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Implementing Enzyme-Linked Immunosorbent Assays on a Microfluidic Chip To Quantify Intracellular Molecules in Single Cells

机译:在微流控芯片上实施酶联免疫吸附测定以定量单细胞中的细胞内分子

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Cell-to-cell differences play a key role in the ability of cell populations to adapt and evolve, and they are considered to impact the development of several diseases. Recent advances in microsystem technology provide promising solutions for single-cell studies. However, the quantitative chemical analysis of single-cell lysates remains difficult. Here, we combine a microfluidic device with the analytical strength of enzyme-linked immunosorbent assays (ELISA) for single-cell studies to reliably identify intracellular proteins, secondary messengers, or metabolites. The microfluidic device allows parallel single-cell trapping and isolation in 625-pL microchambers, repeated treatment and washing steps, subsequent lysis and analysis by ELISA. Using a sandwich ELISA, we quantitatively determined the concentration of the enzyme GAPDH in single U937 cells and HEK 293 cells, and found amounts within a range of a few (1-4) attomol per cell. Furthermore, a competitive ELISA is performed to determine the concentration of the secondary messenger cyclic adenosine monophosphate (cAMP) in MLT cells, in response to the hormone lutropin. We found the half maximal effective concentration (EC_(50)) of lutropin to have an average value of 2.51 ± 0.44 ng/mL. Surprisingly, there were large cell-to-cell variations for all supplied lutropin concentrations, ranging from 36 to 536 attomol cAMP for nonstimulated cells and from 80 to 1040 attomol cAMP for a concentration around the EC50 (3 ng/mL). Because of the high sensitivity and specificity of ELISA and the large number of antibodies available, we believe that our device provides a new, powerful means for single-cell proteomics and metabolomics.
机译:细胞间差异在细胞群体适应和进化的能力中起着关键作用,被认为会影响多种疾病的发展。微系统技术的最新进展为单细胞研究提供了有希望的解决方案。但是,单细胞裂解物的定量化学分析仍然很困难。在这里,我们将微流控设备与酶联免疫吸附测定(ELISA)的分析强度结合起来,用于单细胞研究,以可靠地鉴定细胞内蛋白质,次级信使或代谢物。该微流控设备允许在625 pL微腔室中进行平行单细胞捕获和分离,重复处理和洗涤步骤,随后的ELISA裂解和分析。使用夹心ELISA,我们定量测定了单个U937细胞和HEK 293细胞中GAPDH酶的浓度,发现每个细胞的数量在几(1-4)attomol范围内。此外,响应于激素促性腺激素,进行竞争性ELISA以确定MLT细胞中次级信使环状单磷酸腺苷(cAMP)的浓度。我们发现促黄体激素的半数最大有效浓度(EC_(50))的平均值为2.51±0.44 ng / mL。令人惊讶的是,所有提供的促性腺激素浓度都有很大的细胞间差异,非刺激细胞的浓度范围为36至536 attomol cAMP,EC50浓度约为3 ng / mL的范围为80至1040 attomol cAMP。由于ELISA的高灵敏度和特异性以及可用的大量抗体,我们相信我们的设备为单细胞蛋白质组学和代谢组学提供了一种新颖而强大的方法。

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