The complexity of neurons and neuronal circuits in brain tissue requires the genetic manipulation, labeling, and tracking of single cells. However, current methods for manipulating cells in brain tissue are limited to either bulk techniques, lacking single-cell accuracy, or manual methods that provide single-cell accuracy but at significantly lower throughputs and repeatability. Here, we demonstrate high-throughput, efficient, reliable, and combinatorial delivery of multiple genetic vectors and reagents into targeted cells within the same tissue sample with single-cell accuracy. Our system automatically loads nanoliter-scale volumes of reagents into a micropipette from multiwell plates, targets and transfects single cells in brain tissues u...
ABSTRACT: Nanoprobe-based techniques have emerged as an efficient tool for the manipulation and anal...
The powerful suite of available genetic tools is driving tremendous progress in understanding mouse ...
To understand and control complex tissues, the ability to genetically manipulate single cells is req...
The complexity of neurons and neuronal circuits in brain tissue requires the genetic manipulation, l...
Genetic tools that permit functional or connectomic analysis of neuronal circuits are rapidly transf...
Transfection of cells by electroporation is a widely used and efficient method. Recently, it has bee...
We report an electroporation technique for targeting gene transfer to individual cells in intact tis...
SummaryTo understand fine-scale structure and function of single mammalian neuronal networks, we dev...
Electroporation has established itself as a critical method for transferring specific genes into cel...
AbstractWe report an electroporation technique for targeting gene transfer to individual cells in in...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
The highly heterogeneous nature of cells in the context of native tissue environ-ments necessitates ...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...
This microinjection protocol allows the manipulation and tracking of neural stem and progenitor cell...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
ABSTRACT: Nanoprobe-based techniques have emerged as an efficient tool for the manipulation and anal...
The powerful suite of available genetic tools is driving tremendous progress in understanding mouse ...
To understand and control complex tissues, the ability to genetically manipulate single cells is req...
The complexity of neurons and neuronal circuits in brain tissue requires the genetic manipulation, l...
Genetic tools that permit functional or connectomic analysis of neuronal circuits are rapidly transf...
Transfection of cells by electroporation is a widely used and efficient method. Recently, it has bee...
We report an electroporation technique for targeting gene transfer to individual cells in intact tis...
SummaryTo understand fine-scale structure and function of single mammalian neuronal networks, we dev...
Electroporation has established itself as a critical method for transferring specific genes into cel...
AbstractWe report an electroporation technique for targeting gene transfer to individual cells in in...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
The highly heterogeneous nature of cells in the context of native tissue environ-ments necessitates ...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...
This microinjection protocol allows the manipulation and tracking of neural stem and progenitor cell...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
ABSTRACT: Nanoprobe-based techniques have emerged as an efficient tool for the manipulation and anal...
The powerful suite of available genetic tools is driving tremendous progress in understanding mouse ...
To understand and control complex tissues, the ability to genetically manipulate single cells is req...