抗体偶联量子点无损成像完整JAR细胞内血清素

Jiyeon Kim, Chaeyun Lim, J. Song
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摘要

直接测量单个细胞中的神经递质仍然是一个重大挑战。现有的探针在精确观察细胞内成分方面存在一些问题。近年来,量子点(Qdot)以其独特的物理、化学和光学特性,被广泛用作观察多种细胞膜受体和细胞外生物分子的探针。然而,量子点之间的高亲和力可能导致细胞质中严重的聚集;因此,量子点聚集体通常被误解为量子点探测的细胞内分子。此外,与细胞外水介质相比,细胞质的高粘度可能导致更多的聚集量子点。为了消除这些障碍,我们利用基于量子点的免疫分析技术和基于声光可调滤波器的快速可调多色成像系统,在完整细胞中开发了一种直接无损血清素成像方法。在5 -羟色胺颗粒与不同颜色的量子点抗5 -羟色胺抗体偶联物结合的条件下,它提供了5 -羟色胺颗粒作为波长函数的快速图像扫描。这种多色成像技术显然消除了使用量子点作为细胞内分子探针所产生的聚集问题。这项工作的结果表明,多色成像与荧光半导体纳米晶体相结合,有可能作为一种可行的技术,在完整细胞中无损地测量细胞内血清素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nondestructive imaging of intracellular serotonin in intact JAR cells using antibody conjugated quantum dot
Direct measurement of neurotransmitter in a single cell still remains a major challenge. Existing probes have several problems for accurate observation of intracellular component. In recent years, quantum dots (Qdot), with their unique physical, chemical, and optical properties, have been used extensively as probes to visualize several cell membrane receptors and extracellular biomolecules. However, high affinity between quantum dots may induce serious aggregation in the cytoplasm; as a result, quantum dot aggregates are usually misinterpreted as quantum dot-probed intracellular molecules. Moreover, higher viscosity of cytoplasm compared to the extracellular aqueous media may lead to a higher number of aggregated quantum dots. To eliminate these obstacles, we developed a direct nondestructive serotonin imaging in an intact cell using the quantum dot-based immunoassay with a rapid tunable multicolor imaging system based on the acousto-optic tunable filter. It provides rapid image scanning of serotonin granules as a function of wavelength under conditions in which the serotonin granules are bound with different colored quantum dots anti-serotonin antibody conjugates. This multicolor imaging technique clearly does away with aggregation issues that emerge from the use of quantum dots as probes for intracellular molecules. The results of this work demonstrate that multicolor imaging combined with fluorescent semiconductor nanocrystals has the potential to serve as a viable technique for nondestructive intracellular serotonin measurements in intact cells.
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