Yamauchi Kevin A, Tentori Augusto M, Herr Amy E
The UC Berkeley/UCSF Graduate Program in Bioengineering, Berkeley, CA, USA.
Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
Electrophoresis. 2018 Apr;39(8):1040-1047. doi: 10.1002/elps.201700386. Epub 2018 Feb 20.
Isoelectric focusing (IEF) is a powerful separation method, useful for resolving subtle changes in the isoelectric point of unlabeled proteins. While microfluidic IEF has reduced the separation times from hours in traditional benchtop IEF to minutes, the enclosed devices hinder post-separation access to the sample for downstream analysis. The two-layer open IEF device presented here comprises a photopatterned hydrogel lid layer containing the chemistries required for IEF and a thin polyacrylamide bottom layer in which the analytes are separated. The open IEF device produces comparable minimum resolvable difference in isoelectric point and gradient stability to enclosed microfluidic devices while providing post-separation sample access by simple removal of the lid layer. Further, using simulations, we determine that the material properties and the length of the separation lanes are the primary factors that affect the electric field magnitude in the separation region. Finally, we demonstrate self-indexed photomasks for alignment-free fabrication of multi-domain hydrogels. We leverage this approach to generate arrayed pH gradients with a total of 80 concurrent separation lanes, which to our knowledge is the first demonstration of multiple IEF separations in series addressed by a single pair of electrodes.
等电聚焦(IEF)是一种强大的分离方法,可用于解析未标记蛋白质等电点的细微变化。虽然微流控IEF已将分离时间从传统台式IEF的数小时缩短至数分钟,但封闭式设备阻碍了分离后对样品进行下游分析。此处展示的双层开放式IEF设备包括一个光刻图案化的水凝胶盖层,其中包含IEF所需的化学物质,以及一个薄的聚丙烯酰胺底层,分析物在该底层中进行分离。开放式IEF设备在等电点和梯度稳定性方面产生的最小可分辨差异与封闭式微流控设备相当,同时通过简单移除盖层提供分离后样品访问。此外,通过模拟,我们确定材料特性和分离通道的长度是影响分离区域电场强度的主要因素。最后,我们展示了用于无对准制造多域水凝胶的自索引光掩模。我们利用这种方法生成了总共80个并行分离通道的阵列pH梯度,据我们所知,这是首次展示由一对电极串联处理的多个IEF分离。