用于透皮给药的水分散性和生物相容性聚合物基有机上转换纳米粒子。

IF 8.1 Q1 ENGINEERING, BIOMEDICAL Biomaterials research Pub Date : 2024-11-19 eCollection Date: 2024-01-01 DOI:10.34133/bmr.0106
Hye Eun Choi, Jeong-Min Park, Woo Yeup Jeong, Su Bin Lee, Jae-Hyuk Kim, Ki Su Kim
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引用次数: 0

摘要

利用光进行治疗的光子医学存在一些障碍,例如短波长光的组织穿透力有限,长波长光的深层组织功效不足。光子能量上转换(UC)可将低能量光子转换为高能量光子,因此在光医疗领域大有可为。人们对基于镧系元素(Ln)的无机 UC 系统进行了广泛的研究,但该系统面临着各种挑战,包括激发激光功率密度高、UC 量子效率低以及潜在的生物毒性。最近,一种基于有机物的三重-三重湮灭 UC(TTA-UC)系统因其在低功率激光激发下发射寿命长、UC 量子产率高而成为一种新型 UC 系统。在这项研究中,我们开发了载有 TTA-UC 发色团的水分散透明质酸(HA)共轭聚己内酯(PCL)纳米粒子(HA-PCL/UC NPs),通过将红光(635 nm)转化为蓝光(470 nm),实现更深层的组织穿透,从而实现无创透皮给药。HA-PCL/UC NPs 在蒸馏水中的量子产率高达 1.6%,改善了 HeLa 细胞的细胞成像,并能有效穿透猪皮肤深层组织,显示出上转换蓝光。我们的策略作为下一代无创光医学平台,在生物成像、光触发给药和光动力疗法方面具有巨大潜力,最终将推动有针对性的有效治疗干预。
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Water-Dispersible and Biocompatible Polymer-Based Organic Upconversion Nanoparticles for Transdermal Delivery.

Photomedicine, which utilizes light for therapeutic purposes, has several hurdles such as limited tissue penetration for short-wavelength light and inadequate deep tissue efficacy for long-wavelength light. Photon energy upconversion (UC) reveals promise in photomedicine because it enables the conversion of lower-energy photons into higher-energy photon. Lanthanide (Ln)-based inorganic UC system has been extensively studied but faces challenges, including high excitation laser power density, intrinsically subpar UC quantum efficiency, and potential biotoxicity. Recently, an organic-based triplet-triplet annihilation UC (TTA-UC) system has emerged as a novel UC system due to its prolonged emission lifetime upon low power laser excitation and exceptional UC quantum yield. In this study, we developed water-dispersible hyaluronic acid (HA)-conjugated polycaprolactone (PCL) nanoparticles loaded with TTA-UC chromophores (HA-PCL/UC NPs), which allow deeper tissue penetration by converting red light (635 nm) into blue light (470 nm) for noninvasive transdermal delivery. HA-PCL/UC NPs demonstrated a 1.6% high quantum yield in distilled water, improved cellular imaging in HeLa cells, and effectively penetrated the deep tissue of porcine skin, showing upconverted blue light. Our strategy holds significant potential as a next-generation noninvasive photomedicine platform for bioimaging, photo-triggered drug delivery, and photodynamic therapy, ultimately advancing targeted and effective therapeutic interventions.

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