Diagnosis of Mycobacterium tuberculosis using palladium-platinum bimetallic nanoparticles combined with paper-based analytical devices

In this study, we demonstrate that palladium-platinum bimetallic nanoparticles (Pd@Pt NPs) as the nanozyme, combined with a multi-layer paper-based analytical device and DNA hybridization, can successfully detect . This nanozyme has peroxidase-like properties, which can increase the oxidation rate o...

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Veröffentlicht in:Nanoscale 2024-03, Vol.16 (12), p.5988-5998
Hauptverfasser: Tung, Cheng-Yang, Tsai, Tsung-Ting, Chiu, Ping-Yeh, Viter, Roman, Ramanavičius, Arũnas, Yu, Cheng-Ju, Chen, Chien-Fu
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Sprache:eng
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Zusammenfassung:In this study, we demonstrate that palladium-platinum bimetallic nanoparticles (Pd@Pt NPs) as the nanozyme, combined with a multi-layer paper-based analytical device and DNA hybridization, can successfully detect . This nanozyme has peroxidase-like properties, which can increase the oxidation rate of the substrate. Compared with horseradish peroxidase, which is widely used in traditional detection, the Michaelis constants of Pd@Pt NPs are fourteen and seventeen times lower than those for 3,3',5,5'-tetramethylbenzidine and H O , respectively. To verify the catalytic efficiency of Pd@Pt NPs, this study will execute molecular diagnosis of . We chose the IS fragment as the target DNA and divided the complementary sequences into the capture DNA and reporter DNA. They were modified on paper and Pd@Pt NPs, respectively, to detect on a paper-based analytical device. With the above-mentioned method, we can detect target DNA within 15 minutes with a linear range between 0.75 and 10 nM, and a detection limit of 0.216 nM. These results demonstrate that the proposed platform (a DNA-nanozyme integrated paper-based analytical device, dnPAD) can provide sensitive and on-site infection prognosis in areas with insufficient medical resources.
ISSN:2040-3364
2040-3372
DOI:10.1039/d3nr05508f