Department of Experimental Medical Science, Faculty of Medicine, Lund University, Lund SE-22100, Sweden.
Department of Biomedical Sciences, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen N DK-2200, Denmark.
Anal Chem. 2022 Aug 30;94(34):11831-11837. doi: 10.1021/acs.analchem.2c02081. Epub 2022 Aug 15.
Measurement of protein-facilitated copper flux across biological membranes is a considerable challenge. Here, we demonstrate a straightforward microfluidic-derived approach for visualization and measurement of membranous Cu flux. Giant unilamellar vesicles, reconstituted with the membrane protein of interest, are prepared, surface-immobilized, and assessed using a novel quencher-sensor reporter system for detection of copper. With the aid of a syringe pump, the external buffer is exchanged, enabling consistent and precise exchange of solutes, without causing vesicle rupture or uneven local metal concentrations brought about by rapid mixing. This approach bypasses common issues encountered when studying heavy metal-ion flux, thereby providing a new platform for studies of metal homeostasis aspects that are critical for all cells, health, and disease.
测量生物膜中蛋白介导的铜通量是一项极具挑战性的工作。在这里,我们展示了一种简单的基于微流控的方法,用于可视化和测量膜铜通量。用感兴趣的膜蛋白重新构建的巨大单层囊泡被制备、表面固定,并使用新颖的淬灭剂-传感器报告系统进行检测,以检测铜。借助注射器泵,外部缓冲液被交换,从而能够在不引起囊泡破裂或由于快速混合而导致不均匀局部金属浓度的情况下,一致且精确地交换溶质。该方法避免了在研究重金属离子通量时遇到的常见问题,从而为研究对所有细胞、健康和疾病都至关重要的金属动态平衡方面提供了一个新的平台。