Quantification and Mitigation of Site-Preferred Nonspecific Interactions in Single-Nanoparticle Biosensors

IF 9.1 1区 化学 Q1 CHEMISTRY, ANALYTICAL ACS Sensors Pub Date : 2025-03-17 DOI:10.1021/acssensors.4c03571
Jiayi Jin, Liwei Wu, Yushi Gao, Guangzhong Ma
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Abstract

Understanding the origin and behavior of nonspecific interactions is essential for advancing biosensing technologies. In this study, we investigate nonspecific interactions between a functionalized single nanoparticle (NP) and a sensor surface. The NP, tethered by a single DNA molecule, exhibits flexible motion that allows it to interact with the surface. Using surface plasmon resonance microscopy (SPRM) with nanometer precision, we tracked the motion dynamics of the NP and revealed that nonspecific binding leads to repeated transient trapping at the surface. The NP shows a preference for interacting with a particular site, indicating site-preferred nonspecific interactions. This behavior mimics specific binding events, emphasizing the need to mitigate such effects in biosensors. By systematically varying NP size, ionic strength, solution viscosity, blocking agents, and applying external forces, we identified external force as the most effective factor in reducing such nonspecific interactions. We hope these insights can provide strategies for designing next-generation single-NP and single-molecule biosensors with minimal nonspecific signals, thereby enhancing detection reliability.

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单纳米颗粒生物传感器中位点优选非特异性相互作用的量化和缓解
了解非特异性相互作用的起源和行为对于推进生物传感技术至关重要。在这项研究中,我们研究了功能化单纳米粒子(NP)与传感器表面之间的非特异性相互作用。NP由单个DNA分子束缚,表现出灵活的运动,使其能够与表面相互作用。利用纳米精度的表面等离子体共振显微镜(SPRM),我们跟踪了NP的运动动力学,并揭示了非特异性结合导致表面重复的瞬态捕获。NP表现出与特定位点交互的偏好,表明位点优先的非特异性交互。这种行为模拟了特定的结合事件,强调了在生物传感器中减轻这种影响的必要性。通过系统地改变NP大小、离子强度、溶液粘度、阻滞剂和施加外力,我们确定外力是减少这种非特异性相互作用的最有效因素。我们希望这些见解可以为设计具有最小非特异性信号的下一代单np和单分子生物传感器提供策略,从而提高检测可靠性。
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Streptavidin-coated polystyrene beads
来源期刊
ACS Sensors
ACS Sensors Chemical Engineering-Bioengineering
CiteScore
14.50
自引率
3.40%
发文量
372
期刊介绍: ACS Sensors is a peer-reviewed research journal that focuses on the dissemination of new and original knowledge in the field of sensor science, particularly those that selectively sense chemical or biological species or processes. The journal covers a broad range of topics, including but not limited to biosensors, chemical sensors, gas sensors, intracellular sensors, single molecule sensors, cell chips, and microfluidic devices. It aims to publish articles that address conceptual advances in sensing technology applicable to various types of analytes or application papers that report on the use of existing sensing concepts in new ways or for new analytes.
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