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纳米颗粒诱导的人前列腺癌血管阻断。

Nanoparticle-induced vascular blockade in human prostate cancer.

机构信息

Vascular Mapping Laboratory, Center for Nanomedicine, Sanford-Burnham Medical Research Institute at the University of California at Santa Barbara (UCSB), Santa Barbara, CA, USA.

出版信息

Blood. 2010 Oct 14;116(15):2847-56. doi: 10.1182/blood-2010-03-274258. Epub 2010 Jun 29.

Abstract

The tumor-homing pentapeptide CREKA (Cys-Arg-Glu-Lys-Ala) specifically homes to tumors by binding to fibrin and fibrin-associated clotted plasma proteins in tumor vessels. Previous results show that CREKA-coated superparamagnetic iron oxide particles can cause additional clotting in tumor vessels, which creates more binding sites for the peptide. We have used this self-amplifying homing system to develop theranostic nanoparticles that simultaneously serve as an imaging agent and inhibit tumor growth by obstructing tumor circulation through blood clotting. The CREKA nanoparticles were combined with nanoparticles coated with another tumor-homing peptide, CRKDKC, and nanoparticles with an elongated shape (nanoworms) were used for improved binding efficacy. The efficacy of the CREKA peptide was then increased by replacing some residues with nonproteinogenic counterparts, which increased the stability of the peptide in the circulation. Treatment of mice bearing orthotopic human prostate cancer tumors with the targeted nanoworms caused extensive clotting in tumor vessels, whereas no clotting was observed in the vessels of normal tissues. Optical and magnetic resonance imaging confirmed tumor-specific targeting of the nanoworms, and ultrasound imaging showed reduced blood flow in tumor vessels. Treatment of mice with prostate cancer with multiple doses of the nanoworms induced tumor necrosis and a highly significant reduction in tumor growth.

摘要

肿瘤归巢五肽 CREKA(半胱氨酸-精氨酸-谷氨酸-赖氨酸-丙氨酸)通过与纤维蛋白和纤维蛋白相关的凝固血浆蛋白结合,特异性地归巢到肿瘤。先前的结果表明,CREKA 涂层超顺磁性氧化铁颗粒可导致肿瘤血管内发生额外的凝血,从而为该肽创造更多的结合位点。我们已经使用这种自我放大的归巢系统开发了治疗诊断纳米粒子,这些纳米粒子同时作为成像剂,通过血凝块阻塞肿瘤循环来抑制肿瘤生长。将 CREKA 纳米粒子与另一种肿瘤归巢肽 CRKDKC 涂层的纳米粒子以及具有拉长形状的纳米粒子(纳米蠕虫)结合使用,以提高结合效率。然后通过用非蛋白质对应物替代一些残基来增加 CREKA 肽的功效,从而增加肽在循环中的稳定性。用靶向纳米蠕虫治疗携带原位人前列腺癌肿瘤的小鼠会导致肿瘤血管内广泛凝血,而正常组织的血管中则没有观察到凝血。光学和磁共振成像证实了纳米蠕虫对肿瘤的特异性靶向,超声成像显示肿瘤血管中的血流减少。用纳米蠕虫多次治疗患有前列腺癌的小鼠会诱导肿瘤坏死,并显著降低肿瘤生长。

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