Literature DB >> 27571550

Stable long-term chronic brain mapping at the single-neuron level.

Tian-Ming Fu1, Guosong Hong1, Tao Zhou1, Thomas G Schuhmann2, Robert D Viveros2, Charles M Lieber1,2.   

Abstract

Stable in vivo mapping and modulation of the same neurons and brain circuits over extended periods is critical to both neuroscience and medicine. Current electrical implants offer single-neuron spatiotemporal resolution but are limited by such factors as relative shear motion and chronic immune responses during long-term recording. To overcome these limitations, we developed a chronic in vivo recording and stimulation platform based on flexible mesh electronics, and we demonstrated stable multiplexed local field potentials and single-unit recordings in mouse brains for at least 8 months without probe repositioning. Properties of acquired signals suggest robust tracking of the same neurons over this period. This recording and stimulation platform allowed us to evoke stable single-neuron responses to chronic electrical stimulation and to carry out longitudinal studies of brain aging in freely behaving mice. Such advantages could open up future studies in mapping and modulating changes associated with learning, aging and neurodegenerative diseases.

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Year:  2016        PMID: 27571550     DOI: 10.1038/nmeth.3969

Source DB:  PubMed          Journal:  Nat Methods        ISSN: 1548-7091            Impact factor:   28.547


  48 in total

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Journal:  Nat Biotechnol       Date:  2016-02-08       Impact factor: 54.908

Review 5.  Neural stimulation and recording electrodes.

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Review 7.  Rhythms of the hippocampal network.

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Review 10.  Restoring sensorimotor function through intracortical interfaces: progress and looming challenges.

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  74 in total

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3.  A method for single-neuron chronic recording from the retina in awake mice.

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5.  Syringe-injectable mesh electronics integrate seamlessly with minimal chronic immune response in the brain.

Authors:  Tao Zhou; Guosong Hong; Tian-Ming Fu; Xiao Yang; Thomas G Schuhmann; Robert D Viveros; Charles M Lieber
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6.  A Materials Roadmap to Functional Neural Interface Design.

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7.  Quantitative simulation of extracellular single unit recording from the surface of cortex.

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8.  A Stretchable and Flexible Cardiac Tissue-Electronics Hybrid Enabling Multiple Drug Release, Sensing, and Stimulation.

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10.  Scalable Fabrication Framework of Implantable Ultrathin and Flexible Probes with Biodegradable Sacrificial Layers.

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