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Biocompatible Iron Oxide Nanoring-Labeled Mesenchymal Stem Cells: An Innovative Magnetothermal Approach for Cell Tracking and Targeted Stroke Therapy

间充质干细胞 磁共振成像 干细胞 纳米环 体内 内吞作用 材料科学 生物医学工程 氧化铁纳米粒子 纳米技术 细胞疗法 干细胞疗法 外体 细胞 细胞生物学 医学 纳米颗粒 化学 微泡 生物 生物技术 放射科 生物化学 基因 小RNA
作者
Hanrui Liu,Ran Sun,Lei Wang,Xiaoyong Chen,Galong Li,Yu Cheng,Gaohong Zhai,Boon‐Huat Bay,Fang Yang,Ning Gu,Yingkun Guo,Haiming Fan
出处
期刊:ACS Nano [American Chemical Society]
卷期号:16 (11): 18806-18821 被引量:24
标识
DOI:10.1021/acsnano.2c07581
摘要

Labeling stem cells with magnetic nanoparticles is a promising technique for in vivo tracking and magnetic targeting of transplanted stem cells, which is critical for improving the therapeutic efficacy of cell therapy. However, conventional endocytic labeling with relatively poor labeling efficiency and a short labeling lifetime has hindered the implementation of these innovative enhancements in stem-cell-mediated regenerative medicine. Herein, we describe an advanced magnetothermal approach to label mesenchymal stem cells (MSCs) efficiently by local induction of heat-enhanced membrane permeability for magnetic resonance imaging (MRI) tracking and targeted therapy of stroke, where biocompatible γ-phase, ferrimagnetic vortex-domain iron oxide nanorings (γ-FVIOs) with superior magnetoresponsive properties were used as a tracer. This approach facilitates a safe and efficient labeling of γ-FVIOs as high as 150 pg of Fe per cell without affecting the MSCs proliferation and differentiation, which is 3.44-fold higher than that by endocytosis labeling. Such a high labeling efficiency not only enables the ultrasensitive magnetic resonance imaging (MRI) detection of sub-10 cells and long-term tracking of transplanted MSCs over 10 weeks but also endows transplanted MSCs with a magnetic manipulation ability in vivo. A proof-of-concept study using a rat stroke model showed that the labeled MSCs facilitated MRI tracking and magnetic targeting for efficient replacement therapy with a significantly reduced dosage of 5 × 104 transplanted cells. The findings in this study have demonstrated the great potential of the magnetothermal approach as an efficient labeling technique for future clinical usage.
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