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A molecular-sized optical logic circuit for digital modulation of a fluorescence signal

机译:用于荧光信号数字调制的分子大小的光学逻辑电路

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Fluorescence measurement allows simultaneous detection of multiple molecular species by using spectrally distinct fluorescence probes. However, due to the broad spectra of fluorescence emission, the multiplicity of fluorescence measurement is generally limited. To overcome this limitation, we propose a method to digitally modulate fluorescence output signals with a molecular-sized optical logic circuit by using optical control of fluorescence resonance energy transfer (FRET). The circuit, receives a set of optical inputs represented with different light wavelengths, and then it switches high and low fluorescence intensity from a reporting molecule according to the result of the logic operation. By using combinational optical inputs in readout of fluorescence signals, the number of biomolecular species that can be identified is increased. To implement the FRET-based circuits, we designed two types of basic elements, YES and NOT switches. An YES switch produces a high-level output intensity when receiving a designated light wavelength input and a low-level intensity without the light irradiation. A NOT switch operates inversely to the YES switch. In experiments, we investigated the operation of the YES and NOT switches that receive a 532-nm light input and modulate the fluorescence intensity of Alexa Fluor 488. The experimental result demonstrates that the switches can modulate fluorescence signals according to the optical input.
机译:荧光测量允许通过使用光谱不同的荧光探针同时检测多种分子。但是,由于荧光发射的光谱较宽,通常限制了荧光测量的多样性。为克服此限制,我们提出了一种通过使用荧光共振能量转移(FRET)的光学控制,用分子大小的光学逻辑电路对荧光输出信号进行数字调制的方法。该电路接收一组用不同的光波长表示的光输入,然后根据逻辑运算的结果从报告分子切换高荧光强度和低荧光强度。通过在读取荧光信号中使用组合光学输入,可以识别的生物分子种类增加了。为了实现基于FRET的电路,我们设计了两种基本元素:YES和NOT开关。 YES开关在接收到指定的光波长输入时会产生高电平的输出强度,而在没有光照射的情况下会产生低电平的强度。 NOT开关的操作与YES开关的操作相反。在实验中,我们研究了YES和NOT开关的操作,该开关接收532 nm的光输入并调制Alexa Fluor 488的荧光强度。实验结果表明,这些开关可以根据光输入来调制荧光信号。

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