The use of artificial, prepatterned neuronal networks in vitro is a promising approach for studying the development and dynamics of small neural systems in order to understand the basic functionality of neurons and later on of the brain. The present work presents a high fidelity and robust procedure for controlling neuronal growth on substrates such as silicon wafers and glass, enabling us to obtain mature and durable neural networks of individual cells at designed geometries. It offers several advantages compared to other related techniques that have been reported in recent years mainly because of its high yield and reproducibility. The procedure is based on surface chemistry that allows the formation of functional, tailormade neural archi...
Neural cultures are very useful in neuroscience, providing simpler and better controlled systems tha...
Artificially grown neuronal cultures of brain cells have been used for decades in the attempt to rep...
In this contribution, the authors present our advances in three-dimensional (3D) neuronal cell cultu...
In neural interface platforms, cultures are often carried out on a flat, open, rigid, and opaque sub...
International audienceDespite significant progress, our knowledge of the functioning of the central ...
Neuronal signal transduction and communication in vivo is based on highly complex and dynamic networ...
The generation of 3D networks of primary neurons is a big challenge in neuroscience. Here, a novel m...
The generation of 3D networks of primary neurons is a big challenge in neuroscience. Here, a novel m...
Biological systems can, in many aspects, be superior to existing control, computing, and warfare-age...
Objective. In this work we adapted a protocol for the fast generation of human neurons to build 3D n...
The brain-on-a-chip technology aims to provide an efficient and economic in vitro platform for brain...
To recreate in vitro 3D neuronal circuits will ultimately increase the relevance of results from cul...
To recreate in vitro 3D neuronal circuits will ultimately increase the relevance of results from cul...
Nanowire electrode arrays are widely used to probe neuronal and cardiomyocyte’s activities and are p...
Artificially grown neuronal cultures of brain cells have been used for decades in the attempt to rep...
Neural cultures are very useful in neuroscience, providing simpler and better controlled systems tha...
Artificially grown neuronal cultures of brain cells have been used for decades in the attempt to rep...
In this contribution, the authors present our advances in three-dimensional (3D) neuronal cell cultu...
In neural interface platforms, cultures are often carried out on a flat, open, rigid, and opaque sub...
International audienceDespite significant progress, our knowledge of the functioning of the central ...
Neuronal signal transduction and communication in vivo is based on highly complex and dynamic networ...
The generation of 3D networks of primary neurons is a big challenge in neuroscience. Here, a novel m...
The generation of 3D networks of primary neurons is a big challenge in neuroscience. Here, a novel m...
Biological systems can, in many aspects, be superior to existing control, computing, and warfare-age...
Objective. In this work we adapted a protocol for the fast generation of human neurons to build 3D n...
The brain-on-a-chip technology aims to provide an efficient and economic in vitro platform for brain...
To recreate in vitro 3D neuronal circuits will ultimately increase the relevance of results from cul...
To recreate in vitro 3D neuronal circuits will ultimately increase the relevance of results from cul...
Nanowire electrode arrays are widely used to probe neuronal and cardiomyocyte’s activities and are p...
Artificially grown neuronal cultures of brain cells have been used for decades in the attempt to rep...
Neural cultures are very useful in neuroscience, providing simpler and better controlled systems tha...
Artificially grown neuronal cultures of brain cells have been used for decades in the attempt to rep...
In this contribution, the authors present our advances in three-dimensional (3D) neuronal cell cultu...