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首页> 外文期刊>ACS nano >A Combined Approach Employing Chlorotoxin-Nanovectors and Low Dose Radiation To Reach Infiltrating Tumor Niches in Glioblastoma
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A Combined Approach Employing Chlorotoxin-Nanovectors and Low Dose Radiation To Reach Infiltrating Tumor Niches in Glioblastoma

机译:利用氯毒素-纳米载体和低剂量放射治疗胶质母细胞瘤浸润性肿瘤的联合方法

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Glioblastoma multiforme (GBM) is the most aggressive form of glioma, with life expectancy of around 2 years after diagnosis, due to recidivism and to the blood-brain barrier (BBB) limiting the amount of drugs which reach the residual malignant cells, thus contributing to the failure of chemotherapies. To bypass the obstacles imposed by the BBB, we investigated the use of nanotechnologies combined with radiotherapy, as a potential therapeutic strategy for GBM. We used poly(lactic-co-glycolic add) (PLGA) nanoparticles (PNP) conjugated to chlorotoxin (CTX), a peptide reported to bind selectively to glioma cells. Silver nanoparticles were entrapped inside the functionalized nanoparticles (Ag-PNP-CTX), to allow detection and quantification of the cellular uptake by confocal microscopy, both in vitro and in vivo. In vitro experiments performed with different human glioblastoma cell lines showed higher cytoplasmic uptake of Ag-PNP-CTX, with respect to nonfunctionalized nanoparticles. In vivo experiments showed that Ag-NP-CTX efficiently targets the tumor, but are scarcely effective in crossing the blood brain barrier in the healthy brain, where dispersed metastatic cells are present. We show here that single whole brain X-ray irradiation, performed 20 h before nanoparticle injection, enhances the expression of the CTX targets, MMP-2 and ClC-3, and, through BBB permeabilization, potently increases the amount of internalized Ag-PNP-CTX even in dispersed cells, and generated an efficient antitumor synergistic effect able to inhibit in vivo tumor growth. Notably, the application of Ag-PNP-CTX to irradiated tumor cells decreases the extracellular activity of MMP-2. By targeting dispersed GBM cells and reducing MMP-2 activity, the combined use of CTX-nanovectors with radiotherapy may represent a promising therapeutic approach toward GBM.
机译:多形性胶质母细胞瘤(GBM)是胶质瘤的最具侵袭性形式,由于累犯和血脑屏障(BBB)限制了到达残留恶性细胞的药物数量,因此诊断后的预期寿命约为2年导致化疗失败。为了绕过BBB施加的障碍,我们研究了将纳米技术与放射疗法结合使用作为GBM的潜在治疗策略。我们使用与氯毒素(CTX)偶联的聚乳酸-乙醇酸(PLGA)纳米颗粒(PNP),据报道该肽选择性结合神经胶质瘤细胞。将银纳米颗粒包埋在功能化的纳米颗粒(Ag-PNP-CTX)中,以便通过共聚焦显微镜在体内和体外检测和定量细胞摄取。相对于未官能化的纳米粒子,用不同的人胶质母细胞瘤细胞系进行的体外实验显示,Ag-PNP-CTX的胞质吸收更高。体内实验表明,Ag-NP-CTX有效地靶向肿瘤,但在穿过分散的转移性细胞的健康大脑中,几乎不能有效跨越血脑屏障。我们在这里显示,在注射纳米粒子前20小时进行的全脑X射线辐射增强了CTX靶标,MMP-2和ClC-3的表达,并且通过BBB透化作用,有效地增加了内在化的Ag-PNP的量-CTX甚至可以分散在细胞中,并产生有效的抗肿瘤协同效应,能够抑制体内肿瘤的生长。值得注意的是,将Ag-PNP-CTX应用于辐射的肿瘤细胞会降低MMP-2的细胞外活性。通过靶向分散的GBM细胞并降低MMP-2活性,CTX纳米载体与放射疗法的联合使用可能代表了针对GBM的有前途的治疗方法。

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