Toward a Plasmon-Based Biosensor throughout a Thermoresponsive Hydrogel

IF 4.7 2区 化学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Anne Parra, Óscar Ahumada, Andreas Thon, Valerio Pini, Julia Mingot, Elaine Armelin, Carlos Alemán and Sonia Lanzalaco*, 
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引用次数: 0

Abstract

This study investigates the potential of thermoresponsive hydrogels as innovative substrates for future in vitro diagnostic (IVD) applications using AVAC technology, developed and patented by the Mecwins biomedical company. In order to convert the hydrogel in a substrate compatible with AVAC technology, the following prerequisites were established: (1) the hydrogel layer needs to be permeable to gold nanoparticles (AuNPs), and (2) the optical properties of the hydrogel should not interfere with the detection of AuNPs with AVAC technology. These two key aspects are evaluated in this work. A silicon substrate (Sil) was coated with a layer of a thermosensitive hydrogel (TSH) based on poly(N-isopropylacrylamide-co-N,N′-methylene bis(acrylamide) (PNIPAAm-co-MBA). The TSH offers the advantage of easy modulation of its porosity through cross-linker adjustments, crucial for the plasmonic nanoparticle (NP) permeation. The platforms, denominated as (Sil)-g-(PNIPAAm-co-MBA), were fabricated by changing the cross-linker concentrations and exploring three deposition methods: drop casting (DC), spin coating (SC), and 3D printing (3D); the DC approach resulted in a very homogeneous and thin hydrogel layer, very suitable for the final application. Furthermore, after physical-chemical characterization, the TSH demonstrated its functionality in regulating nanoparticle absorption, and AVAC technology’s capability to precisely identify such NPs through the hydrogel matrix was validated. The proposed hydrogel platform fulfills the initial requirements, opening the possibility for employing these hydrogels as dynamic substrates in sandwich immunoassay devices. The next step in the development of the hydrogel substrate would be its functionalization with biorecognition groups to allow for biomarker detection. By leveraging their enhanced capture efficiency and the ability to manipulate particle flow thermally, we anticipate a significant advancement in diagnostic methodologies, combining the spatial benefits of three-dimensional hydrogel structures with the precision of AVAC’s digital detection.

在热致伸缩水凝胶中开发基于等离子体的生物传感器
本研究利用 Mecwins 生物医学公司开发并获得专利的 AVAC 技术,探讨了热致伸缩性水凝胶作为创新基质在未来体外诊断 (IVD) 应用中的潜力。为了将水凝胶转化为与 AVAC 技术兼容的基底,我们确定了以下前提条件:(1) 水凝胶层需要能渗透金纳米粒子 (AuNPs);(2) 水凝胶的光学特性不应干扰 AVAC 技术对 AuNPs 的检测。本研究对这两个关键方面进行了评估。在硅基底(Sil)上涂覆了一层基于聚(N-异丙基丙烯酰胺-N,N′-亚甲基双丙烯酰胺)(PNIPAAm-co-MBA)的热敏水凝胶(TSH)。TSH 的优点是可以通过调整交联剂轻松调节其孔隙率,这对质子纳米粒子(NP)的渗透至关重要。通过改变交联剂的浓度和探索三种沉积方法:滴注(DC)、旋涂(SC)和三维打印(3D),制备出了被称为(Sil)-g-(PNIPAAm-co-MBA)的平台。此外,经过物理化学表征,TSH 证明了其在调节纳米粒子吸收方面的功能,AVAC 技术通过水凝胶基质精确识别此类 NPs 的能力也得到了验证。拟议的水凝胶平台满足了最初的要求,为将这些水凝胶用作夹心免疫测定装置中的动态基质提供了可能。水凝胶基质的下一步开发工作是用生物识别基团对其进行功能化,以便进行生物标记物检测。通过利用其更高的捕获效率和热操纵粒子流的能力,我们预计诊断方法将取得重大进展,将三维水凝胶结构的空间优势与 AVAC 数字检测的精确性结合起来。
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来源期刊
CiteScore
7.20
自引率
6.00%
发文量
810
期刊介绍: ACS Applied Polymer Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics, and biology relevant to applications of polymers. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates fundamental knowledge in the areas of materials, engineering, physics, bioscience, polymer science and chemistry into important polymer applications. The journal is specifically interested in work that addresses relationships among structure, processing, morphology, chemistry, properties, and function as well as work that provide insights into mechanisms critical to the performance of the polymer for applications.
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