While electrophysiological recordings from visually identified cell bodies or dendrites are routinely performed in cell culture and acute brain slice preparations, targeted recordings from the mammalian nervous system are currently not possible in vivo. The "blind" approach that is used instead is somewhat random and largely limited to common neuronal cell types. This approach prohibits recordings from, for example, molecularly defined and/or disrupted populations of neurons. Here we describe a method, which we call TPTP (two-photon targeted patching), that uses two-photon imaging to guide in vivo whole-cell recordings to individual, genetically labeled cortical neurons. We apply this technique to obtain recordings from genetically manipula...
Although we know a great deal about monosynaptic connectivity, transmission and integration in the m...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
AbstractWhile electrophysiological recordings from visually identified cell bodies or dendrites are ...
Two-photon-excited fluorescence laser-scanning microscopy (2PLSM) has provided a wealth of informati...
Two-photon-excited fluorescence laser-scanning microscopy (2PLSM) has provided a wealth of informati...
Understanding the functional principles of the mammalian cortical circuit is a major challenge in ne...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
Although we know a great deal about monosynaptic connectivity, transmission and integration in the m...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
Although we know a great deal about monosynaptic connectivity, transmission and integration in the m...
Although we know a great deal about monosynaptic connectivity, transmission and integration in the m...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
While electrophysiological recordings from visually identified cell bodies or dendrites are routinel...
AbstractWhile electrophysiological recordings from visually identified cell bodies or dendrites are ...
Two-photon-excited fluorescence laser-scanning microscopy (2PLSM) has provided a wealth of informati...
Two-photon-excited fluorescence laser-scanning microscopy (2PLSM) has provided a wealth of informati...
Understanding the functional principles of the mammalian cortical circuit is a major challenge in ne...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
Although we know a great deal about monosynaptic connectivity, transmission and integration in the m...
Here we describe an approach for making targeted patch-clamp recordings from single neurons in vivo,...
Although we know a great deal about monosynaptic connectivity, transmission and integration in the m...
Although we know a great deal about monosynaptic connectivity, transmission and integration in the m...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...
Here we describe an approach for making targeted patch−clamp recordings from single neurons in vivo,...