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

Masakazu Umezawa, Yuichi Ueya, Kotoe Ichihashi, Doan Thi Kim Dung, Kohei Soga
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Abstract

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.

Abstract Image

Abstract Image

Abstract Image

控制用于体内成像的核-壳纳米颗粒疏水核中的分子染料包封。
具有疏水核的聚合物纳米颗粒是一种有价值的生物医学材料,在体内成像和药物递送方面具有潜在的应用前景。这些材料能够有效地保护脆弱分子,使其能够在亲水性生理环境中发挥作用;然而,缺乏能够调节聚合物的化学组成和分子量,形成纳米颗粒来控制功能分子的策略。在这篇文章中,我们回顾了设计核壳纳米颗粒的策略,这些策略能够有效稳定地封装生物医学应用中的功能分子。IR-1061,其响应于微环境而改变其光学性质,可用于体外筛选聚合物纳米颗粒的体内稳定性。可以通过将IR-1061包膜聚合物纳米颗粒分散在水、盐水、缓冲溶液、蛋白质水溶液等中并测量吸收光谱变化来进行体外筛选测试。通过筛选,揭示了由聚合物纳米颗粒组成的聚合物的极性、分子量和手性结构对其稳定性的影响。基于本文的发现,预计将开发出更多有效应用各种生物分子和具有复杂高维结构的大分子的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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