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载光敏剂和有机染料的核壳聚合物纳米粒子,用于近红外和短波近红外荧光成像引导的光动力学治疗。

Core-shell polymeric nanoparticles co-loaded with photosensitizer and organic dye for photodynamic therapy guided by fluorescence imaging in near and short-wave infrared spectral regions.

机构信息

Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen, 518060, P. R. China.

Taras Shevchenko National University of Kyiv, Kyiv, 01601, Ukraine.

出版信息

J Nanobiotechnology. 2020 Jan 23;18(1):19. doi: 10.1186/s12951-020-0572-1.

Abstract

BACKGROUND

Biodistribution of photosensitizer (PS) in photodynamic therapy (PDT) can be assessed by fluorescence imaging that visualizes the accumulation of PS in malignant tissue prior to PDT. At the same time, excitation of the PS during an assessment of its biodistribution results in premature photobleaching and can cause toxicity to healthy tissues. Combination of PS with a separate fluorescent moiety, which can be excited apart from PS activation, provides a possibility for fluorescence imaging (FI) guided delivery of PS to cancer site, followed by PDT.

RESULTS

In this work, we report nanoformulations (NFs) of core-shell polymeric nanoparticles (NPs) co-loaded with PS [2-(1-hexyloxyethyl)-2-devinyl pyropheophorbide-a, HPPH] and near infrared fluorescent organic dyes (NIRFDs) that can be excited in the first or second near-infrared windows of tissue optical transparency (NIR-I, ~ 700-950 nm and NIR-II, ~ 1000-1350 nm), where HPPH does not absorb and emit. After addition to nanoparticle suspensions, PS and NIRFDs are entrapped by the nanoparticle shell of co-polymer of N-isopropylacrylamide and acrylamide [poly(NIPAM-co-AA)], while do not bind with the polystyrene (polySt) core alone. Loading of the NIRFD and PS to the NPs shell precludes aggregation of these hydrophobic molecules in water, preventing fluorescence quenching and reduction of singlet oxygen generation. Moreover, shift of the absorption of NIRFD to longer wavelengths was found to strongly reduce an efficiency of the electronic excitation energy transfer between PS and NIRFD, increasing the efficacy of PDT with PS-NIRFD combination. As a result, use of the NFs of PS and NIR-II NIRFD enables fluorescence imaging guided PDT, as it was shown by confocal microscopy and PDT of the cancer cells in vitro. In vivo studies with subcutaneously tumored mice demonstrated a possibility to image biodistribution of tumor targeted NFs both using HPPH fluorescence with conventional imaging camera sensitive in visible and NIR-I ranges (~ 400-750 nm) and imaging camera for short-wave infrared (SWIR) region (~ 1000-1700 nm), which was recently shown to be beneficial for in vivo optical imaging.

CONCLUSIONS

A combination of PS with fluorescence in visible and NIR-I spectral ranges and, NIR-II fluorescent dye allowed us to obtain PS nanoformulation promising for see-and-treat PDT guided with visible-NIR-SWIR fluorescence imaging.

摘要

背景

光动力疗法(PDT)中光敏剂(PS)的分布可以通过荧光成像来评估,该方法可以在 PDT 前可视化 PS 在恶性组织中的积累。同时,PS 在其分布评估过程中的激发会导致过早的光漂白,并可能对健康组织造成毒性。将 PS 与可以在 PS 激活之外被激发的单独荧光部分结合,为荧光成像(FI)引导 PS 递送到癌症部位,然后进行 PDT 提供了一种可能性。

结果

在这项工作中,我们报告了核壳聚合物纳米粒子(NPs)的纳米制剂(NFs),其共载有 PS [2-(1-己氧基乙基)-2-去乙烯基焦脱镁叶绿酸-a,HPPH]和近红外荧光有机染料(NIRFDs),可以在组织光学透明度的第一或第二近红外窗口(NIR-I,700-950nm 和 NIR-II,1000-1350nm)中被激发,而 HPPH 在此窗口不吸收和发射。加入纳米粒子悬浮液后,PS 和 NIRFD 被 N-异丙基丙烯酰胺和丙烯酰胺[共聚(NIPAM-co-AA)]的纳米粒子壳共包封,而与单独的聚苯乙烯(polySt)核不结合。NIRFD 和 PS 装载到 NPs 壳中可以防止这些疏水分子在水中聚集,从而防止荧光猝灭和单线态氧生成的减少。此外,发现 NIRFD 的吸收向长波长的移动强烈降低了 PS 和 NIRFD 之间的电子激发能量转移效率,从而提高了 PS-NIRFD 组合的 PDT 效果。结果,PS 和 NIR-II NIRFD 的 NF 的使用使得荧光成像引导 PDT 成为可能,正如体外癌细胞的共聚焦显微镜和 PDT 所证明的那样。在患有皮下肿瘤的小鼠体内研究中,证明了使用近红外-I 范围(400-750nm)内常规成像相机和近红外短波(SWIR)范围(1000-1700nm)内的成像相机对肿瘤靶向 NF 的生物分布进行成像的可能性,最近的研究表明,这对体内光学成像有益。

结论

PS 与可见光谱和 NIR-I 光谱范围内的荧光以及 NIR-II 荧光染料的结合,使我们获得了一种有前途的 PS 纳米制剂,可用于可见-NIR-SWIR 荧光成像引导的“看治一体”PDT。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f03/6979398/f01c75e8702d/12951_2020_572_Sch1_HTML.jpg

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