblast marker CD90 and then compared between persistent and naive SnCs (fold change relative to naive SnC expression levels). (C) Immunofluorescence signal intensity per cell of intracellular MICA (red bars) or NKG2D ligands (green bars), detected as in Figure 2B, in naive and persistent XRA SEN WI-38 cells. (D) Immunofluorescence detection of cell surface NKG2D ligands in naive and persistent SnCs. Original magnification, ×20. The average intensity per cell (n > 90) for both MICA and NKG2D ligands measured in nonpermeabilized senescent WI-38 cells is shown in the graph. Persistent SnCs display 10- to 35-fold fewer NKG2D ligands at their surface than naive SnCs. Two-tailed Student’s t test P values for differences between naive and persistent cells were 1.3 × 10–24 and 1.2 × 10–20 for MICA and NKG2D ligands, respectively. (E and F) Soluble MICA in media from naive PRE and SEN cell monocultures (E) or from persistent cells after direct coculture with PBMCs (F), as measured by ELISA. In C, D, E, and F, box plot length: 25% and 75% of data; centerline: median; whiskers: 25% – (or 75% +) 1.5 × IQR, dots: outliers; color bars: median.

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ISSN 2379-3708

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