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用于病原体高通量鉴别的表面等离子体驱动的金纳米柱多阵列基因扩增方法

Plasmon-Driven Gold Nanopillar Multiarrayed Gene Amplification Methodology for the High-Throughput Discrimination of Pathogens.

作者信息

Seo Sung Eun, Kim Kyung Ho, Kim Seo Jin, Ko Kyong-Cheol, Kim Woo-Keun, Lee Kyoung G, Kwon Oh Seok

机构信息

SKKU Advanced Institute of Nanotechnology (SAINT), Sungkyunkwan University, Suwon, 16419, South Korea.

Korea Preclinical Evaluation Center, Korea Research Institute of Bioscience and Biotechnology (KRIBB), 125 Gwahak-ro, Yuseong-gu, Daejeon, 34141, South Korea.

出版信息

Adv Sci (Weinh). 2025 Mar;12(9):e2411849. doi: 10.1002/advs.202411849. Epub 2025 Jan 14.

Abstract

Molecular diagnosis limitations, including complex treatment processes, low cost-effectiveness, and operator-dependent low reproducibility, interrupt the timely prevention of disease spread and the development of medical devices for home and outdoor uses. A newly fabricated gold nanopillar array-based film is presented for superior photothermal energy conversion. Magnifying the metal film surface-to-volume ratio increases the photothermal energy conversion efficiency, resulting in a swift reduction in the gene amplification reaction time. Plasmonic energy-based ultrafast gene amplification and facile confirmation methodology offer a rapid disease discrimination platform for high-throughput multiplexed diagnosis. The superior performance of the gold nanopillar arrayed film is demonstrated by measuring the amount of pathogen (Vibrio cholerae) with a sensitivity of 10 cfu mL in 5.5 min. The newly engineered gold nanopillar arrayed film can be utilized to diagnose universal pathogens to achieve an increasingly successful complete cure.

摘要

分子诊断的局限性,包括复杂的治疗过程、低性价比以及依赖操作人员的低重现性,阻碍了疾病传播的及时预防以及家用和户外用医疗设备的开发。本文展示了一种新制备的基于金纳米柱阵列的薄膜,其具有卓越的光热能量转换性能。增大金属薄膜的表面积与体积之比可提高光热能量转换效率,从而迅速缩短基因扩增反应时间。基于等离子体能量的超快基因扩增和简便的确认方法为高通量多重诊断提供了一个快速的疾病鉴别平台。通过在5.5分钟内检测出浓度低至10 cfu/mL的病原体(霍乱弧菌),证明了金纳米柱阵列薄膜的卓越性能。新设计的金纳米柱阵列薄膜可用于诊断多种病原体,以实现越来越成功的彻底治愈。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8380/11884620/56e5325dcf64/ADVS-12-2411849-g004.jpg

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