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Dual CSF1R inhibition and CD40 activation demonstrates anti-tumor activity in a 3D macrophage- HER2+ breast cancer spheroid model

CD86 川地163 癌症研究 肿瘤微环境 癌症 乳腺癌 癌细胞 巨噬细胞 巨噬细胞极化 M2巨噬细胞 曲妥珠单抗 医学 免疫学 免疫系统 生物 T细胞 体外 内科学 生物化学
作者
Manuel Rodriguez‐Perdigon,Laetitia Haeni,Barbara Rothen‐Rutishauser,Curzio Rüegg
出处
期刊:Frontiers in Bioengineering and Biotechnology [Frontiers Media]
卷期号:11: 1159819-1159819 被引量:14
标识
DOI:10.3389/fbioe.2023.1159819
摘要

The complex interaction between tumor-associated macrophages (TAMs) and tumor cells through soluble factors provides essential cues for breast cancer progression. TAMs-targeted therapies have shown promising clinical therapeutical potential against cancer progression. The molecular mechanisms underlying the response to TAMs-targeted therapies depends on complex dynamics of immune cross-talk and its understanding is still incomplete. In vitro models are helpful to decipher complex responses to combined immunotherapies. In this study, we established and characterized a 3D human macrophage-ER + PR + HER2 + breast cancer model, referred to as macrophage-tumor spheroid (MTS). Macrophages integrated within the MTS had a mixed M2/M1 phenotype, abrogated the anti-proliferative effect of trastuzumab on tumor cells, and responded to IFNγ with increased M1-like polarization. The targeted treatment of MTS with a combined CSF1R kinase inhibitor and an activating anti-CD40 antibody increased M2 over M1 phenotype (CD163 + /CD86 + and CD206 + /CD86 + ratio) in time, abrogated G2/M cell cycle phase transition of cancer cells, promoted the secretion of TNF-α and reduced cancer cell viability. In comparison, combined treatment in a 2D macrophage-cancer cell co-culture model reduced M2 over M1 phenotype and decreased cancer cell viability. Our work shows that this MTS model is responsive to TAMs-targeted therapies, and may be used to study the response of ER + PR + HER2 + breast cancer lines to novel TAM-targeting therapies.
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