Bahavarnia Farnaz, Behyar Milad Baghal, Nilghaz Azadeh, Hasanzadeh Mohammad, Shadjou Nasrin
Nutrition Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.
Asian Nano Ink Science Based Company, Tabriz University of Medical Sciences, Tabriz, Iran.
Sci Rep. 2025 Jul 11;15(1):25138. doi: 10.1038/s41598-025-05743-1.
Riboflavin, vitamin B2, is an essential micronutrient involved in energy metabolism and cellular function, making its monitoring crucial for clinical diagnostics, food quality control, and nutritional research. In this study, a parafilm-based micro-array was fabricated and utilized for colorimetric detection of riboflavin using triangular silver nanoparticles (TA-AgNPs) as an optical probe. The interaction between riboflavin and silver nanoparticles induced changes in the NPs' localized surface plasmon resonance (LSPR), resulting in a visible color change. This phenomenon was systematically studied by varying riboflavin concentrations and observing the corresponding optical response using UV-Vis spectroscopy. Riboflavin was detected in human plasma samples using CMYK colorimetric integrated digital image analysis by smartphones with a linear detection range of 0.1 to 100 mM and low limit of quantification of 0.1 mM in the standard solution of analyte. Using the unique plasmonic properties of TA-AgNPs and the construction simplicity of parafilm-based micro-array system, we aimed to provide a cost-effective, portable, and efficient method for riboflavin detection. The proposed platform has the potential to develop point-of-care diagnostics and on-site testing by offering a robust alternative to traditional laboratory-based analytical techniques and well plates.
核黄素,即维生素B2,是一种参与能量代谢和细胞功能的必需微量营养素,因此对其进行监测对于临床诊断、食品质量控制和营养研究至关重要。在本研究中,制备了一种基于石蜡膜的微阵列,并利用三角形银纳米颗粒(TA-AgNPs)作为光学探针进行核黄素的比色检测。核黄素与银纳米颗粒之间的相互作用引起了纳米颗粒局部表面等离子体共振(LSPR)的变化,导致可见颜色变化。通过改变核黄素浓度并使用紫外-可见光谱观察相应的光学响应,对这一现象进行了系统研究。通过智能手机的CMYK比色积分数字图像分析,在人血浆样本中检测到了核黄素,在分析物标准溶液中的线性检测范围为0.1至100 mM,定量下限为0.1 mM。利用TA-AgNPs独特的等离子体特性和基于石蜡膜的微阵列系统的简单构造,我们旨在提供一种经济高效、便携且有效的核黄素检测方法。所提出的平台有可能通过提供一种强大的替代传统基于实验室的分析技术和微孔板的方法,开发即时诊断和现场检测。