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Photoacoustic Imaging of Human Mesenchymal Stem Cells Labeled with Prussian Blue–Poly( l -lysine) Nanocomplexes

普鲁士蓝 生物物理学 体内 间充质干细胞 化学 分子成像 纳米颗粒 干细胞 转染 光热治疗 材料科学 纳米技术 生物化学 细胞生物学 生物 物理化学 生物技术 基因 电化学 电极
作者
Taeho Kim,Jeanne E. Lemaster,Fang Chen,Jin Li,Jesse V. Jokerst
出处
期刊:ACS Nano [American Chemical Society]
卷期号:11 (9): 9022-9032 被引量:143
标识
DOI:10.1021/acsnano.7b03519
摘要

Acoustic imaging is affordable and accessible without ionizing radiation. Photoacoustic imaging increases the contrast of traditional ultrasound and can offer good spatial resolution when used at high frequencies with excellent temporal resolution. Prussian blue nanoparticles (PBNPs) are an emerging photoacoustic contrast agent with strong optical absorption in the near-infrared region. In this study, we developed a simple and efficient method to label human mesenchymal stem cells (hMSCs) with PBNPs and imaged them with photoacoustic imaging. First, PBNPs were synthesized by the reaction of FeCl 3 with K 4 [Fe(CN) 6 ] in the presence of citric acid and complexed with the cationic transfection agent poly- l -lysine (PLL). The PLL-coated PBNPs (PB–PLL nanocomplexes) have a maximum absorption peak at 715 nm and could efficiently label hMSCs. Cellular uptake of these nanocomplexes was studied using bright field, fluorescence, and transmission electron microscopy. The labeled stem cells were successfully differentiated into two downstream lineages of adipocytes and osteocytes, and they showed positive expression for surface markers of CD73, CD90, and CD105. No changes in viability or proliferation of the labeled cells were observed, and the secretome cytokine analysis indicated that the expression levels of 12 different proteins were not dysregulated by PBNP labeling. The optical properties of PBNPs were preserved postlabeling, suitable for the sensitive and quantitative detection of implanted cells. Labeled hMSCs exhibited strong photoacoustic contrast in vitro and in vivo when imaged at 730 nm, and the detection limit was 200 cells/μL in vivo . The photoacoustic signal increased as a function of cell concentration, indicating that the number of labeled cells can be quantified during and after cell transplantations. In hybrid ultrasound/photoacoustic imaging, this approach offers real-time and image-guided cellular injection even through an intact skull for brain intraparenchymal injections. Our labeling and imaging technique allowed the detection and monitoring of 5 × 10 4 mesenchymal stem cells in living mice over a period of 14 days.
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