结合磁珠的光寻址电位传感器(LAPS)用于药物筛选

Q3 Medicine
Torsten Wagner , Wolfgang Vornholt , Carl Frederik Werner , Tatsuo Yoshinobu , Ko-ichiro Miyamoto , Michael Keusgen , Michael J. Schöning
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引用次数: 16

摘要

光寻址电位传感器(LAPS)具有独特的特点,可以在不需要复杂结构的情况下定位传感器表面的不同区域。在传感器表面不同位置的测量可以在一个共同的分析溶液中进行,这明显简化了流体设置。然而,在单个分析物腔中进行测量,就像在基于多库的设置中一样,可以防止在每个测量点同时应用不同的药物或不同浓度的药物。在这项工作中,作者设计了一种基于lap的装置,用于细胞培养筛选,该装置利用装载内毒素(脂多糖,LPS)的磁珠来产生分析物浓度的空间分布梯度。可以调整不同的外部磁场,以在测量细胞内移动装载特定药物的磁珠。通过记录在LAPS表面上培养的细胞层的代谢活动,这项工作显示了在普通分析物溶液中沿LAPS测量点施加不同浓度样品的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Light-addressable potentiometric sensor (LAPS) combined with magnetic beads for pharmaceutical screening

The light-addressable potentiometric sensor (LAPS) has the unique feature to address different regions of a sensor surface without the need of complex structures. Measurements at different locations on the sensor surface can be performed in a common analyte solution, which distinctly simplifies the fluidic set-up. However, the measurement in a single analyte chamber prevents the application of different drugs or different concentrations of a drug to each measurement spot at the same time as in the case of multi-reservoir-based set-ups. In this work, the authors designed a LAPS-based set-up for cell culture screening that utilises magnetic beads loaded with the endotoxin (lipopolysaccharides, LPS), to generate a spatially distributed gradient of analyte concentration. Different external magnetic fields can be adjusted to move the magnetic beads loaded with a specific drug within the measurement cell. By recording the metabolic activities of a cell layer cultured on top of the LAPS surface, this work shows the possibility to apply different concentrations of a sample along the LAPS measurement spots within a common analyte solution.

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来源期刊
Physics in Medicine
Physics in Medicine Physics and Astronomy-Instrumentation
CiteScore
2.60
自引率
0.00%
发文量
9
审稿时长
12 weeks
期刊介绍: The scope of Physics in Medicine consists of the application of theoretical and practical physics to medicine, physiology and biology. Topics covered are: Physics of Imaging Ultrasonic imaging, Optical imaging, X-ray imaging, Fluorescence Physics of Electromagnetics Neural Engineering, Signal analysis in Medicine, Electromagnetics and the nerve system, Quantum Electronics Physics of Therapy Ultrasonic therapy, Vibrational medicine, Laser Physics Physics of Materials and Mechanics Physics of impact and injuries, Physics of proteins, Metamaterials, Nanoscience and Nanotechnology, Biomedical Materials, Physics of vascular and cerebrovascular diseases, Micromechanics and Micro engineering, Microfluidics in medicine, Mechanics of the human body, Rotary molecular motors, Biological physics, Physics of bio fabrication and regenerative medicine Physics of Instrumentation Engineering of instruments, Physical effects of the application of instruments, Measurement Science and Technology, Physics of micro-labs and bioanalytical sensor devices, Optical instrumentation, Ultrasound instruments Physics of Hearing and Seeing Acoustics and hearing, Physics of hearing aids, Optics and vision, Physics of vision aids Physics of Space Medicine Space physiology, Space medicine related Physics.
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