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On-chip Isotachophoresis for Separation of Ions and Purification of Nucleic Acids

机译:片上等速电泳分离离子和纯化核酸

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摘要

Electrokinetic techniques are a staple of microscale applications because of their unique ability to perform a variety of fluidic and electrophoretic processes in simple, compact systems with no moving parts. Isotachophoresis (ITP) is a simple and very robust electrokinetic technique that can achieve million-fold preconcentration1,2 and efficient separation and extraction based on ionic mobility.3 For example, we have demonstrated the application of ITP to separation and sensitive detection of unlabeled ionic molecules (e.g. toxins, DNA, rRNA, miRNA) with little or no sample preparation4-8 and to extraction and purification of nucleic acids from complex matrices including cell culture, urine, and blood.9-12ITP achieves focusing and separation using an applied electric field and two buffers within a fluidic channel system. For anionic analytes, the leading electrolyte (LE) buffer is chosen such that its anions have higher effective electrophoretic mobility than the anions of the trailing electrolyte (TE) buffer (Effective mobility describes the observable drift velocity of an ion and takes into account the ionization state of the ion, as described in detail by Persat et al.13). After establishing an interface between the TE and LE, an electric field is applied such that LE ions move away from the region occupied by TE ions. Sample ions of intermediate effective mobility race ahead of TE ions but cannot overtake LE ions, and so they focus at the LE-TE interface (hereafter called the "ITP interface"). Further, the TE and LE form regions of respectively low and high conductivity, which establish a steep electric field gradient at the ITP interface. This field gradient preconcentrates sample species as they focus. Proper choice of TE and LE results in focusing and purification of target species from other non-focused species and, eventually, separation and segregation of sample species.We here review the physical principles underlying ITP and discuss two standard modes of operation: "peak" and "plateau" modes. In peak mode, relatively dilute sample ions focus together within overlapping narrow peaks at the ITP interface. In plateau mode, more abundant sample ions reach a steady-state concentration and segregate into adjoining plateau-like zones ordered by their effective mobility. Peak and plateau modes arise out of the same underlying physics, but represent distinct regimes differentiated by the initial analyte concentration and/or the amount of time allotted for sample accumulation.We first describe in detail a model peak mode experiment and then demonstrate a peak mode assay for the extraction of nucleic acids from E. coli cell culture. We conclude by presenting a plateau mode assay, where we use a non-focusing tracer (NFT) species to visualize the separation and perform quantitation of amino acids.
机译:电动技术是微型应用的基础,因为它们具有在没有移动部件的简单,紧凑的系统中执行各种流体和电泳过程的独特能力。等速电泳(ITP)是一种简单而强大的电动技术,可以实现百万倍的预浓缩 1,2 并基于离子迁移率实现​​有效的分离和提取。 3 例如,我们已经证明了ITP在很少或没有样品制备 4-8 的分离和灵敏检测未标记离子分子(例如毒素,DNA,rRNA,miRNA)以及核酸提取和纯化中的应用 9-12 ITP通过施加的电场和流体通道系统中的两个缓冲液实现聚焦和分离。对于阴离子分析物,应选择前导电解质(LE)缓冲液,以使其阴离子比后电解质(TE)缓冲液的阴离子具有更高的有效电泳迁移率(有效迁移率描述了离子的可观察到的漂移速度,并考虑了电离作用) (如Persat等人的 13 )所述。在TE和LE之间建立接口后,施加电场,使LE离子远离TE离子占据的区域。中等有效迁移率的样品离子比TE离子快,但不能超过LE离子,因此它们集中在LE-TE界面(以下称为“ ITP界面”)上。此外,TE和LE分别形成低导电率和高导电率的区域,它们在ITP界面处建立陡峭的电场梯度。该场梯度在样品集中时会对其进行预浓缩。正确选择TE和LE会导致目标物种从其他非关注物种中集中和纯化,并最终导致样品物种的分离和隔离。我们在这里回顾了ITP的物理原理,并讨论了两种标准操作模式:“峰值”和“高原”模式。在峰模式下,相对稀释的样品离子在ITP界面的重叠窄峰内集中在一起。在高原模式下,更丰富的样品离子达到稳态浓度,并按有效迁移率排序进入相邻的高原样区域。峰和平台模式源自相同的基础物理学,但代表了不同的机制,该模式由初始分析物浓度和/或分配给样品积累的时间量所区分。我们首先详细描述模型峰模式实验,然后展示峰模式从大肠杆菌细胞培养物中提取核酸的检测方法。最后,我们提出了一种平稳模式测定法,其中我们使用了非聚焦示踪剂(NFT)物种来可视化分离并进行氨基酸定量。

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