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首页> 外文期刊>ACS nano >Picomolar Biosensing and Conformational Analysis Using Artificial Bidomain Proteins and Terbium-to-Quantum Dot Forster Resonance Energy Transfer
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Picomolar Biosensing and Conformational Analysis Using Artificial Bidomain Proteins and Terbium-to-Quantum Dot Forster Resonance Energy Transfer

机译:Picomolar生物溶解和使用人工蛋白质蛋白质和铽 - 量子点福尔斯特共振能量转移的构象分析

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Although antibodies remain a primary recognition element in all forms of biosensing, functional limitations arising from their size, stability, and structure have motivated the development and production of many different artificial scaffold proteins for biological recognition. However, implementing such artificial binders into functional high-performance biosensors remains a challenging task. Here, we present the design and application of Forster resonance energy transfer (FRET) nanoprobes comprising small artificial proteins (alpha Rep bidomains) labeled with a Tb complex (Tb) donor on the C- terminus and a semiconductor quantum dot (QD) acceptor on the N-terminus. Specific binding of one or two protein targets to the alpha Reps induced a conformational change that could be detected by time-resolved Tb-to-QD FRET. These single-probe FRET switches were used in a separation-free solution-phase assay to quantify different protein targets at sub-nanomolar concentrations and to measure the conformational changes with sub-nanometer resolution. Probing ligand-receptor binding under physiological conditions at very low concentrations in solution is a special feature of FRET that can be efficiently combined with other structural characterization methods to develop, understand, and optimize artificial biosensors. Our results suggest that the alpha Rep FRET nanoprobes have a strong potential for their application in advanced diagnostics and intracellular live-cell imaging of ligand-receptor interactions.
机译:尽管抗体仍然是所有形式的生物传感的主要识别元素,但由于其尺寸,稳定性和结构而产生的功能限制促进了许多不同人造支架蛋白的生物学识别的开发和生产。然而,将这种人工粘合剂实施成功能性高性能生物传感器仍然是一个具有挑战性的任务。在这里,我们介绍了包含用C-末端和半导体量子点(QD)受体的Tb络合物(Tb)供体标记的小人工蛋白(αrep筛选)的福尔斯特共振能量转移(FRET)纳米植物的设计和应用n-末端。对α代表的一种或两种蛋白质靶标的特异性结合诱导可以通过时间分辨的TB-QD FRET检测的构象变化。这些单探针褶皱开关用于无间溶液相测定,以定量亚纳米摩尔浓度的不同蛋白质靶标,并测量与亚纳米分辨率的构象变化。在溶液中非常低浓度下在生理条件下探测配体受体结合是可以有效地与其他结构表征方法有效地结合开发,理解和优化人工生物传感器的特征。我们的研究结果表明,α代表释放纳米体纳米体具有强烈的应用在其在肝共和置相互作用的先进诊断和细胞内活细胞成像中的应用。

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