There is an urgent need for predictive in vitro models to improve disease modeling and drug target identification and validation, especially for neurological disorders. Cerebral organoids, as alternative methods to in vivo studies, appear now as powerful tools to decipher complex biological processes thanks to their ability to recapitulate many features of the human brain. Combining these innovative models with microfluidic technologies, referred to as brain organoids-on-chips, allows us to model the microenvironment of several neuronal cell types in 3D. Thus, this platform opens new avenues to create a relevant in vitro approach for preclinical applications in neuroscience. The transfer to the pharmaceutical industry in drug discovery stag...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
Purpose of reviewThe modeling of biological processes in vitro provides an important tool to better ...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
Neurological disorders are the leading cause of disability and the second largest cause of death wor...
Brain organoids are 3D self-assembled structures composed of hundreds of thousands to millions of ce...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
Microfluidics opened the possibility to model the physiological environment by controlling fluids fl...
Microfluidics opened the possibility to model the physiological environment by controlling fluids fl...
The complexity of the human brain creates significant, almost insurmountable challenges for neurolog...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
Purpose of reviewThe modeling of biological processes in vitro provides an important tool to better ...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
Neurological disorders are the leading cause of disability and the second largest cause of death wor...
Brain organoids are 3D self-assembled structures composed of hundreds of thousands to millions of ce...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
Neurological disorders are among the leading causes of death worldwide, accounting for almost all on...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
Microfluidics opened the possibility to model the physiological environment by controlling fluids fl...
Microfluidics opened the possibility to model the physiological environment by controlling fluids fl...
The complexity of the human brain creates significant, almost insurmountable challenges for neurolog...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...
Purpose of reviewThe modeling of biological processes in vitro provides an important tool to better ...
In this article, we review brain-on-a-chip models and associated underlying technologies. Micro-nano...