Core–shell upconversion nanoparticles with suitable surface modification to overcome endothelial barrier

IF 5.5 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Nanoscale Research Letters Pub Date : 2024-11-12 DOI:10.1186/s11671-024-04139-w
Chao Lu, Jianying Ouyang, Jin Zhang
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引用次数: 0

Abstract

Upconversion nanoparticles (UCNPs), capable of converting near-infrared (NIR) light into high-energy emission, hold significant promise for bioimaging applications. However, the presence of tissue barriers poses a challenge to the effective delivery of nanoparticles (NPs) to target organs. In this study, we demonstrate the core–shell UCNPs modified with cationic biopolymer, i.e., N, N-trimethyl chitosan (TMC), can overcome endothelial barriers. The core–shell UCNP is composed of NaGdF4: Yb3+,Tm3+ (16.7 ± 2.7 nm) as core materials and silica (SiO2) shell. The average particle size of UCNPs@SiO2 is estimated at 26.1 ± 3.7 nm. X-ray diffraction (XRD), transmission electron microscopy (TEM) and element mapping shows the formation of hexagonal crystal structure of β-NaGdF4 and elements doping. The surface of UCNPs@SiO2 has been modified with poly(ethylene glycol) (PEG) to enhance water dispersibility and colloidal stability, and further modified with TMC with the zeta potential increasing from -2.1 ± 0.96 mV to 26.9 ± 12.6 mV. No significant toxic effect is imposed to HUVECs when the cells are treated with core–shell UCNPs with surface modification up to 250 µg/mL. The transport ability of the core–shell UCNPs has been evaluated by using the in vitro endothelial barrier model. Transepithelial electrical resistance (TEER) and immunofluorescence staining of tight junction proteins have been employed to verify the integrity of the in vitro endothelial barrier model. The results indicate that the transport percentage of the UCNPs@SiO2 with PEG and TMC through the model is up to 4.56%, which is twice higher than that of the UCNPs@SiO2 with PEG but without TMC and six times that of the UCNPs@SiO2.

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经适当表面修饰的核壳上转换纳米粒子可克服内皮屏障
上转换纳米粒子(UCNPs)能够将近红外(NIR)光转换为高能量发射,在生物成像应用中大有可为。然而,组织屏障的存在对纳米粒子(NPs)有效输送到目标器官构成了挑战。在这项研究中,我们证明了用阳离子生物聚合物(即 N,N-三甲基壳聚糖(TMC))修饰的核壳 UCNPs 可以克服内皮屏障。核壳 UCNP 由 NaGdF4: Yb3+,Tm3+(16.7 ± 2.7 nm)作为核心材料,二氧化硅(SiO2)作为外壳。UCNPs@SiO2 的平均粒径估计为 26.1 ± 3.7 nm。X 射线衍射(XRD)、透射电子显微镜(TEM)和元素图谱显示,β-NaGdF4 形成了六方晶体结构并掺杂了元素。聚乙二醇(PEG)对 UCNPs@SiO2 的表面进行了改性,以提高其水分散性和胶体稳定性,TMC 对其表面进行了进一步改性,Zeta 电位从 -2.1 ± 0.96 mV 上升到 26.9 ± 12.6 mV。用表面改性的核壳 UCNPs 处理 HUVEC 细胞时,不会对细胞产生明显的毒性影响,最高可达 250 µg/mL。利用体外内皮屏障模型评估了核壳 UCNPs 的运输能力。采用跨上皮电阻(TEER)和紧密连接蛋白免疫荧光染色来验证体外内皮屏障模型的完整性。结果表明,含有 PEG 和 TMC 的 UCNPs@SiO2 通过模型的转运率高达 4.56%,是含有 PEG 但不含 TMC 的 UCNPs@SiO2 的两倍,是 UCNPs@SiO2 的六倍。
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来源期刊
Nanoscale Research Letters
Nanoscale Research Letters 工程技术-材料科学:综合
CiteScore
11.30
自引率
0.00%
发文量
110
审稿时长
48 days
期刊介绍: Nanoscale Research Letters (NRL) provides an interdisciplinary forum for communication of scientific and technological advances in the creation and use of objects at the nanometer scale. NRL is the first nanotechnology journal from a major publisher to be published with Open Access.
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