研究概要
本研究表明,使用纳米抗体进行成像可能有助于监测患者中疫苗介导的PD-L1调节,并可能为联合治疗提供依据。
中文摘要
理由:尽管在针对程序性死亡配体1(PD-L1)及其受体程序性死亡-1(PD-1)的免疫检查点抑制剂治疗的患者中获得了有前景的缓解,但只有一部分患者从这种免疫治疗中获益。癌症疫苗可能是提高对免疫检查点抑制剂抗PD-L1/PD-1治疗反应的有效方法。然而,缺乏关于癌症疫苗接种后PD-L1表达动态变化的研究。方法:我们对接种疫苗后的荷黑色素瘤小鼠在不同时间点进行了非侵入性全身成像以可视化PD-L1表达。将表达卵清蛋白(OVA)的B16肿瘤小鼠通过静脉注射Galsome mRNA疫苗:编码OVA的mRNA脂质复合物共包封低剂量或高剂量的非典型佐剂α-半乳糖神经酰胺(αGC)以激活恒定自然杀伤T(iNKT)细胞。使用锝-99m(99mTc)标记的抗PD-L1纳米抗体进行连续非侵入性全身免疫成像,并对单光子发射计算机断层扫描(SPECT)和X射线计算机断层扫描(CT)图像进行定量。此外,通过流式细胞术评估PD-L1的细胞表达。结果:SPECT/CT成像显示疫苗接种后PD-L1迅速且全身性上调。PD-L1表达与αGC剂量无关,尽管我们观察到剂量依赖性的iNKT细胞激活。PD-L1表达的动态变化具有器官依赖性,在肺和肝脏中最为显著,这些器官是疫苗分布的靶器官。肺中的PD-L1表达在疫苗接种后立即增加,并随时间逐渐降低,而在肝脏中,疫苗接种诱导的PD-L1上调是短暂的。这些器官的流式细胞分析进一步显示,疫苗接种后髓系细胞以及非免疫细胞的PD-L1表达升高。肿瘤的SPECT/CT成像表明,PD-L1的表达随时间保持稳定,总体上不受疫苗接种影响,尽管细胞水平的流式细胞分析显示疫苗接种后各种免疫细胞群体中PD-L1表达发生变化。结论:使用99m Tc标记的抗PD-L1纳米抗体进行重复无创全身成像,能够记录疫苗接种后PD-L1表达的动态变化。Galsome疫苗接种迅速诱导PD-L1表达的全身性上调,其中肺和肝脏的上调最为显著,而流式细胞分析显示肿瘤微环境中PD-L1上调。本研究表明,使用纳米抗体进行成像可能有助于监测患者中疫苗介导的PD-L1调节,并可能为联合治疗提供依据。据我们所知,这是首次可视化癌症疫苗接种后PD-L1表达的报告。
展开英文摘要原文
Rationale: Although promising responses are obtained in patients treated with immune checkpoint inhibitors targeting programmed death ligand 1 (PD-L1) and its receptor programmed death-1 (PD-1), only a fraction of patients benefits from this immunotherapy. Cancer vaccination may be an effective approach to improve the response to immune checkpoint inhibitors anti-PD-L1/PD-1 therapy. However, there is a lack of research on the dynamics of PD-L1 expression in response to cancer vaccination. Methods: We performed non-invasive whole-body imaging to visualize PD-L1 expression at different timepoints after vaccination of melanoma-bearing mice. Mice bearing ovalbumin (OVA) expressing B16 tumors were i.v. injected with the Galsome mRNA vaccine: OVA encoding mRNA lipoplexes co-encapsulating a low or a high dose of the atypical adjuvant α-galactosylceramide (αGC) to activate invariant natural killer T (iNKT) cells. Serial non-invasive whole-body immune imaging was performed using a technetium-99m ( 99m Tc)-labeled anti-PD-L1 nanobody, single-photon emission computerized tomography (SPECT) and X-ray computed tomography (CT) images were quantified. Additionally, cellular expression of PD-L1 was evaluated with flow cytometry. Results: SPECT/CT-imaging showed a rapid and systemic upregulation of PD-L1 after vaccination. PD-L1 expression could not be correlated to the αGC-dose, although we observed a dose-dependent iNKT cell activation. Dynamics of PD-L1 expression were organ-dependent and most pronounced in lungs and liver, organs to which the vaccine was distributed. PD-L1 expression in lungs increased immediately after vaccination and gradually decreased over time, whereas in liver, vaccination-induced PD-L1 upregulation was short-lived. Flow cytometric analysis of these organs further showed myeloid cells as well as non-immune cells with elevated PD-L1 expression in response to vaccination. SPECT/CT imaging of the tumor demonstrated that the expression of PD-L1 remained stable over time and was overall not affected by vaccination although flow cytometric analysis at the cellular level demonstrated changes in PD-L1 expression in various immune cell populations following vaccination. Conclusion: Repeated non-invasive whole-body imaging using 99m Tc-labeled anti-PD-L1 nanobodies allows to document the dynamic nature of PD-L1 expression upon vaccination. Galsome vaccination rapidly induced systemic upregulation of PD-L1 expression with the most pronounced upregulation in lungs and liver while flow cytometry analysis showed upregulation of PD-L1 in the tumor microenvironment. This study shows that imaging using nanobodies may be useful for monitoring vaccine-mediated PD-L1 modulation in patients and could provide a rationale for combination therapy. To the best of our knowledge, this is the first report that visualizes PD-L1 expression upon cancer vaccination.
论文信息
- 作者
- Ertveldt T、Meulewaeter S、De Vlaeminck Y、Olarte O、Broos K、Van Calenbergh S、Bourgeois S、Deprez J
- 单位
- Laboratory for Molecular and Cellular Therapy, Vrije Universiteit Brussel, Laarbeeklaan 103, B-1090 Brussels, Belgium.Belgium
- 期刊
- Theranostics2023