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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Dynamic and equilibrium performance of sensors based on short peptide ligands for affinity adsorption of human IgG using surface plasmon resonance
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Dynamic and equilibrium performance of sensors based on short peptide ligands for affinity adsorption of human IgG using surface plasmon resonance

机译:基于表面等离振子共振的基于短肽配体的人IgG亲和吸附传感器的动态和平衡性能

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This paper characterizes the potential of novel hexameric peptide ligands for on-line IgG detection in bioprocesses. Surface Plasmon Resonance (SPR) was used to study the binding of human IgG to the hexameric peptide ligand HWRGWV, which was covalently grafted to alkanethiol self-assembled monolayers (SAM) on gold surfaces. Peptide coupling on SAMs was verified, followed by covalent grafting of peptides with a removable Fmoc or acetylated N-termini via their C-termini to produce active peptide SPR sensors that were tested for IgG binding. The dynamics and extent of peptide-IgG binding were compared with results from a conventional system using protein A attached on a gold surface via disulfide monolayers. IgG binding to protein A on disulfide monolayers yielded equilibrium dissociation constants of 1.4 × 10~(-7) M. The corresponding dissociation constant value for the acetylated version of the peptide (Ac-HWRGWV) supported on alkanethiol SAM was 5.8 × 10~(-7) M and that for HWRGWV on the alkanethiol SAM (after de-protection of Fmoc-HWRGWVA) was 1.2 × 10~(-6) M. Maximum IgG binding capacities. Q_m of 6.7, 3.8, and 4.1 mg m~(-2) were determined for the protein A and the two forms of HWRGWV-based biosensors, respectively. Real-time data for the kinetics of adsorption were used to determine the apparent rate constants for adsorption and desorption. The results were analyzed to understand the mechanism of IgG binding to the protein and peptide ligands. It was found that the peptide-IgG binding was reaction controlled, however the protein A-IgG binding mechanism was partially mass transfer (diffusion) controlled. The adsorption rate constants. k_a, for the protein A ligand increased with decreasing concentration of analyte and the peptide ligand k_a values was constant at different IgG concentrations and flow rates.
机译:本文表征了新型六聚体肽配体在生物过程中在线IgG检测的潜力。表面等离子体共振(SPR)用于研究人IgG与六聚体肽配体HWRGWV的结合,后者被共价移植到金表面的烷硫醇自组装单分子膜(SAM)。验证了肽在SAM上的偶联,然后通过可移动的Fmoc或乙酰化的N末端(通过其C末端)将肽共价接枝,以生成活性肽SPR传感器,并对其进行IgG结合测试。将肽-IgG结合的动力学和程度与使用通过二硫键单层附着在金表面上的蛋白A的常规系统的结果进行了比较。 IgG与二硫键单层蛋白A结合产生的平衡解离常数为1.4×10〜(-7)M.在链烷硫醇SAM上负载的肽(Ac-HWRGWV)的乙酰化形式的相应解离常数为5.8×10〜( -7)M和链烷硫醇SAM上HWRGWV的M(去保护Fmoc-HWRGWVA后)为1.2×10〜(-6)M。最大IgG结合能力。对于蛋白A和两种基于HWRGWV的生物传感器,Q_m分别为6.7、3.8和4.1 mg m〜(-2)。吸附动力学的实时数据用于确定吸附和解吸的表观速率常数。分析结果以了解IgG与蛋白质和肽配体结合的机制。发现肽-IgG的结合是反应控制的,但是蛋白A-IgG的结合机制是部分质量转移(扩散)控制的。吸附速率常数。 k_a,对于蛋白质A配体,随着分析物浓度的降低而增加,而肽配体的k_a值在不同的IgG浓度和流速下保持恒定。

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