Department of Electrical and Computer Engineering, Université Laval, Québec Canada.
Department of Ophthalmology and Otolaryngology-Head and Neck Surgery, Université Laval, Québec Canada.
Philos Trans A Math Phys Eng Sci. 2022 Jul 25;380(2228):20210016. doi: 10.1098/rsta.2021.0016. Epub 2022 Jun 6.
Neurotransmitter sensing in the brain is crucial for the understanding of neuro-degenerative diseases. Most modern methods for the purpose rely on bulky instruments or are disruptive to the neurotransmitter medium. In this work, we describe and evaluate the design of a novel, compact and non-invasive instrument for neurotransmitter detection based on the colorimetric sensing method. The instrument includes a grism-based spectrometer that measures the wavelength shift of gold nanoparticles that are functionalized with aptamers to act as neurotransmitter-specific markers. It also includes microfluidic and electronic subsystems for sample preparation and control, and processing of the obtained signal. The instrument is tested with gold nanoparticles and its performance is compared to that of a commercial instrument, showing that the designed prototype matches the commercial instrument in performance while being much smaller, and it can surpass it with further improvements. This article is part of the theme issue 'Advanced neurotechnologies: translating innovation for health and well-being'.
大脑中的神经递质感应对于理解神经退行性疾病至关重要。目前大多数用于该目的的方法都依赖于庞大的仪器,或者对神经递质介质具有破坏性。在这项工作中,我们描述并评估了一种基于比色传感方法的新型紧凑、非侵入式神经递质检测仪器的设计。该仪器包括一个基于棱栅的光谱仪,用于测量与适体功能化的金纳米粒子的波长位移,这些适体用作神经递质特异性标记物。它还包括微流控和电子子系统,用于样品制备和控制,以及获得的信号的处理。该仪器使用金纳米粒子进行了测试,并将其性能与商业仪器进行了比较,结果表明设计的原型在性能上与商业仪器相匹配,同时体积更小,如果进一步改进,它甚至可以超越商业仪器。本文是主题为“高级神经技术:为健康和福祉转化创新”的一部分。