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消除脑肿瘤微环境中的辐射诱导衰老可减轻胶质母细胞瘤的复发。

Elimination of Radiation-Induced Senescence in the Brain Tumor Microenvironment Attenuates Glioblastoma Recurrence.

机构信息

Department of Radiation Oncology, University of Texas Southwestern Medical Center, Dallas, Texas.

Department of Neurosurgery, University of Texas Health, San Antonio, Texas.

出版信息

Cancer Res. 2021 Dec 1;81(23):5935-5947. doi: 10.1158/0008-5472.CAN-21-0752. Epub 2021 Sep 27.

Abstract

Glioblastomas (GBM) are routinely treated with ionizing radiation (IR) but inevitably recur and develop therapy resistance. During treatment, the tissue surrounding tumors is also irradiated. IR potently induces senescence, and senescent stromal cells can promote the growth of neighboring tumor cells by secreting factors that create a senescence-associated secretory phenotype (SASP). Here, we carried out transcriptomic and tumorigenicity analyses in irradiated mouse brains to elucidate how radiotherapy-induced senescence of non-neoplastic brain cells promotes tumor growth. Following cranial irradiation, widespread senescence in the brain occurred, with the astrocytic population being particularly susceptible. Irradiated brains showed an altered transcriptomic profile characterized by upregulation of CDKN1A (p21), a key enforcer of senescence, and several SASP factors, including HGF, the ligand of the receptor tyrosine kinase (RTK) Met. Preirradiation of mouse brains increased Met-driven growth and invasiveness of orthotopically implanted glioma cells. Importantly, irradiated p21 mouse brains did not exhibit senescence and consequently failed to promote tumor growth. Senescent astrocytes secreted HGF to activate Met in glioma cells and to promote their migration and invasion , which could be blocked by HGF-neutralizing antibodies or the Met inhibitor crizotinib. Crizotinib also slowed the growth of glioma cells implanted in preirradiated brains. Treatment with the senolytic drug ABT-263 (navitoclax) selectively killed senescent astrocytes , significantly attenuating growth of glioma cells implanted in preirradiated brains. These results indicate that SASP factors in the irradiated tumor microenvironment drive GBM growth via RTK activation, underscoring the potential utility of adjuvant senolytic therapy for preventing GBM recurrence after radiotherapy. SIGNIFICANCE: This study uncovers mechanisms by which radiotherapy can promote GBM recurrence by inducing senescence in non-neoplastic brain cells, suggesting that senolytic therapy can blunt recurrent GBM growth and aggressiveness.

摘要

胶质母细胞瘤(GBM)通常采用电离辐射(IR)治疗,但不可避免地会复发并产生治疗耐药性。在治疗过程中,肿瘤周围的组织也会受到辐射。IR 强烈诱导衰老,衰老的基质细胞可以通过分泌因子促进邻近肿瘤细胞的生长,这些因子产生衰老相关分泌表型(SASP)。在这里,我们对辐照小鼠大脑进行了转录组和致瘤性分析,以阐明放射治疗诱导的非肿瘤性脑细胞衰老如何促进肿瘤生长。颅照射后,大脑中广泛发生衰老,星形胶质细胞群体特别容易受到影响。辐照的大脑显示出改变的转录组谱,其特征是 CDKN1A(p21)上调,p21 是衰老的关键执行者,以及几种 SASP 因子,包括 HGF,受体酪氨酸激酶(RTK)Met 的配体。小鼠大脑的预辐照增加了 Met 驱动的胶质瘤细胞的生长和侵袭性。重要的是,辐照的 p21 小鼠大脑没有表现出衰老,因此未能促进肿瘤生长。衰老的星形胶质细胞分泌 HGF 来激活胶质瘤细胞中的 Met,并促进其迁移和侵袭,这可以被 HGF 中和抗体或 Met 抑制剂克唑替尼阻断。克唑替尼也减缓了植入预辐照大脑中的胶质瘤细胞的生长。用选择性杀死衰老细胞的 senolytic 药物 ABT-263(navitoclax)治疗,显著减弱了植入预辐照大脑中的胶质瘤细胞的生长。这些结果表明,辐照肿瘤微环境中的 SASP 因子通过 RTK 激活驱动 GBM 生长,突出了辅助 senolytic 治疗在预防放疗后 GBM 复发方面的潜在效用。意义:本研究揭示了放疗通过诱导非肿瘤性脑细胞衰老来促进 GBM 复发的机制,表明 senolytic 治疗可以减弱复发性 GBM 的生长和侵袭性。

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