CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Gene Reprogramming Armed Macrophage Membrane-Camouflaged Nanoplatform Enhances Bionic Targeted Drug Delivery to Solid Tumor for Synergistic Therapy.
Gene Reprogramming Armed Macrophage Membrane-Camouflaged Nanoplatform Enhances Bionic Targeted Drug Delivery to Solid Tumor for Synergistic Therapy.
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高效药物递送至实体瘤仍是一项挑战。HER2阳性(HER2+)肿瘤是一种侵袭性癌症亚型,具有治疗耐药性、高复发风险和不良预后。尽管纳米医学技术在肿瘤治疗中显示出明显优势,但其潜在的临床转化仍因递送效果和治疗疗效不理想而受阻。
在本研究中,基于聚乳酸-羟基乙酸共聚物(PLGA)纳米颗粒与工程化修饰巨噬细胞膜的共组装,开发了一种基因重编程巨噬细胞膜包裹的载药纳米平台,用于HER2+癌症治疗。在该纳米平台中,近红外(NIR)荧光染料ICG或化疗药物多柔比星(DOX)被装载到PLGA核心中,抗HER2亲和体稳定表达于巨噬细胞膜上。与采用常规巨噬细胞膜包覆的纳米颗粒相比,携带抗HER2亲和体的ICG/DOX@AMNP纳米颗粒在体外和体内均表现出优异的HER2靶向能力。小动物成像研究证实,ICG/DOX@AMNPs改善了药物递送的药代动力学,并在HER2+肿瘤中具有特异性分布。在机制上,与DOX@NPs或DOX@MNPs纳米颗粒相比,DOX@AMNPs通过诱导凋亡和阻断PI3K/AKT信号通路,对HER2+癌细胞或小鼠肿瘤生长表现出协同抑制作用。
总之,本研究提出了一种有前景的仿生纳米平台,用于将化疗药物高效靶向递送至HER2+肿瘤,展示了其在实体瘤治疗中的巨大潜力。
Efficient drug delivery to solid tumors remains a challenge. HER2-positive (HER2 + ) tumors are an aggressive cancer subtype with a resistance to therapy, high risk of relapse, and poor prognosis. Although nanomedicine technology shows obvious advantages in tumor treatment, its potential clinical translation is still impeded by the unsatisfactory delivery and therapeutic efficacy. In this study, a gene reprogramming macrophage membrane-encapsulated drug-loading nanoplatform was developed for HER2 + cancer therapy based on the co-assembly of poly (lactic-co-glycolic acid) (PLGA) nanoparticles and engineered modified macrophage membranes.
In this nanoplatform, near-infrared (NIR) fluorescent dye ICG or chemotherapeutic drug doxorubicin (DOX) was loaded into the PLGA cores, and an anti-HER2 affibody was stably expressed on the membrane of macrophages.
In comparison to the nanoparticles with conventional macrophage membrane coating, the ICG/DOX@AMNP nanoparticles armed with anti-HER2 affibody showed excellent HER2-targeting ability both in vitro and in vivo. Small animal imaging studies confirmed the improved pharmacokinetics of drug delivery and specific distribution of the ICG/DOX@AMNPs in HER2 + tumors.
Mechanistically, compared with DOX@NPs or DOX@MNPs nanoparticles, DOX@AMNPs exhibited synergistic inhibition of HER2 + cancer cells or mice tumor growth by inducing apoptosis and blocking the PI3K/AKT signaling pathway. Altogether, this study proposes a promising biomimetic nanoplatform for the efficient targeted delivery of chemotherapeutic agents to HER2 + tumors, demonstrating its great potential for solid tumor therapy.
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