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Development of Hollow Electrochemiluminescent Nanocubes Combined with a Multisite-Anchored DNA Nanomachine for Mycotoxin Detection

机译:中空电化学氧化纳米核糖的研制与多态锚定DNA纳米机联合用于霉菌毒素检测

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摘要

Polycyclic aromatic hydrocarbons (PAHs) are regarded as promising electrochemiluminescent (ECL) emitters owing to their high quantum efficiency and inexpensive production. Despite the fact that the ECL properties of the pure PAH microcrystal (such as rubrene microcrystals, Rub MCs) have gained extensive attention, it is a challenge in controlling the morphology and size to reduce the inner filter effect. Herein, an advanced ECL emitter of palladium nanoparticle-functionalized hollow PAH-metal nanocubes was prepared by an in situ redox deposition method (the resultant nanocomposites were abbreviated as [email?protected] nanocubes). Specifically, the rubrene-decorated [email?protected] nanocubes ([email?protected] nanocubes) were prepared using the [email?protected] nanocubes as a template and a rubrene cation radical (Rub~(?+)) as a reductant, and then Pd nanoparticles (Pd NPs) were in situ reduced on the surface of [email?protected] nanocubes. Impressively, compared with the Rub MCs, [email?protected] nanocubes showed uniform size and significantly enhanced ECL efficiency and intensity in the aqueous media. As a proof-of-concept, the [email?protected] nanocube-based ECL biosensing platform combined with a multisite-anchored DNA nanomachine was constructed for ochratoxin A (OTA, a type of mycotoxin) detection. The DNA nanomachine covered with high-density recognizing sequences could operate toehold-mediated strand displacement amplification on the sensing platform and promote the movement efficiency and velocity greatly. Due to the advanced performance of [email?protected] nanocubes and high recognition efficiency of the DNA nanomachine, the proposed biosensor for OTA detection can achieve a detection limit of 4.7 fg/mL ranging from 0.01 to 100 pg/mL, which offers an ingenious method for the further application of PAHs.
机译:多环芳烃(PAHs)因其量子效率高、生产成本低而被认为是很有前途的电化学发光材料。尽管纯多环芳烃微晶(如rubrene微晶、Rub-MCs)的ECL性质已得到广泛关注,但控制其形貌和尺寸以降低内滤效应仍然是一个挑战。在此,通过原位氧化还原沉积方法制备了钯纳米粒子功能化中空PAH金属纳米立方体的高级ECL发射体(所得纳米复合材料缩写为[email?protected]纳米立方体)。具体而言,使用[电子邮件保护的]纳米立方体作为模板,以rubrene阳离子自由基(Rub~(?+))作为还原剂,制备了rubrene修饰的[电子邮件保护的]纳米立方体([电子邮件保护的]纳米立方体),然后在[电子邮件保护的]纳米立方体表面原位还原钯纳米颗粒(Pd NP)。令人印象深刻的是,与Rub MCs相比,[受电子邮件保护的]纳米立方体在水介质中显示出均匀的尺寸和显著增强的ECL效率和强度。作为概念证明,基于[电子邮件保护]纳米立方体的ECL生物传感平台与多点锚定DNA纳米机器相结合,用于赭曲霉毒素a(OTA,一种真菌毒素)检测。覆盖高密度识别序列的DNA纳米机器可以在传感平台上进行脚趾支撑介导的链位移放大,极大地提高运动效率和速度。由于[email?protected]纳米立方体的先进性能和DNA纳米机器的高识别效率,用于OTA检测的生物传感器可以达到4.7 fg/mL的检测限,范围从0.01到100 pg/mL,这为进一步应用多环芳烃提供了一种巧妙的方法。

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  • 来源
    《Analytical chemistry》 |2021年第12期|共8页
  • 作者单位

    Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University) Ministry of Education College of Chemistry and Chemical Engineering Southwest University;

    Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University) Ministry of Education College of Chemistry and Chemical Engineering Southwest University;

    Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University) Ministry of Education College of Chemistry and Chemical Engineering Southwest University;

    Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University) Ministry of Education College of Chemistry and Chemical Engineering Southwest University;

    Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University) Ministry of Education College of Chemistry and Chemical Engineering Southwest University;

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  • 正文语种 eng
  • 中图分类 分析化学;
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