CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Anti-TGF-β/PD-L1 bispecific antibody synergizes with radiotherapy to enhance antitumor immunity and mitigate radiation-induced pulmonary fibrosis.
Anti-TGF-β/PD-L1 bispecific antibody synergizes with radiotherapy to enhance antitumor immunity and mitigate radiation-induced pulmonary fibrosis.
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我们的研究结果表明,RT 联合 YM101 在临床前模型中增强了抗肿瘤免疫,并克服了非炎症性肿瘤的耐药性,同时显示出减轻 RT 诱导的纤维化的潜力。这种联合治疗在克服 ICI 耐药性方面显示出前景,同时可能保护正常肺组织,从而为进一步的临床研究提供了强有力的依据。
尽管免疫检查点抑制剂(ICIs)在多种恶性肿瘤中取得了成功,但仍有相当比例的患者对治疗无反应。放疗(RT)可引发免疫原性抗肿瘤反应,但同时激活多种免疫逃逸机制。我们前期研究证明了YM101,一种抗TGF-β/PD-L1双特异性抗体,在基质丰富的肿瘤中的疗效。然而,YM101在免疫细胞浸润不良的非炎症性肿瘤中显示出降低的疗效。本研究探讨了RT与YM101之间的潜在协同作用,以克服免疫治疗耐药并减轻RT诱导的肺纤维化。
在几种非炎症性小鼠肿瘤模型中探讨了RT联合YM101治疗在体内的抗肿瘤活性和生存结局。此外,在肺转移模型中评估了对肺转移的抑制作用。通过流式细胞术定量了RT对树突状细胞(DC)成熟的影响,而细胞因子和趋化因子的分泌则通过ELISA测定。为了全面表征肿瘤微环境的变化,我们采用了多种方法的组合,包括流式细胞术、IHC染色、多重免疫荧光和RNA测序。此外,我们还评估了YM101对RT诱导的肺纤维化的影响。
RT联合YM101在免疫浸润较差的非炎症性肿瘤中较单药治疗显著抑制肿瘤生长、延长生存期并抑制肺转移。RT以剂量依赖性方式促进DC成熟,并增加多种促炎细胞因子的分泌。在机制上,RT联合YM101同时增加了瘤内DCs和TIL(肿瘤浸润淋巴细胞)的浸润与活化,并重塑了肿瘤微环境格局。值得注意的是,YM101减轻了RT诱导的瘤周纤维化和肺纤维化。
Despite the success of immune checkpoint inhibitors (ICIs) in multiple malignant tumors, a significant proportion of patients remain unresponsive to treatment. Radiotherapy (RT) elicits immunogenic antitumor responses but concurrently activates several immune evasion mechanisms. Our earlier research demonstrated the efficacy of YM101, an anti-TGF-β/PD-L1 bispecific antibody, in stroma-rich tumors. Nevertheless, YM101 has demonstrated reduced effectiveness in non-inflamed tumors characterized by poor immune cell infiltration. This study investigated the potential synergy between RT and YM101 in overcoming immunotherapy resistance and mitigating RT-induced pulmonary fibrosis.
The antitumor activity and survival outcomes of RT plus YM101 treatment in vivo were explored in several non-inflamed murine tumor models. Furthermore, the inhibition of pulmonary metastases was assessed in a pulmonary metastasis model. The impact of RT on dendritic cell (DC) maturation was quantified by flow cytometry, whereas cytokine and chemokine secretions were measured by ELISA. To comprehensively characterize changes in the tumor microenvironment, we utilized a combination of methods, including flow cytometry, IHC staining, multiplex inmunofluorecence and RNA sequencing. Additionally, we evaluated the impact of YM101 on RT-induced pulmonary fibrosis.
RT plus YM101 significantly inhibited tumor growth, prolonged survival and inhibited pulmonary metastases compared with monotherapies in non-inflamed tumors with poor immune infiltration. RT promoted DC maturation in a dose-dependent manner and increased the secretions of multiple proinflammatory cytokines. Mechanistically, RT plus YM101 simultaneously increased the infiltration and activation of intratumoral DCs and tumor-infiltrating lymphocytes and reshaped the tumor microenvironment landscape. Notably, YM101 attenuated both RT-induced peritumoral fibrosis and pulmonary fibrosis.
Our findings suggest that RT combined with YM101 enhances antitumor immunity and overcomes resistance in non-inflamed tumors in preclinical models, while simultaneously showing potential in mitigating RT-induced fibrosis. This combination therapy demonstrates promise in overcoming ICI resistance, while potentially sparing normal pulmonary tissue, thereby providing a strong rationale for further clinical investigations.
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