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Programmable and automated bead-based microfluidics for versatile DNA microarrays under isothermal conditions

机译:等温条件下适用于各种DNA微阵列的基于可编程和自动化珠的微流控技术

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Advances in modern genomic research depend heavily on applications of various devices for automated high- or ultra-throughput arrays. Micro- and nanofluidics offer possibilities for miniaturization and integration of many different arrays onto a single device. Therefore, such devices are becoming a platform of choice for developing analytical instruments for modern biotechnology. This paper presents an implementation of a bead-based microfluidic platform for fully automated and programmable DNA microarrays. The devices are designed to work under isothermal conditions as DNA immobilization and hybridization transfer are performed under steady temperature using reversible pH alterations of reaction solutions. This offers the possibility for integration of more selection modules onto a single chip compared to maintaining a temperature gradient. This novel technology allows integration of many modules on a single reusable chip reducing the application cost. The method takes advantage of demonstrated highspeed DNA hybridization kinetics and denaturation on beads under flow conditions, high-fidelity of DNA hybridization, and small sample volumes are needed. The microfluidic devices are applied for a single nucleotide polymorphism analysis and DNA sequencing by synthesis without the need for fluorescent removal step. Apart from that, the microfluidic platform presented is applicable to many areas of modem biotechnology, including biosensor devices, DNA hybridization microarrays, molecular computation, on-chip nucleic acid selection, high-throughput screening of chemical libraries for drug discovery.
机译:现代基因组研究的进展在很大程度上取决于自动化高通量或超通量阵列的各种设备的应用。微流体和纳米流体为将许多不同阵列小型化和集成到单个设备上提供了可能性。因此,此类设备正成为开发用于现代生物技术的分析仪器的首选平台。本文介绍了基于珠的微流控平台的实现,该平台用于全自动和可编程的DNA微阵列。该设备设计用于在等温条件下工作,因为DNA固定化和杂交转移是在恒定温度下使用反应溶液的可逆pH值进行的。与保持温度梯度相比,这提供了将更多选择模块集成到单个芯片上的可能性。这项新颖的技术允许将多个模块集成在单个可重复使用的芯片上,从而降低了应用成本。该方法利用了已证明的高速DNA杂交动力学和流动条件下珠上的变性,DNA杂交的高保真度以及所需的小样品量。该微流体装置被用于单核苷酸多态性分析和通过合成的DNA测序,而无需荧光去除步骤。除此之外,提出的微流体平台还适用于现代生物技术的许多领域,包括生物传感器设备,DNA杂交微阵列,分子计算,芯片上核酸选择,用于药物发现的化学库的高通量筛选。

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