BST2 在癌症进展过程中诱导血管平滑肌细胞可塑性和表型转换

Caitlin Bell, Richard Baylis, Nicolas Lopez, Wei Feng Ma, Hua Gao, Fudi Wang, Sharika Bamezai, Changhao Fu, Yoko Kojima, Shaunak Adkar, Lingfeng Luo, Clint Miller, Nicholas L Leeper
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摘要

背景:平滑肌细胞(SMC)的可塑性和表型转换在多种疾病的发病机制中发挥着重要作用,但它们在肿瘤发生中的作用尚不清楚。我们研究了平滑肌细胞的多样性和可塑性是否以及如何在肿瘤血管生成和肿瘤微环境中发挥作用。方法和结果:我们使用 SMC 特异性品系追踪小鼠模型和单细胞 RNA 测序来观察参与肿瘤血管生成的 SMC 的表型多样性。我们发现,相当一部分 SMC 采用了传统上与巨噬细胞相关的表型。这些细胞在转录上类似于炎症消退期的 M2b 巨噬细胞。通过配体-受体算法 CellChat 的计算预测,肿瘤细胞表面的 BST2 向 SMC 上的 PIRA2 发送信号促进了这种表型转变;体外 SMC 试验表明,当暴露于 BST2 时,巨噬细胞转录程序上调,增殖、迁移和吞噬能力增强。在肿瘤中敲除 BST2 能显著减少向巨噬细胞样表型的转变,而发生转变的细胞通常具有更高的炎症信号,这与抗肿瘤效果有关。结论众所周知,BST2 是多种癌症的不良预后标志物,它与 M2 巨噬细胞倾斜的 TME 相关,这些研究表明,表型转换的 SMCs 可能在这种免疫抑制环境中发挥着以前未被发现的作用。要了解这种表型转换如何影响对抗癌药物的反应,以及靶向抑制 SMC 的可塑性是否对治疗有益,还需要进一步的转化工作。
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BST2 induces vascular smooth muscle cell plasticity and phenotype switching during cancer progression
Background: Smooth muscle cell (SMC) plasticity and phenotypic switching play prominent roles in the pathogenesis of multiple diseases, but their role in tumorigenesis is unknown. We investigated whether and how SMC diversity and plasticity plays a role in tumor angiogenesis and the tumor microenvironment. Methods and Results: We use SMC-specific lineage-tracing mouse models and single cell RNA sequencing to observe the phenotypic diversity of SMCs participating in tumor vascularization. We find that a significant proportion of SMCs adopt a phenotype traditionally associated with macrophage-like cells. These cells are transcriptionally similar to resolution phase M2b macrophages, which have been described to have a role in inflammation resolution. Computationally predicted by the ligand-receptor algorithm CellChat, signaling from BST2 on the surface of tumor cells to PIRA2 on SMCs promote this phenotypic transition; in vitro SMC assays demonstrate upregulation of macrophage transcriptional programs, and increased proliferation, migration, and phagocytic ability when exposed to BST2. Knockdown of BST2 in the tumor significantly decreases the transition towards a macrophage-like phenotype, and cells that do transition have a comparatively higher inflammatory signal typically associated with anti-tumor effect. Conclusion: As BST2 is known to be a poor prognostic marker in multiple cancers where it is associated with an M2 macrophage-skewed TME, these studies suggest that phenotypically switched SMCs may have a previously unidentified role in this immunosuppressive milieu. Further translational work is needed to understand how this phenotypic switch could influence the response to anti-cancer agents and if targeted inhibition of SMC plasticity would be therapeutically beneficial.
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