CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Molecular Imaging of Tumor-Infiltrating Lymphocytes in Living Animals Using a Novel mCD3 Fibronectin Scaffold.
Molecular Imaging of Tumor-Infiltrating Lymphocytes in Living Animals Using a Novel mCD3 Fibronectin Scaffold.
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癌细胞与肿瘤微环境(TME)中免疫细胞之间的相互作用在决定肿瘤生长、转移和治疗反应中起着至关重要的作用。TME中的TIL(肿瘤浸润淋巴细胞)(TILs)可作为多种治疗干预(包括化疗和免疫治疗)中治疗反应的预测标志物。
因此,对肿瘤免疫微环境进行成像是选择最佳癌症治疗策略的重要环节。CD3蛋白是体内诊断成像TILs以评估TME免疫状态的一个有前景的靶点。尽管已有许多抗CD3抗体被探索用于此应用,但这些抗体的非特异性免疫激活限制了其应用。为解决这一问题,我们利用酵母展示文库工程化了一种针对小鼠CD3抗原蛋白的新型纤连蛋白III结构域(FN3)蛋白结合体(mCD3-FN3;11.8 kDa),用于体内成像TILs向TME的归巢。
我们进行了体外和体内实验,以检测mCD3-FN3结合体的纯度以及在同系肿瘤小鼠模型中的体内靶向能力。我们使用近红外800染料与mCD3-FN3偶联(IR800-mCD3-FN3),通过光学成像对TILs进行体内追踪。
我们使用了三种不同的小鼠同系肿瘤(C57BL/6小鼠中的mCD3+ EL4肿瘤、mCD3- CT26结肠肿瘤以及BALB/c小鼠中的mCD3- 4T1乳腺肿瘤)进行体内TILs成像。将荷EL4肿瘤的C57BL/6小鼠分为两组(阻断组[Blk]和非阻断组[Nblk];每组n = 3),用于体内成像。阻断组在给予IR800-mCD3-FN3结合体前2 h接受200 μg未标记的mCD3-FN3。每只小鼠注射25 μg的IR800-mCD3-FN3结合物,并使用IVIS光学成像系统随时间进行追踪。C57BL/6/EL4小鼠在注射IR800-mCD3-FN3结合物后4和24 h进行成像,最终成像后24 h收集小鼠器官用于离体组织学成像。在CT26和4T1肿瘤模型中,结合物注射后4、24和48 h对TME中的TIL进行成像。EL4肿瘤的NIR成像显示,IR800-mCD3-FN3在初次结合物注射后24 h能够以高信本比检测肿瘤内的TIL和肿瘤细胞,总辐射效率(平均TRE ± SD)为6.5 × 10 10 ± 1.5 × 10 10 [photons/s]/[μW/cm 2 ]。
动物在IR800-mCD3-FN3结合物给药前预先注射未标记的mCD3-FN3(Blk),与EL4-Nblk肿瘤相比,肿瘤中显示出显著水平的荧光信号降低(平均TRE ± SD:1.6 × 10 10 ± 4.1 × 10 9)(p = 0.006)。携带CT26和4T1肿瘤的小鼠组中,探针仅能结合肿瘤内的TIL,在注射后48 h显示出特异性成像信号(平均TRE ± SD)分别为1.1 × 10 11 ± 5.2 × 10 10和9.5 × 10 10 ± 4.6 × 10 10。对于这些组,CT26和4T1肿瘤的离体肿瘤与肌肉比值分别为20倍和27倍。这些结果清楚地证明了mCD3-FN3结合物与TME中T细胞表达的mCD3标记的体内结合能力。肿瘤的离体组织学分析、携带EL4肿瘤动物的器官分析以及CT26和4T1肿瘤的TIL成像(注射后48 h)证实,IR800-mCD3-FN3探针能够特异性结合T细胞表达的CD3标记。
总之,体外和体内数据均表明,本研究通过工程化改造的mCD3-FN3结合剂是一种有前景的配体,可用于体内肿瘤的诊断成像,以评估TME中表达mCD3的TILs。这既可作为评估肿瘤对治疗干预反应的预后标志物,也可作为成像肿瘤对免疫检查点阻断癌症治疗反应的诊断标志物。
The interaction between cancer cells and immune cells in the tumor microenvironment (TME) plays a crucial role in determining tumor growth, metastasis, and response to treatment. Tumor-infiltrating lymphocytes (TILs) in TME could be a predictive marker for treatment response in various therapeutic interventions, including chemotherapy and immunotherapy.
