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Biochemical Activity Architectures Visualized-Using Genetically Encoded Fluorescent Biosensors to Map the Spatial Boundaries of Signaling Compartments.生物化学活性结构可视化——利用基因编码荧光生物传感器绘制信号隔室的空间边界。
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An ultrasensitive biosensor for high-resolution kinase activity imaging in awake mice.一种用于在清醒小鼠中进行高分辨率激酶活性成像的超灵敏生物传感器。
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A rationally enhanced red fluorescent protein expands the utility of FRET biosensors.理性增强的红色荧光蛋白扩展了 FRET 生物传感器的应用。
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用自动化活细胞显微镜系统进行 G 蛋白偶联受体信号转导测量和药物分析。

GPCR Signaling Measurement and Drug Profiling with an Automated Live-Cell Microscopy System.

机构信息

Department of Pharmacology, University of California, San Diego, La Jolla, California 92093, United States.

Department of Bioengineering, University of California, San Diego, La Jolla, California 92093, United States.

出版信息

ACS Sens. 2023 Jan 27;8(1):19-27. doi: 10.1021/acssensors.2c01341. Epub 2023 Jan 5.

DOI:10.1021/acssensors.2c01341
PMID:36602887
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9994309/
Abstract

A major limitation of time-lapse microscopy combined with fluorescent biosensors, a powerful tool for quantifying spatiotemporal dynamics of signaling in single living cells, is low-experimental throughput. To overcome this limitation, we created a highly customizable, MATLAB-based platform: flexible automated liquid-handling combined microscope (FALCOscope) that coordinates an OpenTrons liquid handler and a fluorescence microscope to automate drug treatments, fluorescence imaging, and single-cell analysis. To test the feasibility of the FALCOscope, we quantified G protein-coupled receptor (GPCR)-stimulated Protein Kinase A activity and cAMP responses to GPCR agonists and antagonists. We also characterized cAMP dynamics induced by GPR68/OGR1, a proton-sensing GPCR, in response to variable extracellular pH values. GPR68-induced cAMP responses were more transient in acidic than neutral pH values, suggesting a pH-dependence for signal attenuation. Ogerin, a GPR68 positive allosteric modulator, enhanced cAMP response most strongly at pH 7.0 and sustained cAMP response for acidic pH values, thereby demonstrating the capability of the FALCOscope to capture allosteric modulation. At a high concentration, ogerin increased cAMP signaling independent of GPR68, likely via phosphodiesterase inhibition. The FALCOscope system thus enables enhanced throughput single-cell dynamic measurements and is a versatile system for interrogating spatiotemporal regulation of signaling molecules in living cells and for drug profiling and screening.

摘要

延时显微镜结合荧光生物传感器是定量研究单个活细胞信号时空动力学的有力工具,但存在实验通量低的主要局限性。为了克服这一局限性,我们创建了一个高度可定制的基于 MATLAB 的平台:灵活自动化液体处理结合显微镜(FALCOscope),它协调了 OpenTrons 液体处理机和荧光显微镜,以实现药物处理、荧光成像和单细胞分析的自动化。为了测试 FALCOscope 的可行性,我们定量测定了 G 蛋白偶联受体(GPCR)刺激蛋白激酶 A 活性和 cAMP 对 GPCR 激动剂和拮抗剂的反应。我们还描述了 GPR68/OGR1(一种质子感应 GPCR)在不同细胞外 pH 值下诱导的 cAMP 动力学。GPR68 诱导的 cAMP 反应在酸性 pH 值下比中性 pH 值更短暂,表明信号衰减存在 pH 依赖性。OGerin 是一种 GPR68 的正变构调节剂,在 pH7.0 时对 cAMP 反应的增强作用最强,并在酸性 pH 值下维持 cAMP 反应,从而证明了 FALCOscope 捕捉变构调节的能力。在高浓度下,ogerin 独立于 GPR68 增加 cAMP 信号,可能通过磷酸二酯酶抑制。因此,FALCOscope 系统能够实现增强的高通量单细胞动态测量,是一种用于研究活细胞中信号分子时空调节以及药物分析和筛选的多功能系统。