Literature DB >> 33310538

How is flexible electronics advancing neuroscience research?

Yihang Chen1, Nicholas J Rommelfanger2, Ali I Mahdi1, Xiang Wu1, Scott T Keene3, Abdulmalik Obaid1, Alberto Salleo3, Huiliang Wang4, Guosong Hong5.   

Abstract

Innovative neurotechnology must be leveraged to experimentally answer the multitude of pressing questions in modern neuroscience. Driven by the desire to address the existing neuroscience problems with newly engineered tools, we discuss in this review the benefits of flexible electronics for neuroscience studies. We first introduce the concept and define the properties of flexible and stretchable electronics. We then categorize the four dimensions where flexible electronics meets the demands of modern neuroscience: chronic stability, interfacing multiple structures, multi-modal compatibility, and neuron-type-specific recording. Specifically, with the bending stiffness now approaching that of neural tissue, implanted flexible electronic devices produce little shear motion, minimizing chronic immune responses and enabling recording and stimulation for months, and even years. The unique mechanical properties of flexible electronics also allow for intimate conformation to the brain, the spinal cord, peripheral nerves, and the retina. Moreover, flexible electronics enables optogenetic stimulation, microfluidic drug delivery, and neural activity imaging during electrical stimulation and recording. Finally, flexible electronics can enable neuron-type identification through analysis of high-fidelity recorded action potentials facilitated by its seamless integration with the neural circuitry. We argue that flexible electronics will play an increasingly important role in neuroscience studies and neurological therapies via the fabrication of neuromorphic devices on flexible substrates and the development of enhanced methods of neuronal interpenetration.
Copyright © 2020 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Brain-machine interfaces; Chronic interface; Electrophysiology; Neuron-type specificity; Optogenetics

Mesh:

Year:  2020        PMID: 33310538      PMCID: PMC7856293          DOI: 10.1016/j.biomaterials.2020.120559

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  200 in total

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4.  Wireless bioresorbable electronic system enables sustained nonpharmacological neuroregenerative therapy.

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Journal:  Nat Med       Date:  2018-10-08       Impact factor: 53.440

Review 5.  Chemogenetic tools to interrogate brain functions.

Authors:  Scott M Sternson; Bryan L Roth
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Journal:  J Neural Eng       Date:  2016-08-16       Impact factor: 5.379

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Authors:  Nathan W Gouwens; Staci A Sorensen; Jim Berg; Changkyu Lee; Tim Jarsky; Jonathan Ting; Susan M Sunkin; David Feng; Costas A Anastassiou; Eliza Barkan; Kris Bickley; Nicole Blesie; Thomas Braun; Krissy Brouner; Agata Budzillo; Shiella Caldejon; Tamara Casper; Dan Castelli; Peter Chong; Kirsten Crichton; Christine Cuhaciyan; Tanya L Daigle; Rachel Dalley; Nick Dee; Tsega Desta; Song-Lin Ding; Samuel Dingman; Alyse Doperalski; Nadezhda Dotson; Tom Egdorf; Michael Fisher; Rebecca A de Frates; Emma Garren; Marissa Garwood; Amanda Gary; Nathalie Gaudreault; Keith Godfrey; Melissa Gorham; Hong Gu; Caroline Habel; Kristen Hadley; James Harrington; Julie A Harris; Alex Henry; DiJon Hill; Sam Josephsen; Sara Kebede; Lisa Kim; Matthew Kroll; Brian Lee; Tracy Lemon; Katherine E Link; Xiaoxiao Liu; Brian Long; Rusty Mann; Medea McGraw; Stefan Mihalas; Alice Mukora; Gabe J Murphy; Lindsay Ng; Kiet Ngo; Thuc Nghi Nguyen; Philip R Nicovich; Aaron Oldre; Daniel Park; Sheana Parry; Jed Perkins; Lydia Potekhina; David Reid; Miranda Robertson; David Sandman; Martin Schroedter; Cliff Slaughterbeck; Gilberto Soler-Llavina; Josef Sulc; Aaron Szafer; Bosiljka Tasic; Naz Taskin; Corinne Teeter; Nivretta Thatra; Herman Tung; Wayne Wakeman; Grace Williams; Rob Young; Zhi Zhou; Colin Farrell; Hanchuan Peng; Michael J Hawrylycz; Ed Lein; Lydia Ng; Anton Arkhipov; Amy Bernard; John W Phillips; Hongkui Zeng; Christof Koch
Journal:  Nat Neurosci       Date:  2019-06-17       Impact factor: 24.884

8.  Insertion shuttle with carboxyl terminated self-assembled monolayer coatings for implanting flexible polymer neural probes in the brain.

Authors:  Takashi D Yoshida Kozai; Daryl R Kipke
Journal:  J Neurosci Methods       Date:  2009-08-08       Impact factor: 2.390

9.  Thin Film Multi-Electrode Softening Cuffs for Selective Neuromodulation.

Authors:  María A González-González; Aswini Kanneganti; Alexandra Joshi-Imre; Ana G Hernandez-Reynoso; Geetanjali Bendale; Romil Modi; Melanie Ecker; Ali Khurram; Stuart F Cogan; Walter E Voit; Mario I Romero-Ortega
Journal:  Sci Rep       Date:  2018-11-06       Impact factor: 4.379

10.  Ultrafast Two-Photon Imaging of a High-Gain Voltage Indicator in Awake Behaving Mice.

Authors:  Vincent Villette; Mariya Chavarha; Ivan K Dimov; Jonathan Bradley; Lagnajeet Pradhan; Benjamin Mathieu; Stephen W Evans; Simon Chamberland; Dongqing Shi; Renzhi Yang; Benjamin B Kim; Annick Ayon; Abdelali Jalil; François St-Pierre; Mark J Schnitzer; Guoqiang Bi; Katalin Toth; Jun Ding; Stéphane Dieudonné; Michael Z Lin
Journal:  Cell       Date:  2019-12-12       Impact factor: 41.582

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