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首页> 外文期刊>Journal of molecular recognition: JMR >On-line kinetic model discrimination for optimized surface plasmon resonance experiments
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On-line kinetic model discrimination for optimized surface plasmon resonance experiments

机译:用于优化表面等离子体共振实验的在线动力学模型判别

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摘要

In order to improve the throughput of surface plasmon resonance-based biosensors, an on-line iterative optimization algorithm has been presented aiming at reducing experimental time and material consumption without any loss of confidence on kinetic parameters [De Crescenzo (2008) J. Mol Recognit., 21, 256-66.]. This algorithm was based on a simple Langmuirian model to compute the confidence and predict optimal injections. However, this kinetic model is not suitable for all interactions, as it does not include mass transfer limitation that may occur for fast interaction kinetics. If a simple model was to be used when this phenomenon influenced the interactions, kinetic parameters would be biased. On the other hand, we show in this paper that data analysis with a kinetic model including a mass transfer limitation step would lead to longer experiments and poorer confidence if the interactions were simple. So, in this manuscript, we present an on-line model discrimination and optimization approach to increase the throughput of surface plasmon resonance biosensors.
机译:为了提高基于表面等离子体共振的生物传感器的通量,提出了一种在线迭代优化算法,旨在减少实验时间和材料消耗,而对动力学参数没有任何置信度[De Crescenzo(2008)J. Mol Recognit 。,21,256-66。]。该算法基于简单的Langmuirian模型来计算置信度并预测最佳进样量。但是,此动力学模型不适用于所有相互作用,因为它不包括快速相互作用动力学可能发生的传质限制。如果在此现象影响相互作用时使用简单模型,则动力学参数将存在偏差。另一方面,我们在本文中表明,如果动力学模型包括相互作用的简单模型,则使用包括传质限制步骤在内的动力学模型进行数据分析将导致更长的实验时间和更低的置信度。因此,在本手稿中,我们提出了一种在线模型判别和优化方法,以提高表面等离振子共振生物传感器的通量。

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