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Hybridization enhancement using cavitation microstreaming

机译:利用空化微流增强杂交

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Conventional DNA microarray hybridization relies on diffusion of target to surface-bound probes, and thus is a rate-limited process. In this paper, a micromixing technique based on cavitation microstreaming principle that was developed to accelerate hybridization process is explained. Fluidic experiments showed that air bubbles resting on a solid surface and set into vibration by a sound field generated steady circulatory flows, resulting in global convection flows and, thus, rapid mixing. The time to fully mix dyed solutions in a 50-muL chamber using cavitation microstreaming was significantly reduced from hours (a pure diffusion-based mixing) to 6 s. Cavitation microstreaming was implemented to enhance DNA hybridization in both fluorescence-detection-based and electrochemical-detection-based DNA microarray chips. The former showed that cavitation microstreaming results in up to 5-fold hybridization signal enhancement with significantly improved signal uniformity, as compared to the results obtained in conventional diffusion-based biochips for a given time (2 h). Hybridization kinetics study in the electrochemical detection-based chips showed that acoustic microstreaming results in up to 5-fold kinetics acceleration. Acoustic microstreaming has many advantages over most existing techniques used for hybridization enhancement, including a simple apparatus, ease of implementation, low power consumption (similar to2 mW), and low cost. [References: 33]
机译:常规的DNA微阵列杂交依赖于靶向表面结合的探针的扩散,因此是速率受限的过程。本文介绍了一种基于空化微流原理的微混合技术,该技术旨在加快杂交过程。流体实验表明,气泡停留在固体表面并因声场而振动,从而产生稳定的循环流,从而导致整体对流并因此迅速混合。使用空化微流在50 µL的腔室中完全混合染色溶液的时间从数小时(基于纯扩散的混合)显着减少到6 s。在基于荧光检测和基于电化学检测的DNA微阵列芯片中,实现了空化微流以增强DNA杂交。前者表明,与传统的基于扩散的生物芯片在给定的时间(2小时)中获得的结果相比,空化微流可导致多达5倍的杂交信号增强,并具有显着改善的信号均匀性。在基于电化学检测的芯片中的杂交动力学研究表明,声学微流导致高达5倍的动力学加速。相对于用于杂交增强的大多数现有技术,声学微流具有许多优势,包括设备简单,易于实现,低功耗(约2 mW)和低成本。 [参考:33]

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