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仿生纳米颗粒包被 ScFv 修饰的巨噬细胞膜用于 siRNA 递送以缓解肺癌脑转移

英文原题:Biomimetic nanoparticles coated with ScFv-modified macrophage membranes for siRNA delivery to relieve brain metastases of lung cancer.

PubMed 2025/09/02(内容时间) BMC Biotechnol Q2 · IF 4.8(JCR 2025)

研究概要

我们的研究结果表明,scFv-MML@LPCAT1si 代表了一种有前景的 NSCLC BM 靶向疗法,其利用 scFv-MML 的独特性质穿越 BBB,并以高精度和高效率将治疗载荷递送至肿瘤部位。

研究思路结论见上方概要

在中国,肺癌是癌症相关死亡的首要原因,常导致脑转移(BM),严重损害患者的生活质量并降低生存结局。血脑屏障(BBB)进一步增加了药物向脑部递送的难度。为解决这一问题,我们开发了EGFR单链可变区片段(scFv)修饰的巨噬细胞膜脂质体(scFv-MML),包裹LPCAT1 siRNA(scFv-MML@LPCAT1si),作为非小细胞肺癌(NSCLC)BM的靶向治疗。

将EGFR scFv-pcDNA3.1(-)质粒转染到RAW 264.7细胞中,以生成RAW 264.7-scFv细胞。从这些细胞中分离巨噬细胞膜,并通过挤出法用于包覆封装LPCAT1 siRNA的脂质体(Lip)。使用PC9肺癌细胞在体外评估scFv-MML@LPCAT1si的细胞摄取、LPCAT1沉默和抗肿瘤疗效。在NSCLC BM小鼠模型中进行体内研究,以评估肿瘤靶向、积累和治疗效果。

在体外,与对照脂质体相比,scFv-MML@LPCAT1si在EGFR阳性PC9细胞中表现出更优的细胞摄取和对LPCAT1表达的沉默,导致细胞凋亡增加和增殖减少。在体内,scFv-MML@LPCAT1si显示出改善的肿瘤靶向性和脑内蓄积,有效减缓了NSCLC BM小鼠的肿瘤生长并减少了体重下降。生物分布研究显示,注射后肿瘤荧光强度持续超过24 h,siRNA在肿瘤部位显著滞留。在接受scFv-MML@LPCAT1si治疗的小鼠中,未观察到明显的全身毒性或器官损伤。

展开英文摘要原文

BACKGROUND: In China, lung cancer stands as the leading cause of cancer-related deaths, often resulting in brain metastases (BM) that severely compromise patients' quality of life and reduce survival outcomes. The delivery of drugs to the brain is further complicated by the blood-brain barrier (BBB). To address this, we developed EGFR single-chain fragment variable (scFv)-modified macrophage membrane liposomes (scFv-MML) encapsulating LPCAT1 siRNA (scFv-MML@LPCAT1si) as a targeted therapy for non-small cell lung cancer (NSCLC) BM. METHODS: EGFR scFv-pcDNA3.1(-) plasmids were transfected into RAW 264.7 cells to generate RAW 264.7-scFv cells. Macrophage membranes were isolated from these cells and used to coat liposomes (Lip) encapsulating LPCAT1 siRNA via extrusion. The cellular uptake, LPCAT1 silencing, and anti-tumor efficacy of scFv-MML@LPCAT1si were evaluated in vitro using PC9 lung cancer cells. In vivo studies were performed in a mouse model of NSCLC BM to assess tumor targeting, accumulation, and therapeutic effects. RESULTS: In vitro, scFv-MML@LPCAT1si exhibited superior cellular uptake and silencing of LPCAT1 expression in EGFR-positive PC9 cells compared to control liposomes, leading to increased cell apoptosis and decreased proliferation. In vivo, scFv-MML@LPCAT1si showed improved tumor targeting and accumulation in the brain, effectively slowing tumor growth and reducing body weight loss in mice with NSCLC BM. The biodistribution study revealed sustained tumor fluorescence intensity for more than 24 h after injection, with significant retention of siRNA within the tumor site. No significant systemic toxicity or organ damage was observed in mice treated with scFv-MML@LPCAT1si. CONCLUSIONS: Our findings suggest that scFv-MML@LPCAT1si represents a promising targeted therapy for NSCLC BM, leveraging the unique properties of scFv-MML to traverse the BBB and deliver therapeutic payloads to tumor sites with high accuracy and efficiency.

论文信息

作者
Lu Y、Qiao Y、Wu T、Zhang Y、Shi J、Jiang J
第一作者单位
Department of Respiratory and Critical Care Medicine, Zhongda Hospital, Southeast University, Nanjing, China. lulu2023@126.com.China
通讯作者单位
Department of Health Service, Base of Health Service, Air Force Medical University, Xi'an, China. jiangjun@fmmu.edu.cn.China
期刊
BMC biotechnology2025 Sep 2
原文标识
PubMed 40898177 · DOI 10.1186/s12896-025-01000-5