Department of Chemical Engineering, Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, USA.
Anal Chem. 2010 Feb 15;82(4):1253-60. doi: 10.1021/ac902157e.
Isoelectric focusing (IEF) is the first step for two-dimensional (2D) gel electrophoresis and plays an important role in sample purification for proteomics. However, biases in protein size and pI resolution, as well as limitations in sample volume, gel capacity, sample loss, and experimental time, remain challenges. In order to address some of the limitations of traditional IEF, we present a microfluidic free flow IEF (FF-IEF) device for continuous protein separation into 24 fractions. The device reproducibly establishes a nearly linear pH gradient from 4 to 10. Optimized dynamic coatings of 4% poly(vinyl alcohol) (PVA) minimize peak broadening by transverse electrokinetic flows. Even though the device operates at high electric fields (up to 370 V/cm), efficient cooling maintains solution temperature inside the separation channel controllably in the range 2-25 degrees C. Protein samples with a dynamic concentration range from microg/mL to mg/mL can be loaded into the microdevice at a flow rate of 1 mL/h and residence time of approximately 12 min. By using a protein complex of nine proteins and 13 isoforms, we demonstrate improved separation with the FF-IEF system over traditional 2D gel electrophoresis. Device-to-device reproducibility is also illustrated through the efficient depletion of the albumin and hemoglobin assays. Post-device sample concentrations result in a 10-20-fold increase, which allow for isolation and detection of low abundance proteins. The separation of specific proteins from a whole cell lysate is demonstrated as an example. The microdevice has the further benefits of retaining high molecular weight proteins, providing higher yield of protein that has a broader range in pI, and reducing experimental time compared to conventional IEF IGP gel strip approaches.
等电聚焦(IEF)是二维(2D)凝胶电泳的第一步,在蛋白质组学的样品纯化中起着重要作用。然而,蛋白质大小和 pI 分辨率的偏差,以及样品体积、凝胶容量、样品损失和实验时间的限制仍然是挑战。为了解决传统 IEF 的一些限制,我们提出了一种用于连续将蛋白质分离成 24 个馏分的微流控自由流等电聚焦(FF-IEF)装置。该装置可重复性地建立从 4 到 10 的近乎线性 pH 梯度。经过优化的 4%聚乙烯醇(PVA)动态涂层通过横向电动流最小化峰展宽。尽管该装置在高电场(高达 370 V/cm)下运行,但高效冷却可将分离通道内的溶液温度在 2-25 摄氏度的范围内可控地保持在 2-25 摄氏度。可将动态浓度范围从微克/毫升到毫克/毫升的蛋白质样品以 1 mL/h 的流速和大约 12 分钟的停留时间加载到微设备中。通过使用九种蛋白质和 13 种同工型的蛋白质复合物,我们证明了 FF-IEF 系统在传统的 2D 凝胶电泳中具有更好的分离效果。通过高效耗尽白蛋白和血红蛋白分析,也说明了设备之间的可重复性。通过设备后样品浓度可使浓度增加 10-20 倍,这允许分离和检测低丰度蛋白质。作为一个例子,展示了从整个细胞裂解物中分离特定蛋白质。与传统的 IEF IGP 凝胶条方法相比,微设备具有保留高分子量蛋白质、提供具有更广泛 pI 范围的更高产量蛋白质以及减少实验时间的进一步优势。