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纳米囊泡化和聚乙二醇化对健康小鼠体内吲哚菁绿分布的影响:定量荧光成像及器官分析。

Effects of nanoencapsulation and PEGylation on biodistribution of indocyanine green in healthy mice: quantitative fluorescence imaging and analysis of organs.

机构信息

Department of Bioengineering, University of California, Riverside, CA 92521, USA.

出版信息

Int J Nanomedicine. 2013;8:1609-20. doi: 10.2147/IJN.S42511. Epub 2013 Apr 22.

Abstract

Near-infrared nanoconstructs present a potentially effective platform for site-specific and deep tissue optical imaging and phototherapy. We have engineered a polymeric nanocapsule composed of polyallylamine hydrochloride (PAH) chains cross-linked with sodium phosphate and doped with indocyanine green (ICG) toward such endeavors. The ICG-doped nanocapsules were coated covalently with polyethylene glycol (5000 daltons) through reductive amination. We administrated the constructs by tail vein injection to healthy mice. To characterize the biodistribution of the constructs, we performed in vivo quantitative fluorescence imaging and subsequently analyzed the various extracted organs. Our results suggest that encapsulation of ICG in these PEGylated constructs is an effective approach to prolong the circulation time of ICG and delay its hepatic accumulation. Increased bioavailability of ICG, due to encapsulation, offers the potential of extending the clinical applications of ICG, which are currently limited due to rapid elimination of ICG from the vasculature. Our results also indicate that PAH and ICG-doped nanocapsules (ICG-NCs) are not cytotoxic at the levels used in this study.

摘要

近红外纳米结构为特定部位和深层组织的光学成像和光疗提供了一个潜在有效的平台。我们设计了一种由聚烯丙胺盐酸盐(PAH)链交联的磷酸钠和吲哚菁绿(ICG)掺杂而成的聚合物纳米胶囊,以实现这一目标。通过还原胺化,将 ICG 掺杂的纳米胶囊共价包覆在聚乙二醇(5000 道尔顿)上。我们通过尾静脉注射将这些构建体给药给健康小鼠。为了表征构建体的生物分布,我们进行了体内定量荧光成像,随后分析了各种提取的器官。我们的结果表明,将 ICG 封装在这些 PEG 化的构建体中是一种有效的方法,可以延长 ICG 的循环时间并延缓其在肝脏中的积累。由于封装,ICG 的生物利用度增加,为延长 ICG 的临床应用提供了潜力,目前由于 ICG 从血管中迅速消除,限制了 ICG 的临床应用。我们的结果还表明,在本研究中使用的水平上,PAH 和 ICG 掺杂的纳米胶囊(ICG-NCs)没有细胞毒性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa8f/3635661/69bf8b875c09/ijn-8-1609Fig1.jpg

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