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Distance dependent photoacoustics revealed through DNA nanostructures

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Molecular rulers that rely on the Forster resonance energy transfer (FRET) mechanism are widely used to investigate dynamic molecular processes that occur on the nanometer scale. However, the capabilities of these fluorescence molecular rulers are fundamentally limited to shallow imaging depths by light scattering in biological samples. Photoacoustic tomography (PAT) has recently emerged as a high resolution modality for in vivo imaging, coupling optical excitation with ultrasound detection. In this paper, we report the capability of PAT to probe distance-dependent FRET at centimeter depths. Using DNA nanotechnology we created several nanostructures with precisely positioned fluorophore-quencher pairs over a range of nanoscale separation distances. PAT of the DNA nanostructures showed distance-dependent photoacoustic signal enhancement and demonstrated the ability of PAT to reveal the FRET process deep within tissue mimicking phantoms. Further, we experimentally validated these DNA nanostructures as a novel and biocompatible strategy to augment the intrinsic photoacoustic signal generation capabilities of small molecule fluorescent dyes.
机译:分子依靠福斯特的统治者共振能量转移(FRET)机制广泛用于调查动态分子过程发生在纳米尺度上。然而,这些荧光的能力分子的统治者从根本上限制浅的光散射成像深度生物样品。(PAT)最近成为高分辨率为体内成像模式,耦合光学激励与超声波检测。论文中,我们报告拍来探测的能力军事烦恼在厘米深度。使用DNA纳米技术我们创建了一些纳米结构与精确定位在一系列fluorophore-quencher配对纳米级分离距离。纳米结构显示军事光声信号增强和演示帕特的能力,揭示了烦恼的过程深处组织模仿幻影。我们通过实验验证这些DNA作为小说和生物相容性的纳米结构策略增强内在光声信号生成小分子的能力荧光染料。

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