Thus, imaging the tumor immune microenvironment is important for selecting the optimal treatment strategies in cancer therapy. The CD3 protein represents a promising target for diagnostic imaging of TILs in vivo to assess the immune state of the TME.
Although many anti-CD3 antibodies have been explored for this application, the nonspecific immune activation by these antibodies limits their applications. To overcome this issue, we engineered a novel fibronectin III domain (FN3) protein binder (mCD3-FN3;11. 8 kDa) against mouse CD3 antigen protein using a yeast display library to image TILs homing in vivo into the TME.
We performed in vitro and in vivo assays to test the mCD3-FN3 binder purity as well as in vivo targetability in mouse models of syngeneic tumors.
We used near-infrared 800 dye conjugated with mCD3-FN3 (IR800-mCD3-FN3) for in vivo tracking of TILs via optical imaging.
We used three different syngeneic tumors in mice (mCD3 + EL4 tumor in C57BL/6 mice, mCD3 - CT26 colon tumor, and mCD3 - 4T1 breast tumor in BALB/c mice) for imaging TILs in vivo . C57BL/6 mice bearing EL4 tumors were separated into two groups (blocking [Blk] and nonblocking [Nblk]; n = 3 per group) and used for in vivo imaging. Blocking groups received 200 μg of unlabeled mCD3-FN3 2 h prior to the administration of IR800-mCD3-FN3 binder. Each mouse was administered with 25 μg of the IR800-mCD3-FN3 binder and tracked using an IVIS optical imaging system over time. C57BL/6/EL4 mice were imaged at 4 and 24 h post injection of the IR800-mCD3-FN3 binder, and mouse organs were collected at 24 h after final imaging and used for ex vivo histological imaging. In CT26 and 4T1 tumor models, TILs in TME were imaged 4, 24, and 48 h after binder injection. The NIR imaging of EL4 tumors showed that IR800-mCD3-FN3 can detect both TILs within the tumor and the tumor cells with a high signal-to-background ratio 24 h after initial binder injection with a total radiant efficiency (mean TRE ± SD) of 6. 5 × 10 10 ± 1. 5 × 10 10 [photons/s]/[μW/cm 2 ]. The animals received preinjection of unlabeled mCD3-FN3(Blk) prior to IR800-mCD3-FN3 binder administration and showed a significant level of fluorescence signal reduction (mean TRE ± SD: 1.
6 × 10 10 ± 4. 1 × 10 9 ) in the tumor when compared to the EL4-Nblk tumors ( p = 0. 006). The mouse group with CT26 and 4T1 tumors where the probe can only bind to TILs within the tumor showed a specific imaging signal (mean TRE ± SD) of 1. 1 × 10 11 ± 5. 2 × 10 10 and 9. 5 × 10 10 ± 4. 6 × 10 10 , respectively, at 48 h p. i. For these groups, the ex vivo tumor-to-muscle ratios were 20- and 27-fold for CT26 and 4T1 tumors, respectively. These results clearly demonstrate the in vivo binding ability of the mCD3-FN3 binder to mCD3 marker expressed by T cells in the TME.
The ex vivo histological analysis of tumors, and the organs of animals with EL4 tumors, and TILs imaging of CT26, and 4T1 tumors (at 48 p. i.) confirmed that the IR800-mCD3-FN3 probe was able to specifically bind to CD3 markers expressed by the T cells.
In summary, both in vitro and in vivo data indicated that the engineered mCD3-FN3 binder by this study is a promising ligand for diagnostic imaging of tumors in vivo for the assessment of mCD3 expressing TILs in the TME. This can be used as a prognostic marker in evaluating tumor response to therapeutic intervention as well as a diagnostic marker in imaging tumor response to immune checkpoint blockade cancer therapies.
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