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PMN-MDSCs 通过 ROS/Notch/Nodal 信号的相互作用增强 CTC 的转移特性。

PMN-MDSCs Enhance CTC Metastatic Properties through Reciprocal Interactions via ROS/Notch/Nodal Signaling.

机构信息

Biomarker Research Program Center, Houston Methodist Research Institute, Houston, TX 77030, USA.

Center for Precision Health, School of Biomedical Informatics, University of Texas Health Science Center at Houston, Houston, TX 77030, USA.

出版信息

Int J Mol Sci. 2019 Apr 18;20(8):1916. doi: 10.3390/ijms20081916.

Abstract

Intratumoral infiltration of myeloid-derived suppressor cells (MDSCs) is known to promote neoplastic growth by inhibiting the tumoricidal activity of T cells. However, direct interactions between patient-derived MDSCs and circulating tumors cells (CTCs) within the microenvironment of blood remain unexplored. Dissecting interplays between CTCs and circulatory MDSCs by heterotypic CTC/MDSC clustering is critical as a key mechanism to promote CTC survival and sustain the metastatic process. We characterized CTCs and polymorphonuclear-MDSCs (PMN-MDSCs) isolated in parallel from peripheral blood of metastatic melanoma and breast cancer patients by multi-parametric flow cytometry. Transplantation of both cell populations in the systemic circulation of mice revealed significantly enhanced dissemination and metastasis in mice co-injected with CTCs and PMN-MDSCs compared to mice injected with CTCs or MDSCs alone. Notably, CTC/PMN-MDSC clusters were detected in vitro and in vivo either in patients' blood or by longitudinal monitoring of blood from animals. This was coupled with in vitro co-culturing of cell populations, demonstrating that CTCs formed physical clusters with PMN-MDSCs; and induced their pro-tumorigenic differentiation through paracrine Nodal signaling, augmenting the production of reactive oxygen species (ROS) by PMN-MDSCs. These findings were validated by detecting significantly higher Nodal and ROS levels in blood of cancer patients in the presence of naïve, heterotypic CTC/PMN-MDSC clusters. Augmented PMN-MDSC ROS upregulated Notch1 receptor expression in CTCs through the ROS-NRF2-ARE axis, thus priming CTCs to respond to ligand-mediated (Jagged1) Notch activation. Jagged1-expressing PMN-MDSCs contributed to enhanced Notch activation in CTCs by engagement of Notch1 receptor. The reciprocity of CTC/PMN-MDSC bi-directional paracrine interactions and signaling was functionally validated in inhibitor-based analyses, demonstrating that combined Nodal and ROS inhibition abrogated CTC/PMN-MDSC interactions and led to a reduction of CTC survival and proliferation. This study provides seminal evidence showing that PMN-MDSCs, additive to their immuno-suppressive roles, directly interact with CTCs and promote their dissemination and metastatic potency. Targeting CTC/PMN-MDSC heterotypic clusters and associated crosstalks can therefore represent a novel therapeutic avenue for limiting hematogenous spread of metastatic disease.

摘要

肿瘤内浸润的髓系来源抑制细胞(MDSC)通过抑制 T 细胞的肿瘤杀伤活性,促进肿瘤生长。然而,患者来源的 MDSC 与血液微环境中的循环肿瘤细胞(CTC)之间的直接相互作用仍未被探索。通过异质 CTC/MDSC 聚类来剖析 CTC 和循环 MDSC 之间的相互作用至关重要,因为这是促进 CTC 存活和维持转移过程的关键机制。我们通过多参数流式细胞术从转移性黑色素瘤和乳腺癌患者的外周血中平行分离 CTC 和多形核 MDSC(PMN-MDSC),并对其进行了表征。将这两种细胞群同时移植到小鼠的全身循环中,与单独注射 CTC 或 MDSC 的小鼠相比,同时注射 CTC 和 PMN-MDSC 的小鼠的扩散和转移明显增强。值得注意的是,在患者的血液中或通过对动物血液的纵向监测,无论是在患者的血液中还是在体内,都检测到了 CTC/PMN-MDSC 簇。这与细胞群体的体外共培养相结合,表明 CTC 与 PMN-MDSC 形成物理簇,并通过旁分泌 Nodal 信号诱导其促肿瘤分化,增加 PMN-MDSC 产生的活性氧(ROS)。通过检测存在幼稚、异质 CTC/PMN-MDSC 簇时癌症患者血液中的 Nodal 和 ROS 水平显著升高,验证了这些发现。PMN-MDSC 的 ROS 增强了 Notch1 受体在 CTC 中的表达,通过 ROS-NRF2-ARE 轴,从而使 CTC 对配体介导的(Jagged1)Notch 激活产生反应。表达 Jagged1 的 PMN-MDSC 通过 Notch1 受体的结合,有助于增强 CTC 中的 Notch 激活。基于抑制剂的分析验证了 CTC/PMN-MDSC 双向旁分泌相互作用和信号的相互性,表明联合 Nodal 和 ROS 抑制阻断了 CTC/PMN-MDSC 相互作用,并导致 CTC 存活和增殖减少。这项研究提供了重要证据,表明 PMN-MDSC 除了其免疫抑制作用外,还直接与 CTC 相互作用,促进其扩散和转移能力。因此,靶向 CTC/PMN-MDSC 异质簇及其相关串扰可能代表限制转移性疾病血液传播的新治疗途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6693/6514876/830abcc2097e/ijms-20-01916-g001.jpg

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