Jee Lee Hyun, Vallier Julia, Lu Hang
School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, USA.
React Chem Eng. 2024 Mar 1;9(3):666-676. doi: 10.1039/d3re00516j. Epub 2023 Nov 23.
Monitoring an animal's brain activity during motion provides a means to interpret the brain activity in the context of movement. However, it is challenging to obtain information about the animal's movement during neural imaging in the popular model organism due to its small size. Here, we present a microfluidic tool to immobilize only the head region of for simultaneous recording of neuronal activity and tail movement. We combine hydrogel photopolymerization and microfluidics to realize controlled head immobilization in a semi-continuous fashion. To optimize the immobilization process, we characterize the hydrogel polymerization under different experimental conditions, including under the effect of fluid flow. We show that the Damköhler number specifically defined for our reactive transport phenomena can predict the success of such photopolymerized hydrogels used for sample immobilization. In addition to simultaneous recording of neural activity and behavior in , we demonstrate our method's capability to temporarily reconfigure fluid flow and deliver chemical stimuli to the animal's nose to examine the animal's responses. We envision this approach to be useful for similar recordings for other small motile organisms, as well as scenarios where microfluidics and polymerization are used to control flow and rection.
在动物运动过程中监测其大脑活动提供了一种在运动背景下解释大脑活动的方法。然而,由于模式生物体型小,在神经成像过程中获取有关其运动的信息具有挑战性。在这里,我们展示了一种微流体工具,仅固定其头部区域,以便同时记录神经元活动和尾巴运动。我们将水凝胶光聚合和微流体技术相结合,以半连续方式实现对头部的可控固定。为了优化固定过程,我们表征了不同实验条件下(包括流体流动影响下)的水凝胶聚合情况。我们表明,专门为我们的反应传输现象定义的达姆科勒数可以预测用于样本固定的此类光聚合水凝胶的成功情况。除了在同时记录神经活动和行为外,我们还展示了我们的方法能够临时重新配置流体流动并将化学刺激传递到动物鼻子以检查动物反应的能力。我们设想这种方法对于其他小型活动生物的类似记录以及使用微流体和聚合来控制流动和反应的场景将是有用的。