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1.
Bio Protoc ; 10(3): e3503, 2020 Feb 05.
Article in English | MEDLINE | ID: mdl-33654730

ABSTRACT

Recording neural activity in unrestricted animals is necessary to unravel the neural basis of ethological behaviors. Recently, Neuropixels probes have made important strides in improving yield and lowering noise, but have limited use cases in freely moving animals. Although there are a number of studies demonstrating the use of these probes in headfixed mice, there are not established protocols for the use and reuse of them in a freely moving mouse. We therefore designed a novel device (the AMIE) that maximizes the potential value of these powerful probes. Here, we provide the technical drawings for the AMIE and detail its preparation, implantation, and explantation. With our approach, researchers can record hundreds of neurons during freely moving behavior across weeks of experiments, and then recycle valuable probes for future use.

2.
Elife ; 82019 08 14.
Article in English | MEDLINE | ID: mdl-31411559

ABSTRACT

The advent of high-yield electrophysiology using Neuropixels probes is now enabling researchers to simultaneously record hundreds of neurons with remarkably high signal to noise. However, these probes have not been well-suited to use in freely moving mice. It is critical to study neural activity in unrestricted animals for many reasons, such as leveraging ethological approaches to study neural circuits. We designed and implemented a novel device that allows Neuropixels probes to be customized for chronically implanted experiments in freely moving mice. We demonstrate the ease and utility of this approach in recording hundreds of neurons during an ethological behavior across weeks of experiments. We provide the technical drawings and procedures for other researchers to do the same. Importantly, our approach enables researchers to explant and reuse these valuable probes, a transformative step which has not been established for recordings with any type of chronically-implanted probe.


Subject(s)
Behavior, Animal , Electroencephalography/instrumentation , Electroencephalography/methods , Neurophysiology/instrumentation , Neurophysiology/methods , Animals , Mice
3.
Neurochem Int ; 100: 30-34, 2016 11.
Article in English | MEDLINE | ID: mdl-27568861

ABSTRACT

The dorsal medial striatum is a crucial part of the neural network that subserves dynamic, goal-directed behaviors. Functional output of this nucleus is shaped, in part, by the influence of glutamatergic inputs. Striatal cholinergic systems have the capacity to modulate these excitatory inputs through presynaptic nicotinic acetylcholine receptors (nAChRs); however, the individual contribution of the two major nicotinic receptor subtypes, α4ß2 and α7, to such modulation is not well characterized. In the present experiments, glutamate biosensors were used to monitor nAChR-dependent glutamate release with high temporal precision in the dorsal medial striatum of rats. Both α4ß2 and α7 nAChRs were found to potently modulate glutamate release; however the two receptor subtypes do so in strikingly different ways. α7 nAChRs appear to enhance release from glutamatergic terminals. In contrast, α4ß2 nAChRs act as a brake on glutamate release via an interaction with local dopaminergic inputs and D2 receptors. Combined, the present data reveal the capacity of local striatal cholinergic signaling to dynamically modulate excitatory inputs through nAChRs.


Subject(s)
Glutamic Acid/metabolism , Presynaptic Terminals/drug effects , Receptors, Nicotinic/metabolism , Acetylcholine/metabolism , Animals , Cells, Cultured , Corpus Striatum/drug effects , Corpus Striatum/metabolism , Dopamine/metabolism , Male , Nicotine/pharmacology , Presynaptic Terminals/metabolism , Rats, Long-Evans
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