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Fluorescent proton sensors based on energy transfer

机译:基于能量转移的荧光质子传感器

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Photophysical data and orbital energy levels (from electrochemistry) were compared for molecules with the same BODIPY acceptor part (red) and perpendicularly oriented xanthene or BODIPY donor fragments (green). Transfer of energy, hence the photophysical properties of the cassettes, including the pH dependent fluorescence in the xanthene-containing molecules, correlates with the relative energies of the frontier orbitals in these systems. Intracellular sensing of protons is often achieved via sensors that switch off completely at certain pH values, but probes of this type are not easy to locate inside cells in their "off-state". A communication from these laboratories (J. Am. Chem. Soc., 2009, 131, 1642-3) described how the energy transfer cassette 1 could be used for intracellular imaging of pH. This probe is fluorescent whatever the pH, but its exact photophysical properties are governed by the protonation states of the xanthene donors. This work was undertaken to further investigate correlations between structure, photophysical properties, and pH for energy transfer cassettes. To achieve this, three other cassettes 2-4 were prepared: another one containing pH-sensitive xanthene donors (2) and two "control cassettes" that each have two BODIPY-based donors (3 and 4). Both the cassettes 1 and 2 with xanthene-based donors fluoresce red under slightly acidic conditions (pH < ~6) and green when the medium is more basic (>~7), whereas the corresponding cassettes with BODIPY donors give almost complete energy transfer regardless of pH. The cassettes that have BODIPY donors, by contrast, show no significant fluorescence from the donor parts, but the overall quantum yields of the cassettes when excited at the donor (observation of acceptor fluorescence) are high (ca. 0.6 and 0.9). Electrochemical measurements were performed to elucidate orbital energy level differences between the pH-fluorescence profiles of cassettes with xanthene donors, relative to the two with BODIPY donors. These studies confirm energy transfer in the cassettes is dramatically altered by analytes that perturb relative orbital levels. Energy transfer cassettes with distinct fluorescent donor and acceptor units provide a new, and potentially useful, approach to sensors for biomedical applications.
机译:比较了具有相同BODIPY受体部分(红色)和垂直取向的x吨或BODIPY供体片段(绿色)的分子的光物理数据和轨道能级(来自电化学)。能量的转移,因此暗盒的光物理特性,包括含the吨分子中的pH依赖性荧光,都与这些系统中前沿轨道的相对能量相关。质子的细胞内感测通常是通过在特定pH值下完全关闭的传感器实现的,但是这种类型的探针不容易以“关闭状态”定位在细胞内部。这些实验室的通讯(J. Am。Chem。Soc。,2009,131,1642-3)描述了如何将能量转移盒1用于细胞内pH成像。该探针在任何pH值下都是荧光的,但其确切的光物理性质由the吨供体的质子化状态决定。进行这项工作以进一步研究能量转移盒的结构,光物理性质和pH之间的相关性。为了实现这一点,还准备了三个其他的盒2-4:另一个包含pH敏感的x吨供体(2)和两个“对照盒”,每个“对照盒”都具有两个基于BODIPY的供体(3和4)。具有x吨基供体的盒1和2在弱酸性条件下(pH <〜6)发出红色荧光,而在碱性较强的介质中(>〜7)发出绿色,而相应的带有BODIPY供体的盒则几乎实现了完全的能量转移pH值相比之下,具有BODIPY供体的盒不显示来自供体部分的显着荧光,但是当在供体处激发时(观察到受体荧光),盒的总量子产率很高(约0.6和0.9)。进行电化学测量以阐明具有x吨供体的盒相对于具有BODIPY供体的盒的pH-荧光曲线之间的轨道能量水平差异。这些研究证实,干扰相对轨道水平的分析物会大大改变盒中的能量传递。具有不同荧光供体和受体单元的能量转移盒为生物医学应用的传感器提供了一种新的,可能有用的方法。

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