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A Fluidic Device for Immunomagnetic Separation of Foodborne Bacteria Using Self-Assembled Magnetic Nanoparticle Chains

机译:使用自组装磁性纳米粒子链的免疫磁性分离食源性细菌的流体装置。

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摘要

Immunomagnetic separation has been widely used for the separation and concentration of foodborne pathogens from complex food samples, however it can only handle a small volume of samples. In this paper, we presented a novel fluidic device for the specific and efficient separation and concentration of salmonella typhimurium using self-assembled magnetic nanoparticle chains. The laminated sawtooth-shaped iron foils were first mounted in the 3D-printed matrix and magnetized by a strong magnet to generate dot-array high gradient magnetic fields in the fluidic channel, which was simulated using COMSOL (5.3a, Burlington, MA, USA). Then, magnetic nanoparticles with a diameter of 150 nm, which were modified with the anti-salmonella polyclonal antibodies, were injected into the channel, and the magnetic nanoparticle chains were vertically formed at the dots and verified using a fluorescence inverted microscope. Finally, the bacterial sample was continuous-flow injected, and the target bacteria could be captured by the antibodies on the chains, followed by gold standard culture plating to determine the amount of the target bacteria. Under the optimal conditions, the target bacteria could be separated with a separation efficiency of 80% in 45 min. This fluidic device could be further improved using thinner sawtooth-shaped iron foils and stronger magnets to obtain a better dot-array magnetic field with larger magnetic intensity and denser dot distribution, and has the potential to be integrated with the existing biological assays for rapid and sensitive detection of foodborne bacteria.
机译:免疫磁分离已广泛用于从复杂食品样品中分离和浓缩食源性病原体,但是它只能处理少量样品。在本文中,我们提出了一种新型的流体装置,可利用自组装磁性纳米粒子链对鼠伤寒沙门氏菌进行特异和高效的分离和浓缩。首先将层压的锯齿形铁箔安装在3D打印的矩阵中,并用强磁体磁化,以在流体通道中生成点阵列高梯度磁场,这是使用COMSOL(5.3a,美国马萨诸塞州伯灵顿市进行模拟) )。然后,将用抗沙门氏菌多克隆抗体修饰的直径为150 nm的磁性纳米粒子注入通道中,并在点处垂直形成磁性纳米粒子链,并使用荧光倒置显微镜进行验证。最后,细菌样品被连续流动注射,目标细菌可以被链上的抗体捕获,然后用金标准培养板测定目标细菌的数量。在最佳条件下,可以在45分钟内分离目标细菌,分离效率为80%。可以使用更薄的锯齿形铁箔和更强的磁体来进一步改进此射流装置,以获得具有更大的磁场强度和更密集的点分布的更好的点阵磁场,并有可能与现有的生物学分析相结合,以进行快速,快速的检测。敏感地检测食源性细菌。

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