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利用 EGFR 靶向纳米注射器将染料和药物递送至细胞内。

Transfer of Dyes and Drugs into Cells Using EGFR-Targeted Nanosyringes.

机构信息

Fannin Innovation Studio , 3900 Essex Lane, Suite 575, Houston, Texas 77027, United States.

Kenneth R. Peak Brain and Pituitary Tumor Center, Department of Neurosurgery, Houston Methodist Hospital , Houston, Texas 77030, United States.

出版信息

ACS Chem Neurosci. 2018 Jan 17;9(1):107-117. doi: 10.1021/acschemneuro.7b00138. Epub 2017 Aug 14.

DOI:10.1021/acschemneuro.7b00138
PMID:28753296
Abstract

Selective targeting of drug loaded nanovectors to specific epitopes highly expressed on the surface of cancer cells is a goal for nanotechnologists. We have modified our previously described PEGylated-hydrophilic carbon clusters (PEG-HCCs) so that the epidermal growth factor receptor (EGFR) binding peptide, GE11, is attached using click chemistry at the end of each PEG. The resulting nanosyringe, Pep-PEG-HCC, can be loaded with a wide range of hydrophobic drugs and dyes. We show that, both in vitro and in vivo, this payload can be delivered to cancer cells expressing EGFR. We can observe the activation of EGFR and track the normal physiological internalization and recycling/signaling pathways of this tyrosine kinase following binding of Pep-PEG-HCC. We also demonstrate the competitive binding of the nanosyringe to EGFR with its normal activator, EGF, as well as observing the colocalization of the nanosyringe with clathrin, the coated pit integral protein. The internalization of the drug/dye loaded nanosyringe can be inhibited by using anti-EGFR antibodies, the drug erlotinib, or Pitstop-1, the clathrin coated pit formation specific inhibitor. To further demonstrate the specificity of the drug loaded nanovectors, we demonstrated that, in both flank and intracranial xenograft mouse models, dye delivery is highly specific to tumors and no other tissues. Finally, using nanosyringes loaded with esterase sensitive fluorescein diacetate, we demonstrated that the drug payloads can be in vivo delivered to the cytosol of cancer cells within the mouse brain.

摘要

将载药纳米载体选择性靶向到癌细胞表面高度表达的特定表位是纳米技术人员的目标。我们已经对以前描述的聚乙二醇化亲水性碳簇 (PEG-HCC) 进行了修饰,使得表皮生长因子受体 (EGFR) 结合肽 GE11 通过点击化学连接在每个 PEG 的末端。由此产生的纳米注射器 Pep-PEG-HCC 可以装载广泛的疏水性药物和染料。我们表明,无论是在体外还是体内,这种有效载荷都可以递送到表达 EGFR 的癌细胞。我们可以观察到 EGFR 的激活,并跟踪 Pep-PEG-HCC 结合后该酪氨酸激酶的正常生理内化和再循环/信号转导途径。我们还证明了纳米注射器与正常激活剂 EGF 对 EGFR 的竞争性结合,以及观察到纳米注射器与网格蛋白的共定位,网格蛋白是包被陷窝的整合蛋白。用抗 EGFR 抗体、药物厄洛替尼或网格蛋白包被陷窝形成特异性抑制剂 Pitstop-1 可以抑制载药纳米注射器的内化。为了进一步证明载药纳米载体的特异性,我们证明了在侧翼和颅内异种移植小鼠模型中,染料的递送对肿瘤具有高度特异性,而对其他组织没有特异性。最后,我们使用载有酯酶敏感荧光素二乙酸酯的纳米注射器,证明了药物有效载荷可以在体内递送到小鼠大脑中癌细胞的细胞质中。

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PAM-OBG: A monoamine oxidase B specific prodrug that inhibits MGMT and generates DNA interstrand crosslinks, potentiating temozolomide and chemoradiation therapy in intracranial glioblastoma.
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Oncotarget. 2018 May 8;9(35):23923-23943. doi: 10.18632/oncotarget.25246.