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Free-flow zone electrophoresis: A novel approach and scale-up for preparative protein separation

机译:自由流动区电泳:一种制备蛋白质分离的新方法和规模化方法

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Different continuously working free-flow zone electrophoresis (FFZE) chambers have already been developed [1, 2]. All of them deal with the problem of distinctive Joule heating. The resulting temperature gradients cause an unstable density field which leads to thermal convection and thus to an intermixing of the different fractions within the chamber. The most promising and simple approach to stabilize the flow is to build chambers with one very small dimension (e.g., h = 0.5 mm) to assure efficient heat withdrawal. This in turn presents substantial disadvantages, namely limited throughput and restricted scale-up potential. The novel approach combines a simplified design and assembly with the possibility of straightforward scale-up. it still operates with one small dimension (d = 1-2 mm) to handle the Joule heating. Here, however, not the dimension perpendicular to the electric field but the dimension parallel to the electric field (separation distance) is chosen as the smallest dimension. The efficiency of the new device is shown by the separation of bovine serum albumin (BSA) and cytochrome c with an overall protein throughput of up to 1.1 g/h, using a cell with a separation volume of less than 20 mL. [References: 18]
机译:已经开发出了不同的连续工作的自由流动区电泳(FFZE)室[1,2]。所有这些都解决了独特的焦耳加热问题。产生的温度梯度会导致不稳定的密度场,从而导致热对流,从而导致腔室内不同部分的混合。稳定流动的最有前途和最简单的方法是建立一个尺寸很小的腔室(例如h = 0.5 mm),以确保有效的散热。反过来,这也带来了很大的缺点,即吞吐量受限和放大潜力受限。新颖的方法将简化的设计和组装与直接放大的可能性结合在一起。它仍然以较小的尺寸(d = 1-2 mm)运行以处理焦耳热。然而,在此,不是垂直于电场的尺寸而是平行于电场的尺寸(分离距离)被选择为最小尺寸。使用分离体积小于20 mL的细胞分离牛血清白蛋白(BSA)和细胞色素c,总蛋白通量高达1.1 g / h,表明了这种新设备的效率。 [参考:18]

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