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Real-time probing of radical events with sulfide molecules

机译:硫化物分子实时探测激进事件

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The physio-pathological roles of sulfide biomolecules in cellular environments involves redox processes and radical reactions that alter or protect the functional properties of enzymatic systems, proteins and nucleic acids repair. We focus on micromolar monitoring of sulfur-centered radical anions produced by direct electron attachment, using sulfide molecules (a thioether and a disulfide biomolecule) and two complementary spectroscopic approaches: low energy radiation femtochemistry (1-8 eV) and high energy radiation femtochemistry (2.5-15 MeV). The early step of a disulfide bond making RS∴SR from thiol molecules involves a very-short lived odd-electron bonded intermediate for which an excess electron is transiently localized by a preexisting two sulfide monomers complex. The reactive center of oxidized glutathione (cystamine), a major cytoplasmic disulfide biomolecule, is also used as sensor for the real-time IR investigation of effective reaction radius reff in homogenous aqueous environments and interfacial water of biomimetic systems. Femtosecond high-energy electrons beams, typically in the 2.5 - 15 MeV range, may conjecture the picosecond observation of primary radical events in nanometric radiation spurs. The real-time investigation of sulfide and disulfide molecules opens exciting opportunities for sensitisation of confined environments (aqueous groove of DNA, protein pockets, sub-cellular systems) to ionizing radiation. Low and high-energy femtoradical probing foreshadow the development of new applications in radiobiology (low dose effect at the nanometric scale) and anticancer radiotherapy (pro-drogue activation).
机译:硫化物生物分子在细胞环境中的物理病理作用涉及氧化还原过程和改变或保护酶系统,蛋白质和核酸修复功能性的激进反应。我们专注于通过直接电子连接产生的硫居强根阴离子的微孔监测,使用硫化物分子(硫醚和二硫醚)和两种互补的光谱方法:低能量辐射杂草化学(1-8 eV)和高能量辐射纤维化学( 2.5-15 MeV)。从硫醇分子中制备Rs∴SR的二硫键的早期步骤涉及一个非常短的偏离电子键合中间体,其中过量的电子通过预先存在的两个硫化物单体复合物瞬时定位。氧化谷胱甘肽(胱amine)的反应性中心,一种主要的细胞质二硫化物生物分子也用作用于实时IR对均质水性环境中的有效反应半径雷德的传感器和仿生体系的界面水。通常在2.5-15meV范围内的飞秒高能量电子束可以猜想纳米辐射刺血管中的主要自由基事件的皮秒观察。硫化物和二硫化物分子的实时调查为狭窄的环境(DNA水槽,蛋白质袋,亚细胞系统)的敏感性致敏进行了令人兴奋的机会,以电离辐射。低能量羽毛羽毛探测预示着辐射生物学新应用的开发(纳米级低剂量效果)和抗癌放疗(Pro-Trogue激活)。

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