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两亲性聚乙烯亚胺衍生物平台中的量子点用于细胞标记、靶向、基因传递和比率型氧传感。

Quantum Dots in an Amphiphilic Polyethyleneimine Derivative Platform for Cellular Labeling, Targeting, Gene Delivery, and Ratiometric Oxygen Sensing.

机构信息

∥Materials Architecturing Research Center, Korea Institute of Science and Technology, Hwarangno 14-gil 5, Seongbuk-gu, Seoul 136-791, South Korea.

出版信息

ACS Nano. 2015 Jun 23;9(6):6511-21. doi: 10.1021/acsnano.5b02357. Epub 2015 Jun 9.

DOI:10.1021/acsnano.5b02357
PMID:26057729
Abstract

Amphiphilic polyethyleneimine derivatives (amPEIs) were synthesized and used to encapsulate dozens of quantum dots (QDs). The QD-amPEI composite was ∼100 nm in hydrodynamic diameter and had the slightly positive outer surface that suited well for cellular internalization. The QD-amPEI showed very efficient QD cellular labeling with the labeled cell fluorescence intensity more than 10 times higher than conventional techniques such as Lipofectamine-assisted QD delivery. QD-amPEI was optimal for maximal intracellular QD delivery by the large QD payload and the rapid endocytosis kinetics. QD-amPEI platform technology was demonstrated for gene delivery, cell-specific labeling, and ratiometric oxygen sensing. Our QD-amPEI platform has two partitions: positive outer surface and hydrophobic inside pocket. The outer positive surface was further exploited for gene delivery and targeting. Co-delivery of QDs and GFP silencing RNAs was successfully demonstrated by assembling siRNAs to the outer surfaces, which showed the transfection efficiency an order of magnitude higher than conventional gene transfections. Hyaluronic acids were tethered onto the QD-amPEI for cell-specific targeted labeling which showed the specific-to-nonspecific signal ratio over 100. The inside hydrophobic compartment was further applied for cohosting oxygen sensing phosphorescence Ru dyes along with QDs. The QD-Ru-amPEI oxygen probe showed accurate and reversible oxygen sensing capability by the ratiometric photoluminescence signals, which was successfully applied to cellular and spheroid models.

摘要

两亲性聚乙烯亚胺衍生物(amPEIs)被合成并用于包裹数十个量子点(QDs)。QD-amPEI 复合物的水动力直径约为 100nm,具有略微正的外表面,非常适合细胞内化。QD-amPEI 对细胞进行 QD 标记的效率非常高,标记细胞的荧光强度比传统技术(如脂质体辅助 QD 递送)高 10 多倍。QD-amPEI 通过大的 QD 有效负载和快速的内吞作用动力学,实现了最大的细胞内 QD 传递。QD-amPEI 平台技术已用于基因传递、细胞特异性标记和比率氧传感。我们的 QD-amPEI 平台有两个分区:正外表面和疏水内部口袋。正外表面进一步用于基因传递和靶向。通过将 siRNA 组装到外表面上,成功地实现了 QD 和 GFP 沉默 RNA 的共递送,其转染效率比传统的基因转染高一个数量级。将透明质酸连接到 QD-amPEI 上,用于细胞特异性靶向标记,其特异性与非特异性信号比超过 100。内部疏水隔室进一步用于共容纳氧传感磷光 Ru 染料与 QD。QD-Ru-amPEI 氧探针通过比率光致发光信号显示出准确和可逆的氧传感能力,已成功应用于细胞和球体模型。

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