Suppr超能文献

癌症的纳米医学:用于药物递送和监测的基于脂质的纳米结构。

Nanomedicine for cancer: lipid-based nanostructures for drug delivery and monitoring.

机构信息

Institute of Clinical Medicine and Research, The Jikei University School of Medicine, 163-1 Kashiwa-shita, Kashiwa, Chiba, 277-8567, Japan.

出版信息

Acc Chem Res. 2011 Oct 18;44(10):1080-93. doi: 10.1021/ar200011r. Epub 2011 Jul 26.

Abstract

Recent advances in nanotechnology, materials science, and biotechnology have led to innovations in the field of nanomedicine. Improvements in the diagnosis and treatment of cancer are urgently needed, and it may now be possible to achieve marked improvements in both of these areas using nanomedicine. Lipid-coated nanoparticles containing diagnostic or therapeutic agents have been developed and studied for biomedical applications and provide a nanomedicine strategy with great potential. Lipid nanoparticles have cationic headgroups on their surfaces that bind anionic nucleic acids and contain hydrophobic drugs at the lipid membrane and hydrophilic drugs inside the hollow space in the interior. Moreover, researchers can design nanoparticles to work in combination with external stimuli such as magnetic field, light, and ionizing radiation, which adds further utility in biomedical applications. In this Account, we review several examples of lipid-based nanoparticles and describe their potential for cancer treatment and diagnosis. (1) The development of a lipid-based nanoparticle that included a promoter-enhancer and transcriptional activator greatly improved gene therapy. (2) The addition of a radiosensitive promoter to lipid nanoparticles was sufficient to confer radioisotope-activated expression of the genes delivered by the nanoparticles. (3) We successfully tailored lipid nanoparticle composition to increase gene transduction in scirrhous gastric cancer cells. (4) When lipophilic photosensitizing molecules were incorporated into lipid nanoparticles, those particles showed an increased photodynamic cytotoxic effect on the target cancer. (5) Coating an Fe(3)O(4) nanocrystal with lipids proved to be an efficient strategy for magnetically guided gene-silencing in tumor tissues. (6) An Fe(16)N(2)/lipid nanocomposite displayed effective magnetism and gene delivery in cancer cells. (7) Lipid-coated magnetic hollow capsules carried aqueous anticancer drugs and delivered them in response to a magnetic field. (8) Fluorescent lipid-coated and antibody-conjugated magnetic nanoparticles detected cancer-associated antigen in a microfluidic channel. We believe that the continuing development of lipid-based nanomedicine will lead to the sensitive minimally invasive treatment of cancer. Moreover, the fusion of different scientific fields is accelerating these developments, and we expect these interdisciplinary efforts to have considerable ripple effects on various fields of research.

摘要

近年来,纳米技术、材料科学和生物技术的进步推动了纳米医学领域的创新。癌症的诊断和治疗急需改进,而现在使用纳米医学可能在这两个领域都取得显著的改善。已经开发并研究了含有诊断或治疗剂的脂质包覆纳米粒子,用于生物医学应用,并为纳米医学策略提供了巨大的潜力。脂质纳米粒子的表面具有阳离子头基,可与阴离子核酸结合,脂质膜内含有疏水性药物,内部中空空间内含有亲水性药物。此外,研究人员可以设计纳米粒子与外部刺激(如磁场、光和电离辐射)联合作用,这在生物医学应用中增加了更多的实用性。在本说明中,我们回顾了几种基于脂质的纳米粒子的例子,并描述了它们在癌症治疗和诊断方面的潜力。(1) 开发了一种包含启动子增强子和转录激活子的基于脂质的纳米粒子,极大地改善了基因治疗。(2) 将放射敏化启动子添加到脂质纳米粒子中足以赋予由纳米粒子递送的基因的放射性同位素激活表达。(3) 我们成功地调整了脂质纳米粒子的组成,以增加在硬癌胃癌细胞中的基因转导。(4) 当亲脂性光致敏分子被整合到脂质纳米粒子中时,这些粒子对靶癌细胞表现出增加的光动力细胞毒性作用。(5) 用脂质包覆 Fe(3)O(4)纳米晶被证明是在肿瘤组织中进行磁性引导基因沉默的有效策略。(6) Fe(16)N(2)/脂质纳米复合材料在癌细胞中表现出有效的磁性和基因递送。(7) 脂质包覆的磁性空心胶囊携带水性抗癌药物,并在磁场的作用下进行递送。(8) 荧光脂质包覆和抗体偶联的磁性纳米粒子在微流控通道中检测到癌症相关抗原。我们相信,基于脂质的纳米医学的持续发展将导致对癌症的敏感微创治疗。此外,不同科学领域的融合正在加速这些发展,我们预计这些跨学科的努力将对各个研究领域产生相当大的连锁反应。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验