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Media Dependent Switching of Selectivity and Continuous near Infrared Turn-on Fluorescence Response through Cascade Interactions from Noncovalent to Covalent Binding for Detection of Serum Albumin in Living Cells

机译:介质依赖性切换选择性和连续近红外线导通荧光响应通过级联与非共价相互作用,以共价结合检测活细胞中的血清白蛋白

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Abnormal level of proteins is proved to be associated with diseases. Thus, protein sensing is helpful for clinical diagnosis and therapy. However, there is a great variety of protein species and relatively low concentration of each protein in complicated biological systems including other nonprotein biomolecules. Therefore, it remains challenging to develop an effective method for detecting protein with high selectivity and sensitivity. Herein, a new self-assembly method based on a robust dye SQSS of which two squaraine molecules were conjugated through disulfide bond was developed for highly selective and sensitive detection of serum albumin (SA) in aqueous solution and live cells. SQSS can self-assemble into "compact" aggregates, offering "inert" disulfide group and very low background fluorescence through the combination of aggregation quenching and homogeneous fluorescence resonance energy transfer (homoFRET) quenching. The response of SQSS to SA undergoes two cascade stages. At the first stage, SA drives the compact assemblies of SQSS to form loose ones with fast speed (30 s) through noncovalent interaction, resulting in the enhancement of fluorescence to some extent. In this loose assembly state, the disulfide bond in SQSS is reactive. At the second stage, the Cys34 in SA slowly induced further disassembly through covalent binding with reactive disulfide bond, resulting in fluorescence further increasing and SQSS labeling to SA that cannot be displaced by site binding ligands of SA. The self-assemblies of SQSS can selectively detect SA with continuous near-infrared (NIR) turn-on fluorescence response in 100% aqueous buffer solution. In addition, SQSS showed the potential application of imaging SA in living cells. On the other hand, the loose assembly state of SQSS was also achieved in aqueous solution with 20% CH3CN. In this media, thiol-containing glutathione (GSH) caused the disassembly of SQSS with turn-on fluorescence response through interaction with disulfide bond. SQSS can selectively recognize GSH over other amino acids even in the presence of other sulfhydryl amino acids. As a proof-of-concept method, the molecular self-assembly through multisteps interactions would provide an ideal strategy for detection and live-cell imaging of biorelated molecules with high selectivity and signal-to-noise ratio.
机译:证明蛋白质的异常水平与疾病有关。因此,蛋白质感测有助于临床诊断和治疗。然而,在包括其他非蛋白生物分子的复杂生物系统中存在各种各样的蛋白质物种和相对低的浓度。因此,开发具有高选择性和灵敏度的蛋白质的有效方法仍然挑战。这里,基于鲁棒染料SQS的新的自组装方法通过二硫键缀合,用于在水溶液和活细胞中对血清白蛋白(SA)的高选择性和敏感检测。 SQSS可以通过聚集猝灭和均匀荧光共振能量转移(Homofret)淬火,自我组装成“紧凑的”聚集体,提供“惰性”二硫族组和非常低的背景荧光。 SQSS对SA的响应经历了两个级联阶段。在第一阶段,SA驱动SQSS的紧凑型组件,通过非共价相互作用形成具有快速(30秒)的松散的组件,从而在一定程度上提高荧光。在这种松散的组装状态下,SQSS中的二硫键是反应性的。在第二阶段,SA中的Cys34通过与反应性二硫键的共价结合而进一步拆卸,导致荧光进一步增加,并且SQSS标记为SA不能通过SA的位点结合配体置换的SA。 SQSS的自组装可以在100%水性缓冲溶液中选择性地检测具有连续近红外(NIR)开启荧光反应的SA。此外,SQSS显示在活细胞中的成像SA潜在应用。另一方面,在具有20%CH 3Cn的水溶液中也可以实现SQS的松散组装状态。在该介质中,含硫醇的谷胱甘肽(GSH)通过与二硫键相互作用,通过与二硫键相互作用导致SQSS的拆卸。即使在其他巯基氨基酸存在下,SQSS也可以在其他氨基酸上选择性地识别GSH。作为概念证据方法,通过多步相互作用的分子自组装将提供具有高选择性和信噪比的突出分子的检测和活细胞成像的理想策略。

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