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Rapid Assembly of DNA Origami in Microfluidic Temperature Gradient

机译:DNA折纸在微流控温度梯度中的快速组装

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摘要

DNA nanostructures, called DNA origami, are self-assembled through DNA hybridization by annealing process. DNA origami consists of a long single-strand DNA, scaffold, and hundreds of complementary oligonucleotides, staple, and constructs various 2D or 3D nanostructures. For DNA origami folding, it is necessary to denature DNAs and annealed them slowly. Although in general annealing process using microtube and commercial thermal cycler, it takes a long time for DNA hybridization due to large scale reactor. Here, We present an effect of temperature distribution during a rapid folding of DNA nanostructures, called DNA origami. DNA origami can fabricate various designs and sizes of 2D/3D nanostructures by self-assembly of DNA hybridization. Based on results of computational fluid dynamics (CFD) simulation, time-dependent temperature distribution in microtube effects the yield of DNA origami. Triangle DNA origami can be folded at -30 °C/min in microfluidic channel whereas no DNA nanostructures were observed by general annealing process. We confirmed 20 times-faster self-assembly of DNA nanostructures in microfluidic channel, compared to general annealing process in microtube by thermal cycler.
机译:DNA纳米结构称为DNA折纸,是通过退火过程中的DNA杂交而自组装的。 DNA折纸由一个长的单链DNA,支架和数百个互补的寡核苷酸,钉书钉组成,并构建各种2D或3D纳米结构。对于DNA折纸折叠,有必要使DNA变性并使其缓慢退火。尽管在使用微管和商用热循环仪的一般退火工艺中,由于反应器规模大,DNA杂交需要很长时间。在这里,我们提出了在DNA纳米结构(称为DNA折纸)快速折叠过程中温度分布的影响。 DNA折纸可通过DNA杂交的自组装来制造2D / 3D纳米结构的各种设计和尺寸。根据计算流体动力学(CFD)模拟的结果,微管中随时间变化的温度分布会影响DNA折纸的产量。三角形DNA折纸可在微流体通道中以-30°C / min的速度折叠,而通过常规退火工艺未观察到DNA纳米结构。我们证实,与通过热循环仪在微管中进行一般退火工艺相比,微流体通道中DNA纳米结构的自组装速度快20倍。

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