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Cellular uptake and nanoscale localization of gold nanoparticles in cancer using label-free confocal Raman microscopy.使用无标记共聚焦拉曼显微镜研究金纳米颗粒在癌症中的细胞摄取和纳米级定位。
Mol Pharm. 2011 Feb 7;8(1):176-84. doi: 10.1021/mp1002587. Epub 2010 Dec 3.
2
Single-wall carbon nanotubes assisted photothermal cancer therapy: animal study with a murine model of squamous cell carcinoma.单壁碳纳米管辅助光热癌症治疗:鳞状细胞癌小鼠模型的动物研究
Lasers Surg Med. 2010 Nov;42(9):638-48. doi: 10.1002/lsm.20968.
3
A chelator-free multifunctional [64Cu]CuS nanoparticle platform for simultaneous micro-PET/CT imaging and photothermal ablation therapy.一种无螯合剂的多功能 [64Cu]CuS 纳米颗粒平台,可用于同时进行 micro-PET/CT 成像和光热消融治疗。
J Am Chem Soc. 2010 Nov 3;132(43):15351-8. doi: 10.1021/ja106855m.
4
Pre-conditioning cryosurgery: cellular and molecular mechanisms and dynamics of TNF-α enhanced cryotherapy in an in vivo prostate cancer model system.预处理冷冻手术:TNF-α增强冷冻疗法在体内前列腺癌模型系统中的细胞和分子机制及动力学。
Cryobiology. 2010 Dec;61(3):280-8. doi: 10.1016/j.cryobiol.2010.09.006. Epub 2010 Oct 20.
5
Phase I and pharmacokinetic studies of CYT-6091, a novel PEGylated colloidal gold-rhTNF nanomedicine.新型聚乙二醇化胶体金-rhTNF 纳米药物 CYT-6091 的 I 期和药代动力学研究。
Clin Cancer Res. 2010 Dec 15;16(24):6139-49. doi: 10.1158/1078-0432.CCR-10-0978. Epub 2010 Sep 27.
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Nanoparticle-based theranostic agents.基于纳米粒子的治疗诊断一体化试剂。
Adv Drug Deliv Rev. 2010 Aug 30;62(11):1064-79. doi: 10.1016/j.addr.2010.07.009. Epub 2010 Aug 4.
7
The polarization of immune cells in the tumour environment by TGFbeta.肿瘤微环境中 TGFβ对免疫细胞的极化作用。
Nat Rev Immunol. 2010 Aug;10(8):554-67. doi: 10.1038/nri2808. Epub 2010 Jul 9.
8
Strategies in the design of nanoparticles for therapeutic applications.用于治疗应用的纳米粒子设计策略。
Nat Rev Drug Discov. 2010 Aug;9(8):615-27. doi: 10.1038/nrd2591. Epub 2010 Jul 9.
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The unique characteristics of tumor vasculature and preclinical evidence for its selective disruption by Tumor-Vascular Disrupting Agents.肿瘤血管的独特特征及其被肿瘤血管破坏剂选择性破坏的临床前证据。
Cancer Treat Rev. 2011 Feb;37(1):63-74. doi: 10.1016/j.ctrv.2010.05.001. Epub 2010 Jun 8.
10
Combination strategies for enhancing the efficacy of immunotherapy in cancer patients.联合策略增强癌症患者免疫疗法的疗效。
Ann N Y Acad Sci. 2010 Apr;1194:169-78. doi: 10.1111/j.1749-6632.2010.05464.x.

纳米颗粒预处理增强癌症热疗。

Nanoparticle preconditioning for enhanced thermal therapies in cancer.

机构信息

University of Minnesota, Minneapolis, MN 55455, USA.

出版信息

Nanomedicine (Lond). 2011 Apr;6(3):545-63. doi: 10.2217/nnm.10.153.

DOI:10.2217/nnm.10.153
PMID:21542691
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3096482/
Abstract

Nanoparticles show tremendous promise in the safe and effective delivery of molecular adjuvants to enhance local cancer therapy. One important form of local cancer treatment that suffers from local recurrence and distant metastases is thermal therapy. In this article, we review a new concept involving the use of nanoparticle-delivered adjuvants to 'precondition' or alter the vascular and immunological biology of the tumor to enhance its susceptibility to thermal therapy. To this end, a number of opportunities to combine nanoparticles with vascular and immunologically active agents are reviewed. One specific example of preconditioning involves a gold nanoparticle tagged with a vascular targeting agent (i.e., TNF-α). This nanoparticle embodiment demonstrates preconditioning through a dramatic reduction in tumor blood flow and induction of vascular damage, which recruits a strong and sustained inflammatory infiltrate in the tumor. The ability of this nanoparticle preconditioning to enhance subsequent heat or cold thermal therapy in a variety of tumor models is reviewed. Finally, the potential for future clinical imaging to judge the extent of preconditioning and thus the optimal timing and extent of combinatorial thermal therapy is discussed.

摘要

纳米粒子在安全有效地将分子佐剂递送至增强局部癌症治疗方面显示出巨大的潜力。一种重要的局部癌症治疗形式是热疗,但这种治疗形式存在局部复发和远处转移的问题。本文综述了一种新的概念,即使用纳米颗粒递送来的佐剂来“预处理”或改变肿瘤的血管和免疫生物学特性,以提高其对热疗的敏感性。为此,我们综述了将纳米颗粒与血管和免疫活性药物结合的多种机会。预处理的一个具体例子涉及一种标记有血管靶向剂(即 TNF-α)的金纳米颗粒。这种纳米颗粒通过显著降低肿瘤血流和诱导血管损伤来实现预处理,从而在肿瘤中募集强烈而持久的炎症浸润。我们综述了这种纳米颗粒预处理增强各种肿瘤模型中随后的热或冷热疗的能力。最后,讨论了未来临床成像来判断预处理的程度,从而判断组合热疗的最佳时机和程度的潜力。