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首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Microfluidic chip of fast DNA hybridization using denaturing and motion of nucleic acids.
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Microfluidic chip of fast DNA hybridization using denaturing and motion of nucleic acids.

机译:利用核酸的变性和运动快速进行DNA杂交的微流体芯片。

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摘要

This study presents the effect of fluidic temperatures and velocities on improving DNA hybridization. The efficiency of hybridization could be improved by introducing elevated temperature in the hot region and velocity in the cold region. Compared with the conventional methods, this hybridization microchip was able to increase the hybridization signal 4.6-fold within 30 min. The 1.4-kb single-stranded target DNA was tested. The increasing tendency of the fluorescence intensity was apparent when the temperature was higher than 82 degrees C, and the fluorescence intensity reached an asymptotic value at T >90 degrees C. A mathematical model was proposed to relate the fluorescence intensity of DNA hybridization with the hot-region temperature and the cold-region velocity. Based on these results, the new hybridization chip with the processes of temperature and velocity differences will improve efficiency of DNA detection. The microchip combined with hot-region temperature and cold-region bulk flow velocity effects could provide additional efficiency in DNA hybridization.
机译:这项研究提出了流体温度和速度对改善DNA杂交的影响。杂交的效率可以通过在高温区域引入高温和在寒冷区域引入速度来提高。与常规方法相比,该杂交微芯片能够在30分钟内将杂交信号提高4.6倍。测试了1.4kb单链靶DNA。当温度高于82℃时,荧光强度的增加趋势明显,并且在T> 90℃时荧光强度达到渐近值。提出了一种数学模型,将DNA杂交的荧光强度与高温相联系。区温度和冷区速度。基于这些结果,具有温度和速度差异过程的新型杂交芯片将提高DNA检测的效率。结合热区温度和冷区整体流速效应的微芯片可以在DNA杂交中提供额外的效率。

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