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负载STING激动剂的低强度聚焦超声响应性相变脂质体增强乳腺癌免疫治疗的免疫激活作用。

Low-Intensity Focused Ultrasound-Responsive Phase-Transitional Liposomes Loaded with STING Agonist Enhances Immune Activation for Breast Cancer Immunotherapy.

作者信息

Hu Cong, Jiang Yuancheng, Chen Yixin, Wang Ying, Wu Ziling, Zhang Qi, Wu Meng

机构信息

Department of Radiation Oncology, the First Affiliated Hospital of Guangxi Medical University, Nanning 530021, China.

Department of Ultrasound, Zhongnan Hospital of Wuhan University, Wuhan 430071, China.

出版信息

Cancers (Basel). 2024 Oct 30;16(21):3657. doi: 10.3390/cancers16213657.

Abstract

Pharmacologically targeting the STING pathway offers a novel approach to cancer immunotherapy. However, small-molecule STING agonists face challenges such as poor tumor accumulation, rapid clearance, and short-lived effects within the tumor microenvironment, thus limiting their therapeutic potential. To address the challenges of poor specificity and inadequate targeting of STING in breast cancer treatment, herein, we report the design and development of a targeted liposomal delivery system modified with the tumor-targeting peptide iRGD (iRGD-STING-PFP@liposomes). With LIFU irradiation, the liposomal system exploits acoustic cavitation, where gas nuclei form and collapse within the hydrophobic region of the liposome lipid bilayer (transient pore formation), which leads to significantly enhanced drug release. Transmission electron microscopy (TEM) was used to investigate the physicochemical properties of the targeted liposomes. Encapsulation efficiency and in vitro release were assessed using the dialysis bag method, while the effects of iRGD on liposome targeting were evaluated through laser confocal microscopy. The CCK-8 assay was used to investigate the toxicity and cell growth effects of this system on 4T1 breast cancer cells and HUVEC vascular endothelial cells. A subcutaneous breast cancer tumor model was established to evaluate the tumor-killing effects and therapeutic mechanism of the newly developed liposomes. The liposome carrier exhibited a regular morphology, with a particle size of 232.16 ± 19.82 nm, as indicated by dynamic light scattering (DLS), and demonstrated low toxicity to both HUVEC and 4T1 cells. With an encapsulation efficiency of 41.82 ± 5.67%, the carrier exhibited a slow release pattern in vitro after STING loading. Targeting results indicated that iRGD modification enhanced the system's ability to target 4T1 cells. The iRGD-STING-PFP@liposomes group demonstrated significant tumor growth inhibition in the subcutaneous breast cancer mouse model with effective activation of the immune system, resulting in the highest populations of matured dendritic cells (71.2 ± 5.4%), increased presentation of tumor-related antigens, promoted CD8+ T cell infiltration at the tumor site, and enhanced NK cell activity. : The iRGD-STING-PFP@liposomes targeted drug delivery system effectively targets breast cancer cells, providing a new strategy for breast cancer immunotherapy. These findings indicate that iRGD-STING-PFP@liposomes could successfully deliver STING agonists to tumor tissue, trigger the innate immune response, and may serve as a potential platform for targeted immunotherapy.

摘要

从药理学角度靶向刺激干扰素基因(STING)通路为癌症免疫治疗提供了一种新方法。然而,小分子STING激动剂面临着诸如肿瘤蓄积性差、清除快以及在肿瘤微环境中作用持续时间短等挑战,从而限制了它们的治疗潜力。为了解决乳腺癌治疗中STING特异性差和靶向不足的问题,在此,我们报告了一种用肿瘤靶向肽iRGD修饰的靶向脂质体递送系统(iRGD-STING-PFP@脂质体)的设计与开发。在低强度聚焦超声(LIFU)照射下,该脂质体系统利用声空化作用,即气体核在脂质体脂质双层的疏水区域形成并坍塌(形成瞬时孔),这导致药物释放显著增强。透射电子显微镜(TEM)用于研究靶向脂质体的物理化学性质。使用透析袋法评估包封率和体外释放情况,同时通过激光共聚焦显微镜评估iRGD对脂质体靶向性的影响。采用CCK-8法研究该系统对4T1乳腺癌细胞和人脐静脉内皮细胞(HUVEC)的毒性及细胞生长效应。建立皮下乳腺癌肿瘤模型以评估新开发脂质体的杀瘤效果和治疗机制。脂质体载体呈现规则形态,动态光散射(DLS)显示其粒径为232.16 ± 19.82 nm,并且对HUVEC和4T1细胞均显示低毒性。在装载STING后,该载体的包封率为41.82 ± 5.67%,在体外呈现缓释模式。靶向结果表明,iRGD修饰增强了该系统靶向4T1细胞的能力。在皮下乳腺癌小鼠模型中,iRGD-STING-PFP@脂质体组显示出显著的肿瘤生长抑制,有效激活了免疫系统,导致成熟树突状细胞的比例最高(71.2 ± 5.4%),增加了肿瘤相关抗原的呈递,促进了肿瘤部位CD8 + T细胞浸润,并增强了自然杀伤(NK)细胞活性。iRGD-STING-PFP@脂质体靶向给药系统有效地靶向乳腺癌细胞,为乳腺癌免疫治疗提供了一种新策略。这些发现表明,iRGD-STING-PFP@脂质体能够成功地将STING激动剂递送至肿瘤组织,触发先天免疫反应,并可能成为靶向免疫治疗的潜在平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ada/11545222/6f7a092af6af/cancers-16-03657-g001.jpg

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