PO.ET08.01 · 实验与分子治疗

受体靶向金纳米球增强放射疗效并重塑肿瘤免疫

Receptor-targeted gold nanospheres strengthen radiation efficacy and reprogram tumor immunity

海报缩略图:受体靶向金纳米球增强放射疗效并重塑肿瘤免疫
编号 4627 展板 4 时间 4/21 09:00–12:00 区域 Section 19 主讲 Bhoomika Muruvekere Lakshmisha, B Eng
分会场 Strategies to Enhance the Therapeutic Index of Radiotherapy
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作者与单位 Authors & Affiliations

Bhoomika Muruvekere Lakshmisha1, Prudhvi Chand Mallepaddi1, Prapannajeet Biswal1, Ngoc Tuyet Tra1, Aria Sabbagh1, Ayobami Fidelix2, Sai Kumar Samala1, Gabrielle Krouse1, P M Quan Mai1, Khadijeh Koushki1, Lydia WT Cheung1, Geraldine V Vijay1, Yuri Mackeyev1, Sunil Krishnan1

1Vivian L. Smith Department of Neurosurgery, University of Texas Health Science Center at Houston, Houston, TX,2Baylor College of Medicine, Houston, TX

摘要 Abstract

中文摘要
放射治疗是结直肠癌管理的一个重要组成部分。然而,它受到解剖学限制、毒性及免疫激活有限的制约。当肿瘤富含高原子序数(Z)元素并暴露于电离辐射时,肿瘤内会沉积更高的辐射剂量。此处使用金纳米球(GNS)实现的这种放射增敏,因更大程度的自由基形成而增强,从而使GNS加放射产生更大的DNA损伤。近期证据显示,未修复的DNA损伤可导致染色体错误分离和称为微核的未成熟核的形成。这些微核周围形成不良的核膜使DNA暴露于细胞质传感器,触发I型干扰素反应和固有免疫激活。基于此,我们假设GNS增强X射线治疗并引发独特的免疫反应。为改善向过表达表皮生长因子受体(EGFR)的结直肠癌细胞中的受体介导内化,我们采用了我们的原型——西妥昔单抗偶联金纳米球(cGNS)。西妥昔单抗(靶向EGFR的单克隆抗体)使用硫醇聚乙二醇(PEG)连接到30 nm金纳米球上,以改善生物相容性。使用两种经改造以过表达人EGFR的小鼠结直肠癌细胞系CT26-EGFR和MC38-EGFR来测试cGNS和一种聚乙二醇化对照(pGNS)。通过电感耦合等离子体质谱和暗场显微镜显示了GNS的细胞摄取。克隆形成存活实验评估放射增敏,而免疫激活则使用流式细胞术、免疫印迹、细胞因子阵列和巨噬细胞极化实验进行考察。放射增敏后,我们观察到cGAS-STING通路和促炎细胞因子的上调。应用于RAW 264.7巨噬细胞的条件培养基提高了M1/M2巨噬细胞比值,表明固有免疫激活增强。我们接下来使用CT26同基因小鼠模型评估GNS的生物分布、放射增敏程度、免疫细胞浸润及潜在的远隔效应。疗效研究表明,cGNS与放射联合的效果优于pGNS。纳入免疫检查点抑制剂的免疫研究目前正在进行中。通过将纳米技术与放射肿瘤学和免疫治疗相结合,本项目为推进基于纳米材料的放射免疫治疗走向临床转化奠定了基础。
查看英文原文 English abstract
Radiation therapy is an essential component of colorectal cancer management. However, it is limited by anatomical constraints, toxicity, and modest immune activation. When tumors are laden with high atomic number (Z) elements and exposed to ionizing radiation, a higher radiation dose is deposited within the tumor. This radiosensitization, achieved here using gold nanospheres (GNS), is boosted by a greater degree of free radical formation resulting in greater DNA damage with GNS + radiation. Recent evidence shows that unrepaired DNA damage can lead to chromosome missegregation and the formation of immature nuclei called micronuclei. The poorly formed nuclear envelope around these micronuclei exposes DNA to cytoplasmic sensors, triggering a type I interferon response and innate immune activation. Based on this, we hypothesized that GNS amplifies X-ray therapy and elicits unique immune responses. To improve receptor-mediated internalization into colorectal cancer cells overexpressing epidermal growth factor receptor (EGFR), we employed our prototype, cetuximab-conjugated gold nanospheres (cGNS). Cetuximab (monoclonal antibody targeting EGFR) was attached to 30 nm gold nanospheres using thiol polyethylene glycol (PEG) for improved biocompatibility. Two murine colorectal cancer cell lines engineered to overexpress human EGFR, CT26-EGFR and MC38-EGFR, were used to test cGNS and a pegylated control (pGNS). Cellular uptake of the GNSs was shown by Inductively Coupled Plasma Mass Spectrometry and dark-field microscopy. Clonogenic survival assays assessed radiosensitization, while immune activation was examined using flow cytometry, immunoblotting, cytokine arrays, and macrophage polarization assays. Following radiosensitization, we observed upregulation of the cGAS-STING pathway and pro-inflammatory cytokines. Conditioned media applied to RAW 264.7 macrophages increased the M1/M2 macrophage ratio, indicating enhanced innate immune activation. We next used the CT26 syngeneic mouse model to assess GNS biodistribution, the extent of radiosensitization, immune cell infiltration, and potential abscopal effects. Efficacy studies demonstrated that cGNS outperformed pGNS in combination with radiation. Immune studies incorporating immune checkpoint inhibitors are currently underway. By integrating nanotechnology with radiation oncology and immunotherapy, this project lays the groundwork for advancing nanomaterial-based radio-immunotherapy toward clinical translation.
利益披露 Disclosure
B. Muruvekere Lakshmisha, None.. P. Mallepaddi, None.. P. Biswal, None.. N. Tra, None.. A. Sabbagh, None.. A. Fidelix, None.. S. Samala, None.. G. Krouse, None.. P. Mai, None.. K. Koushki, None.. L. Cheung, None.. G. Vijay, None.. Y. Mackeyev, None.. S. Krishnan, None.

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