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Updated: Aug 4, 2026

Rapid Homogeneous Detection of Biological Assays Using Magnetic Modulation Biosensing System
Published on: June 13, 2010
Plataforma magnética de nanopartículas funcionalizadas con azida para el procesamiento rápido de esputo en un solo
Bilsen Tural1, Alican Bilden2, Erdal Ertaş3
1Department of Nanotechnology, Institute of Science, Dicle University, Diyarbakir 21280, Turkey; Department of Chemistry, Institute of Science, Dicle University, Diyarbakir 21280, Turkey.
Abstract:
Tuberculosis (TB) remains a global health challenge requiring rapid and reliable diagnostic tools. Here, azide-functionalized magnetic nanoparticles (MNPs-N₃) were synthesized, characterized, and applied for one-tube detection of Mycobacterium tuberculosis (Mtb) in sputum. Structural analyses including Fourier-transform infrared (FT-IR), transmission electron microscopy (TEM), scanning electron microscopy (SEM), dynamic light scattering (DLS), and vibrating sample magnetometry (VSM) confirmed successful functionalization, uniform morphology, and preserved superparamagnetism. MNPs-N₃ were integrated into modified Ehrlich-Ziehl-Neelsen (MNPs-N₃-assisted EZN staining) and auramine-rhodamine (MNPs-N₃-assisted AR staining) staining protocols to enhance bacterial capture and visualization without decontamination or centrifugation. Control experiments using non-functionalized magnetic nanoparticles showed no bacterial co-localization, supporting the specificity of the azide-mediated interaction. The entire process was completed within one hour, offering a rapid alternative to conventional culture requiring ≥ 41 days. Using Mycobacterial Growth Indicator Tube (MGIT) culture as the reference, MNPs-N₃-assisted AR staining achieved 99 % sensitivity and 97 % specificity, outperforming MNPs-N₃-assisted EZN staining (95 % and 96 %, respectively). Diagnostic indices, including Youden index (0.96) and F1-score (0.98), demonstrated excellent agreement with culture results. These findings establish MNPs-N₃ as a fast, efficient, and cost-effective tool for Mtb diagnosis. The single-tube workflow minimizes contamination risk and simplifies laboratory handling, supporting potential application in resource-limited settings. Further optimization and large-scale clinical validation are still warranted.
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