PO.ET08.02 · 实验与分子治疗

PD-L1靶向放射治疗可在三阴性乳腺癌小鼠模型中减少肿瘤负荷并延缓肿瘤生长

PD-L1 targeted radiotherapy can reduce tumor burden and delay tumor growth in a mouse model of triple-negative breast cancer

编号 5819 展板 13 时间 4/21 02:00–05:00 区域 Section 16 主讲 Jonathan Moye, BS
分会场 Radiopharmacuetical Platforms for Theranostic Precision Oncology
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作者与单位 Authors & Affiliations

Jonathan Moye, Hailey Houson, Sharmila Sridhar, Sherin James, Jason M. Warram, Suzanne E. Lapi, Anna G. Sorace

The University of Alabama at Birmingham, Birmingham, AL

摘要 Abstract

中文摘要
引言:由于缺乏靶向治疗,三阴性乳腺癌(TNBC)虽仅占乳腺癌诊断的10-15%,却占乳腺癌死亡的40%。PD-1/PD-L1抑制剂与放射治疗联合已被证明在TNBC中具有协同效应。靶向放射治疗(TRT)是将一种靶向探针连接到细胞毒性放射性同位素上,已成为一种向表达目标蛋白的细胞递送治疗性辐射载荷的有前景的技术。这在靶向诸如PD-L1这类蛋白时尤为有利,因为PD-L1在TNBC中高表达,且在放射诱导的细胞毒性后强烈上调。本研究的目的是评估一种新型PD-L1靶向放射治疗改善TNBC免疫治疗结局的疗效与安全性。 方法:将PD-L1靶向抗体阿替利珠单抗(atezolizumab)用细胞毒性放射性同位素镥-177放射性标记,以选择性清除PD-L1+细胞。携带高PD-L1表达MDA-MB-231肿瘤的无胸腺裸鼠接受生理盐水(n=6)、250 μCi(n=3)或500 μCi(n=5)[177Lu]Lu-阿替利珠单抗治疗。小鼠在治疗后第1、3和7天进行单光子发射计算机断层扫描(SPECT)成像,以提供示踪剂在组织中分布的信息。小鼠被监测60天,观察肿瘤体积和体重变化。达到终点时,将小鼠安乐死并收集相关器官(肿瘤、脾、肝、肾)。清除器官用苏木精和伊红染色以评估大体病理改变。采用单因素和双因素方差分析评估各时间点肿瘤体积和SPECT成像指标之间的差异,并采用log-rank检验评估治疗组间生存差异。 结果:接受500 μCi或250 μCi [177Lu]Lu-阿替利珠单抗治疗的小鼠,分别在治疗后第20天(p < 0.05)或第24天(p < 0.05)显示相比对照肿瘤体积显著减小。两个治疗组均观察到中位生存期延长(对照组35天,而250 μCi和500 μCi治疗小鼠分别为52天和60天,p < 0.01)。任何治疗组均未观察到体重减轻,组织学显示脾和肾毒性极小,肝毒性为轻至中度,与可逆性改变一致。SPECT成像显示[177Lu]Lu-阿替利珠单抗在治疗后第1天即在肿瘤中高摄取,且在所有三个成像时间点均具有高肿瘤与背景比。 结论:利用TRT选择性清除PD-L1+细胞使TNBC小鼠模型中肿瘤体积减小、生存期延长。此外,SPECT成像验证了PD-L1靶向TRT在肿瘤组织内的高摄取。这些结果验证了[177Lu]Lu-阿替利珠单抗作为一种新型PD-L1靶向放射治疗,具有改善TNBC患者免疫治疗结局的潜力。
查看英文原文 English abstract
Introduction: Due to lack of targeted therapies, triple-negative breast cancer (TNBC) accounts for 40% of breast cancer mortalities despite only comprising 10-15% of diagnoses. Combination of PD-1/PD-L1 inhibitors with radiation therapy have been shown to have synergistic effects in TNBC. Targeted radiotherapy (TRT), in which a targeting probe is attached to a cytotoxic radioisotope, has emerged as a promising technique to deliver a therapeutic radiation payload to cells expressing the protein of interest. This is advantageous when targeting proteins such as PD-L1, which is highly expressed in TNBC and strongly upregulated after radiation-induced cytotoxicity. The purpose of this study was to assess the efficacy and safety of a novel PD-L1 targeted radiotherapy to improve immunotherapy outcomes in TNBC. Methods: The PD-L1-targeted antibody atezolizumab was radiolabeled with lutetium-177, a cytotoxic radioisotope, to selectively deplete PD-L1 + cells. Athymic nude mice bearing high PD-L1-expressing MDA-MB-231 tumors were treated with saline (n=6), 250µCi (n=3) or 500µCi (n=5) of [ 177 Lu]Lu-atezolizumab. Mice were imaged with Single Photon Emission Computed Tomography (SPECT) on days 1, 3, and 7 post-treatment, informing on distribution of the tracer in the tissue. Mice were monitored for 60 days for changes in tumor volume and body weight. Upon reaching endpoints, mice were euthanized and relevant organs (tumor, spleen, liver, kidney) were collected. Clearance organs were stained with hematoxylin and eosin to assess gross pathological changes. One- and two-way ANOVAs were utilized to assess differences between tumor volumes and SPECT imaging metrics across time, and log-rank tests were used to assess differences in survival between treatment groups. Results: Mice treated with 500µCi or 250µCi of [ 177 Lu]Lu-atezolizumab demonstrated a significant reduction in tumor volume compared to control by day 20 (p < 0.05) or day 24 (p < 0.05) post-treatment, respectively. Increased median survival was observed in both treated groups (35 days in control versus 52 and 60 days in 250µCi and 500µCi treated mice, respectively, p < 0.01). No weight loss was observed in any treated groups, and histology revealed minimal splenic and renal toxicity, with mild to moderate hepatotoxicity consistent with reversible changes. SPECT imaging revealed high uptake of [ 177 Lu]Lu-atezolizumab in the tumor by day 1 post treatment and high tumor to background ratios across all three imaging timepoints. Conclusions: Utilizing TRT to selectively deplete PD-L1 + cells resulted in decreased tumor volumes and increased survival in a mouse model of TNBC. Further, SPECT imaging validated high uptake of the PD-L1-targeted TRT within tumor tissue. These results validate [ 177 Lu]Lu-atezolizumab as a novel PD-L1-targeted radiotherapy which has the potential to improve outcomes of immunotherapy in TNBC patients.
利益披露 Disclosure
J. Moye, None.. S. Sridhar, None.. S. James, None.. J. M. Warram, None.. S. E. Lapi, None.. A. G. Sorace, None.

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