Controlling Molecular Dye Encapsulation in the Hydrophobic Core of Core–Shell Nanoparticles for In Vivo Imaging

被引:3
作者
Masakazu Umezawa
Yuichi Ueya
Kotoe Ichihashi
Doan Thi Kim Dung
Kohei Soga
机构
[1] Department of Materials Science and Technology, Faculty of Advanced Engineering, Tokyo University of Science, 6-3-1 Niijuku, Tokyo, Katsushika
[2] Tsukuba Research Laboratories, JSR Corporation, 25 Miyukigaoka, Ibaraki, Tsukuba
来源
Biomedical Materials & Devices | 2023年 / 1卷 / 2期
基金
日本学术振兴会;
关键词
Near-infrared; Polarity; Polymeric nanoparticles; Second biological window; Stability;
D O I
10.1007/s44174-023-00073-0
中图分类号
学科分类号
摘要
Polymeric nanoparticles with a hydrophobic core are valuable biomedical materials with potential applications in in vivo imaging and drug delivery. These materials are effective at protecting vulnerable molecules, enabling them to serve their functions in hydrophilic physiological environments; however, strategies that allow the chemical composition and molecular weight of polymers to be tuned, forming nanoparticles to control the functional molecules, are lacking. In this article, we review strategies for designing core–shell nanoparticles that enable the effective and stable encapsulation of functional molecules for biomedical applications. IR-1061, which changes its optical properties in response to the microenvironment are useful for in vitro screening of the in vivo stability of polymeric nanoparticles. An in vitro screening test can be performed by dispersing IR-1061-encapsulated polymer nanoparticles in water, saline, buffer solution, aqueous protein solution, etc., and measuring the absorption spectral changes. Through the screening, the effects of the polarity, molecular weight, and the chiral structure of polymers consisting of polymer nanoparticles on their stability have been revealed. Based on the findings presented here, more methodologies for the effective application of various biomolecules and macromolecules with complex high-dimensional structures are expected to be developed. © The Author(s) 2023.
引用
收藏
页码:605 / 617
页数:12
相关论文
共 114 条
[1]  
Riediker M., Et al., Particle toxicology and health—where are we?, Part. Fibre Toxicol, 16, (2019)
[2]  
Mitchell M.J., Et al., Engineering precision nanoparticles for drug delivery, Nat. Rev. Drug Deliv, 20, pp. 101-124, (2021)
[3]  
Ahmed Z., Et al., Polymeric micelles as drug delivery vehicles, RSC Adv, 4, pp. 17028-17038, (2014)
[4]  
Din F.U., Et al., Effective use of nanocarriers as drug delivery systems for the treatment of selected tumors, Int. J. Nanomed, 12, pp. 7291-7309, (2017)
[5]  
Hamaguchi T., Et al., NK105, a paclitaxel-incorporating micellar nanoparticle formulation, can extend in vivo antitumour activity and reduce the neurotoxicity of paclitaxel, Br. J. Cancer, 92, pp. 1240-1246, (2005)
[6]  
Fujiwara Y., Et al., A multi-national, randomised, open-label, parallel, phase III non-inferiority study comparing NK105 and paclitaxel in metastatic or recurrent breast cancer patients, Br. J. Cancer, 120, pp. 475-480, (2019)
[7]  
Hou X., Et al., Lipid nanoparticles for mRNA delivery, Nat. Rev. Mater, 6, pp. 1078-1094, (2021)
[8]  
Schoenmaker L., Et al., mRNA-lipid nanoparticle COVID-19 vaccines: Structure and stability, Int. J. Pharm, 601, (2021)
[9]  
Reisch A., Klymchenko A.S., Fluorescent polymer nanoparticles based on dyes: seeking brighter tools for bioimaging, Small, 12, pp. 1968-1992, (2016)
[10]  
Lim E.K., Et al., Nanomaterials for theranostics: recent advances and future challenges, Chem. Rev, 115, pp. 327-394, (2015)