Engineering Human iPSC Neural Circuits with Microfluidics and HD-MEA

Date
May 16, 2023
Type
User Stories
Tags
MaxOne
Microphysiological Systems
Neuronal Cell Cultures
Disease Modeling
Functional Phenotyping
Pharmacology & Toxicology
MaxLab Live
MaxOne
Microphysiological Systems
Neuronal Cell Cultures
About
鲁霍拉·哈比比博士
波恩大学 Busskamp 实验室

鲁霍拉·哈比贝是德国波恩大学布斯坎普教授实验室的博士后。之前,他在德累斯顿工业大学(德国,2021年)在布斯坎普教授的实验室担任博士后。他在德黑兰大学(伊朗2006年)获得生理学学位,并在热那亚的意大利理工学院(IIT)(2015年,意大利)完成了神经科学和大脑技术博士学位。他的研究重点是通过结合 MEA、微流控和光遗传学,对人类源神经元回路进行自下而上的工程。

"We use the Network and Activity scan to track the dynamic changes in activity maps of growing networks of human iPSC-derived neurons over time. We found that these changes in activity image matches well with dynamics of growing network morphology."

During the recent MxW Summit 2023, 3rd In-Vitro 2D & 3D Neuronal Networks Summit, held in Zurich, Switzerland, we had the opportunity to speak with Dr. Rouhollah Habibey, one of our invited speakers. We enthusiastically discussed his research work and the crucial role that the MaxOne HD-MEA system plays in it.

In this
conversation

鲁霍拉·哈比比博士

波恩大学 Busskamp 实验室

帕特里西亚·瓦莱里奥博士

麦克斯韦生物系统科学通信专家

Could you please summarize your research for us?

I work on bottom-up engineering of the in vivo-mimetic neural circuits on-dish/chip. To construct predefined neuronal structures on-chip, we use a combination of advanced techniques like microfluidics, Multi-Electrode Array (MEA) electrophysiology and optogenetics on human stem cell-derived neurons. The main goal is to develop functionally robust long-term in vitro platforms for modeling healthy and diseased brain circuits and translate them for biomedical applications like disease modeling, drug development and screening.

Can you explain how you are using MaxWell Biosystems products for your research?

We are using the MaxOne HD-MEA system to characterize long-term functional features of the engineered neurons and neuronal networks derived from human induced pluripotent stem cells (hiPSC). We combine long-term microscopy readouts with electrophysiology recordings to track morphology and function in developing human neuronal circuits over months. This data is exploited to estimate how neuronal cell movement and dynamic changes on network morphology can affect the functional output (functional phenotype) of growing networks.

Which feature of our products do you appreciate the most?

We use the Network and ActivityScan assays to track the dynamic changes in activity maps of growing networks of human iPSC-derived neurons over time. We found that these changes in activity image matches well with dynamics of growing network morphology. This is only possible by High-Density MEAs like MaxOne Chip and user-friendly MaxLab Live Software provided by MaxWell Biosystems.

Have there been any challenges and how did MaxWell Biosystems help to resolve them?

To engineer neuronal circuits on the MaxOne Chips, we needed to integrate them with microfluidic devices. To prevent axons from growing in undesired regions beneath the microfluidic device, the new MaxOne Chip for PDMS Applications, designed with a flat surface, proved to be an excellent solution. MaxWell Biosystems also provides an excellent repository of already developed scripts for analysis of neuronal data. The MaxWell Biosystems support team and the MaxWell Biosystems webinars are two useful resources to troubleshoot technical issues regarding cell culture, recording and analysis.

Is there anything else you would like to share?

The MaxLab Live Software is an excellent user-friendly tool to extract multiple features of cultured neuronal networks at subcellular resolution. This interface provides multi-dimensional access to data visualization including imaging the network active regions, synchronized burst activity profile, and tracking axonal activity.

Thank You

We would very much like to thank Dr. Rouhollah Habibey for his time to take part in this testimonial for MaxWell Biosystems. We are very appreciative of this collaboration.

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