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Target-Activated Modulation of Dual-Color and Two-Photon Fluorescence of Graphene Quantum Dots for in Vivo Imaging of Hydrogen Peroxide

机译:用于双氧水体内成像的石墨烯量子点的双色和双光子荧光的目标激活调制。

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The development of nanoprobes suitable for two-photon microscopy techniques is highly desirable for mapping biological species in living systems. However, at the current stage, the nanoprobes are restricted to single-color fluorescence changes, making it unsuitable for quantitative detection. To circumvent this problem, we report here a rational design of a dual emission and two-photon (TP) graphene quantum dot (GQD(420)) probe for imaging of hydrogen peroxide (H2O2). For specific recognition of H2O2 and lighting the fluorescence of TPGQD(420), a boronate ester-functionalized merocyanine (BMC) fluorophore was used as both target-activated trigger and the dual-emission fluorescence modulator. Upon two-photon excitation at 740 nm, TPGQD(420)-BMC displays a green-to-blue resolved emission band in response to H2O2 with an emission shift of 110 nm, and the H2O2 can be determined from 0.2 to 40 mu M with a detection limit of 0.05 mu M. Moreover, the fluorescence response of the TPGQD(420)-BMC toward H2O2 is rapid and extremely specific. The feasibility of the proposed method is demonstrated by two-photon ratiometrically mapping the production of endogenous H2O2 in living cells as well as in deep tissues of murine mode at 0-600 mu m. To the best of our knowledge, this is the first paradigm to rationally design a dual-emission and two-photon nanoprobe via fluorescence modulation of GQDs with switchable molecules, which will extend new possibility to design powerful molecular tools for in vivo bioimaging applications.
机译:非常适合用于双光子显微镜技术的纳米探针的开发,用于绘制生物系统中的生物种类。然而,在目前阶段,纳米探针仅限于单色荧光变化,使其不适用于定量检测。为了解决这个问题,我们在这里报告了用于双氧水(H2O2)成像的双发射和双光子(TP)石墨烯量子点(GQD(420))探针的合理设计。为了特异性识别H2O2并点亮TPGQD(420)的荧光,使用了硼酸酯官能化的花菁(BMC)荧光团作为目标激活的触发物和双发射荧光调节剂。在740 nm处的双光子激发下,TPGQD(420)-BMC响应于H2O2而显示绿色到蓝色的分辨发射带,发射位移为110 nm,并且H2O2可以从0.2到40μM确定TPGQD(420)-BMC对H2O2的荧光响应是快速且特异的。提出的方法的可行性是通过在0-600微米处的活细胞以及鼠模式的深层组织中的两光子比例绘制制图来证明内源性H2O2的产生。据我们所知,这是第一个通过可切换分子对GQD进行荧光调制来合理设计双发射和双光子纳米探针的范例,这将为设计用于体内生物成像应用的强大分子工具提供新的可能性。

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