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引用次数: 0
摘要
开发血管内皮生长因子(VEGF)蛋白对早期癌症诊断和癌症治疗监测至关重要。本研究介绍了一种电化学传感器的设计和表征,该传感器利用了一种自组装 DNA 类似物结构,用于灵敏、选择性地检测血管内皮生长因子。该适配体结构由单链 DNA 的三个不同部分组成,这些部分在集成到传感器之前已经组装好。利用电化学沉积技术将基于聚吡咯(Ppy)的层沉积到丝网印刷碳电极(SPCE)上,然后在电化学形成的 Ppy 基质((DNA aptamer)/Ppy)中夹带自组装的 DNA aptamer 结构。传感器对血管内皮生长因子的响应是通过脉冲安培检测(PAD)来测量的,与裸PY相比,DNA适配体/PY结构的性能更强。该传感器具有很高的灵敏度,对血管内皮生长因子的检测限(LOD)为 0.21 nM。利用 Langmuir 等温线模型分析了溶液中的血管内皮生长因子与固定 DNA aptamer/Ppy 结构之间的相互作用行为。所开发的电化学生物传感器有望在体外应用于早期癌症诊断和治疗监测,实现对病人样本的快速筛查。
Electrochemical sensor for vascular endothelial growth factor based on self-assembling DNA aptamer structure.
Developing vascular endothelial growth factor (VEGF) protein is essential for early cancer diagnosis and cancer treatment monitoring. This study presents the design and characterisation of an electrochemical sensor utilising a self-assembling DNA aptamer structure for the sensitive and selective detection of VEGF. The aptamer structure comprises three different parts of single-stranded DNA that are assembled prior to integration into the sensor. Polypyrrole (Ppy)-based layers were deposited onto screen-printed carbon electrodes (SPCEs) using an electrochemical deposition technique, followed by the entrapment of a self-assembled DNA aptamer structure within electrochemically formed Ppy matrix ((DNA aptamer)/Ppy). The response to the sensor toward VEGF was measured by the pulsed amperometric detection (PAD), highlighting the enhanced performance of DNA aptamer/Ppy configuration compared to bare Ppy. The sensor exhibited high sensitivity, achieving a limit of detection (LOD) of 0.21 nM for VEGF. The interaction behaviour between VEGF in the solution and the immobilise DNA aptamer/Ppy-based structure was analysed using Langmuir isotherm model. The developed electrochemical biosensor is promising for in vitro applications in early cancer diagnostics and treatment monitoring, enabling rapid screening of patient samples.
期刊介绍:
The Science of the Total Environment is an international journal dedicated to scientific research on the environment and its interaction with humanity. It covers a wide range of disciplines and seeks to publish innovative, hypothesis-driven, and impactful research that explores the entire environment, including the atmosphere, lithosphere, hydrosphere, biosphere, and anthroposphere.
The journal's updated Aims & Scope emphasizes the importance of interdisciplinary environmental research with broad impact. Priority is given to studies that advance fundamental understanding and explore the interconnectedness of multiple environmental spheres. Field studies are preferred, while laboratory experiments must demonstrate significant methodological advancements or mechanistic insights with direct relevance to the environment.