靶向巨噬细胞的癌症治疗策略
Macrophage-directed therapeutic strategies in cancer.
肿瘤相关巨噬细胞(TAMs)是肿瘤微环境的主要组成部分,具有显著的功能可塑性,根据所处的微环境信号,既可表现为促进肿瘤进展的免疫抑制细胞,也可表现为支持抗肿瘤免疫的免疫刺激细胞。
英文原题:Visualizing Spatial and Stoichiometric Barriers to Bispecific T-Cell Engager Efficacy.
我们的研究确定了 BiTE 分子在实体瘤中发挥最佳疗效的多项必要条件,为实体癌免疫治疗开发提供了可资利用的见解。
双特异性T细胞衔接器(BiTE)是一类引导T细胞的生物免疫疗法。B细胞恶性肿瘤治疗中已获批使用blinatumomab,但BiTE用于实体瘤的开发更具挑战。本研究采用活体成像,在免疫功能完整小鼠体内接种表达EGFR变体III(EGFRvIII)的乳腺肿瘤,评估抗小鼠CD3/抗人EGFRvIII小鼠替代型BiTE分子的暴露情况和药效学反应。研究发现,BiTE进入实体瘤的时间及空间分布具有异质性,揭示了影响其功能的物理屏障。研究还发现,癌细胞需高水平且均一表达EGFRvIII,BiTE才能有效清除肿瘤。此外,只有在较高BiTE剂量下,肿瘤内常驻TIL才足以实现最佳肿瘤杀伤;在中低剂量时,招募外周T细胞可产生协同作用。研究报告,敲除具有共刺激作用的常规1型树突状细胞(cDC1)会减弱BiTE诱导的T细胞激活和肿瘤清除,提示原位抗原呈递细胞(APC)的参与会影响BiTE疗效。总之,本研究明确了BiTE在实体瘤中发挥最佳疗效所需的多项条件,为开发实体瘤免疫疗法提供了依据。
Bispecific T-cell engager (BiTE) molecules are biologic T cell-directing immunotherapies. Blinatumomab is approved for treatment of B-cell malignancies, but BiTE molecule development in solid tumors has been more challenging. Here, we employed intravital imaging to characterize exposure and pharmacodynamic response of an anti-muCD3/anti-huEGFRvIII mouse surrogate BiTE molecule in EGFR variant III (EGFRvIII)-positive breast tumors implanted within immunocompetent mice. Our study revealed heterogeneous temporal and spatial dynamics of BiTE molecule extravasation into solid tumors, highlighting physical barriers to BiTE molecule function. We also discovered that high, homogeneous EGFRvIII expression on cancer cells was necessary for a BiTE molecule to efficiently clear tumors. In addition, we found that resident tumor-infiltrating lymphocytes (TIL) were sufficient for optimal tumor killing only at high BiTE molecule dosage, whereas inclusion of peripheral T-cell recruitment was synergistic at moderate to low dosages. We report that deletion of stimulatory conventional type I DCs (cDC1) diminished BiTE molecule-induced T-cell activation and tumor clearance, suggesting that in situ antigen-presenting cell (APC) engagements modulate the extent of BiTE molecule efficacy. In summary, our work identified multiple requirements for optimal BiTE molecule efficacy in solid tumors, providing insights that could be harnessed for solid cancer immunotherapy development.
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