用于白细胞介素-6无标记定量的MIP修饰多孔硅光学传感器

MIP-Modified Porous Silicon Optical Sensor for Interleukin-6 Label-Free Quantification.

作者信息

Nocerino Valeria, Siciliano Giulia, Bianco Monica, Rea Ilaria, Dardano Principia, Chiriacò Maria Serena, Ferrara Francesco, Gigli Giuseppe, Primiceri Elisabetta, De Stefano Luca

机构信息

Institute of Applied Sciences and Intelligent Systems (ISASI), National Research Council (CNR), Via Pietro Castellino 111, 80131 Napoli, Italy.

Department of Electrical Engineering and Information Technology, University of Naples Federico II, Via Claudio 21, 80125 Napoli, Italy.

出版信息

Biosensors (Basel). 2025 May 17;15(5):320. doi: 10.3390/bios15050320.

Abstract

In this study, we present an innovative optical biosensor designed to detect Interleukin-6 (IL-6), a pivotal cytokine implicated in many pathological conditions. Our sensing platform is made of a porous silicon (PSi) nanostructured substrate modified with a thin (~5 nm) molecularly imprinted polymer (MIP), ensuring both high specificity and sensitivity toward IL-6 molecules. The fabrication process involves electrochemical etching of silicon chips to create the porous structure, followed by the electrodeposition of the MIP, which is tailored to selectively bind the IL-6 target. Extensive testing over a broad IL-6 concentration range demonstrates a clear, proportional optical response, yielding a limit of detection (LOD) of 13 nM. Moreover, the biosensor robustness was verified by evaluating its performance in bovine serum, a complex biological matrix. Despite the presence of various interfering components, the sensor maintained its selectivity and displayed minimal matrix effects, underlining its practical applicability in real-world diagnostic scenarios.

摘要

在本研究中,我们展示了一种创新的光学生物传感器,旨在检测白细胞介素-6(IL-6),这是一种在许多病理状况中起关键作用的细胞因子。我们的传感平台由多孔硅(PSi)纳米结构基底制成,该基底用一层薄(约5纳米)的分子印迹聚合物(MIP)进行了修饰,确保对IL-6分子具有高特异性和高灵敏度。制造过程包括对硅芯片进行电化学蚀刻以形成多孔结构,随后进行MIP的电沉积,MIP经过定制可选择性结合IL-6靶标。在较宽的IL-6浓度范围内进行的广泛测试显示出清晰的、成比例的光学响应,检测限(LOD)为13 nM。此外,通过评估其在牛血清(一种复杂的生物基质)中的性能,验证了生物传感器的稳健性。尽管存在各种干扰成分,但该传感器保持了其选择性,并显示出最小的基质效应,突出了其在实际诊断场景中的实际适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41cf/12109668/5a601b7562c7/biosensors-15-00320-g001.jpg

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