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首页> 外文期刊>Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on >Reactant Minimization in Sample Preparation on Digital Microfluidic Biochips
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Reactant Minimization in Sample Preparation on Digital Microfluidic Biochips

机译:数字微流控生物芯片上样品制备中的反应物最小化

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Sample preparation plays an essential role in most biochemical reactions. Raw reactants are diluted to solutions with desirable concentration values in this process. Since the reactants, like infant’s blood, DNA evidence collected from crime scenes, or costly reagents, are extremely valuable, their usage should be minimized whenever possible. In this paper, we propose a two-phased reactant minimization algorithm (REMIA), for sample preparation on digital microfluidic biochips. In the former phase, REMIA builds a reactant-minimized interpolated dilution tree with specific leaf nodes for a target concentration. Two approaches are developed for tree construction; one is based on integer linear programming (ILP) and the other is heuristic. The ILP one guarantees to produce an optimal dilution tree with minimal reactant consumption, whereas the heuristic one ensures runtime efficiency. Then, REMIA constructs a forest consisting of exponential dilution trees to produce those aforementioned specific leaf nodes with minimal reactant consumption in the latter phase. Experimental results show that REMIA achieves a reduction of reactant usage by 32%–52% as compared with three existing state-of-the-art sample preparation approaches. Besides, REMIA can be easily extended to solve the sample preparation problem with multiple target concentrations, and the extended version also effectively lowers the reactant consumption further.
机译:样品制备在大多数生化反应中起着至关重要的作用。在此过程中,将原始反应物稀释为所需浓度值的溶液。由于反应物(如婴儿的血液),从犯罪现场收集的DNA证据或昂贵的试剂非常有价值,因此应尽可能减少其使用。在本文中,我们提出了一种两阶段反应物最小化算法(REMIA),用于数字微流控生物芯片上的样品制备。在前一个阶段,REMIA建立了一个最小化反应物的插值稀释树,其中包含针对目标浓度的特定叶节点。开发了两种方法来进行树木构建。一种基于整数线性规划(ILP),另一种基于启发式。 ILP保证以最少的反应物消耗产生最佳的稀释树,而启发式方法确保运行时效率。然后,REMIA建造了一个由指数稀释树组成的森林,以生产上述那些特定的叶节点,并在随后的阶段将反应物的消耗降至最低。实验结果表明,与三种现有的最先进的样品制备方法相比,REMIA可将反应物用量减少32%–52%。此外,REMIA可以轻松扩展以解决具有多个目标浓度的样品制备问题,并且扩展版本还有效地进一步降低了反应物消耗。

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