将活人与死人分离:一种电泳方法
Viswateja Kasarabada1, Nuzhet Nihaar Nasir Ahamed1, Alaleh Vaghef-Koodehi1
1Microscale Bioseparations Laboratory and Biomedical Engineering Department, Rochester Institute of Technology, 160 Lomb Memorial Drive, Rochester, New York 14623, United States.
Analytical chemistry
|September 18, 2024
概括
这项研究表明,使用基于绝缘体的电动力学 (iEK) 装置,不断分离活体和死体大肠杆菌 (E. coli) 细胞. 通过结合线性和非线性电泳来实现分离,为细胞活力评估提供了一种新方法.
科学领域:
- 生物物理学的生物物理.
- 微生物学 微生物学
- 分析化学 分析化学
背景情况:
- 细胞活力研究在各种科学和工业领域都至关重要.
- 微流体电动力学 (EK) 装置为基于生存能力的微生物进行歧视提供了有效的平台.
- 之前的研究将基于绝缘体的EK (iEK) 器件中的活细胞/死细胞区分归因于介电泳效应.
研究的目的:
- 提出使用iEK装置连续分离活体和死体大肠杆菌 (大肠杆菌) 细胞的方法.
- 调查负责细胞歧视的潜在电泳效应.
- 为优化iEK分离参数建立一个数学模型.
主要方法:
- 活体和死体大肠杆菌细胞的电泳迁移的特征.
- 在COMSOL多物理中使用细胞属性数据开发数学模型.
- 在T交叉iEK通道中连续分离的实验验证.
主要成果:
- 成功地实现了活体和死亡大肠杆菌细胞的连续分离.
- 获得了1.87的分离分辨率,证明了有效的歧视.
- 该研究确定了线性和非线性电泳作为细胞歧视的主要机制.
结论:
- 线性和非线性电泳是在直流电场下的iEK设备中区分活细胞和死细胞的关键现象.
- 持续的电泳评估为微生物歧视提供了有价值的工具,包括可行性评估.
- 这种技术在需要细胞活力分析的领域具有广泛的应用.
相关概念视频
Electrophoresis: Overview
1.6K
Electrophoresis is a powerful analytical separation technique that relies on the differential migration of charged species when subjected to an electric field. The core strength of electrophoresis lies in its ability to separate high-molecular-weight species in complex mixtures. It has found widespread use in biochemistry, molecular biology, and analytical chemistry, allowing the separation of compounds like amino acids, nucleotides, carbohydrates, and proteins with excellent resolution.
There...
There...
1.6K
Two-dimensional Gel Electrophoresis
5.9K
Two-dimensional gel electrophoresis is a high-resolution protein separation method first introduced by O' Farrell and Klose in 1975. This method involves protein separation by two dimensions, mass and charge, making it more accurate than one-dimensional gel electrophoresis.
The first dimension separation uses the isoelectric focusing or IEF technique performed on immobilized pH gradient (IPG) strips that separate proteins according to their isoelectric points.
Biological samples, such...
The first dimension separation uses the isoelectric focusing or IEF technique performed on immobilized pH gradient (IPG) strips that separate proteins according to their isoelectric points.
Biological samples, such...
5.9K
Capillary Electrophoresis: Applications
348
Capillary electrophoretic separations offer various modes, each with unique applications. These modes include capillary zone electrophoresis, capillary gel electrophoresis, capillary array electrophoresis, capillary isoelectric focusing, capillary isotachophoresis, micellar electrokinetic chromatography, and capillary electrochromatography.
Capillary zone electrophoresis (CZE) separates ionic components based on their electrophoretic mobility. It has been used to separate proteins, amino acids,...
Capillary zone electrophoresis (CZE) separates ionic components based on their electrophoretic mobility. It has been used to separate proteins, amino acids,...
348
Overview Of Cell Separation And Isolation
5.6K
Cell separation was first achieved in 1964 by S. H. Seal, who separated large tumor cells from the smaller blood cells using filtration. Two years later, Pohl and Hawk performed experiments on how cells respond differently to a nonuniform electric field based on the cell type. Such observations were the inception of cell separation methods, which allow isolating a single cell type from a heterogeneous sample.
5.6K
Capillary Electrophoresis: Instrumentation
196
Capillary electrophoresis instrumentation typically consists of several key components. A high-voltage power supply generates the electric field necessary for the separation by connecting to an anode (the positively charged electrode) and a cathode (the negatively charged electrode) located in buffer reservoirs at each end of the capillary tube. The system includes a sample vial, a fused silica capillary tube coated with polyimide for mechanical strength through which the sample components...
196
Subcellular Fractionation
6.9K
The homogenate obtained after cell lysis contains various membrane-bound organelles that can be further separated into pure fractions by subcellular fractionation. These isolates are used to study specific cellular components, analyze localized protein activity, and are even employed in diagnostics. Fractionation is typically achieved using centrifugation methods, the most common being density-gradient and differential centrifugation.
Differential Centrifugation
Differential centrifugation is...
Differential Centrifugation
Differential centrifugation is...
6.9K


