Literature DB >> 29220192

Fluidic Microactuation of Flexible Electrodes for Neural Recording.

Flavia Vitale1, Daniel G Vercosa2,3, Alexander V Rodriguez3, Sushma Sri Pamulapati1, Frederik Seibt4, Eric Lewis3, J Stephen Yan5, Krishna Badhiwala5, Mohammed Adnan1, Gianni Royer-Carfagni6, Michael Beierlein4, Caleb Kemere3,5,7, Matteo Pasquali1,8, Jacob T Robinson2,3,5,7.   

Abstract

Soft and conductive nanomaterials like carbon nanotubes, graphene, and nanowire scaffolds have expanded the family of ultraflexible microelectrodes that can bend and flex with the natural movement of the brain, reduce the inflammatory response, and improve the stability of long-term neural recordings. However, current methods to implant these highly flexible electrodes rely on temporary stiffening agents that temporarily increase the electrode size and stiffness thus aggravating neural damage during implantation, which can lead to cell loss and glial activation that persists even after the stiffening agents are removed or dissolve. A method to deliver thin, ultraflexible electrodes deep into neural tissue without increasing the stiffness or size of the electrodes will enable minimally invasive electrical recordings from within the brain. Here we show that specially designed microfluidic devices can apply a tension force to ultraflexible electrodes that prevents buckling without increasing the thickness or stiffness of the electrode during implantation. Additionally, these "fluidic microdrives" allow us to precisely actuate the electrode position with micron-scale accuracy. To demonstrate the efficacy of our fluidic microdrives, we used them to actuate highly flexible carbon nanotube fiber (CNTf) microelectrodes for electrophysiology. We used this approach in three proof-of-concept experiments. First, we recorded compound action potentials in a soft model organism, the small cnidarian Hydra. Second, we targeted electrodes precisely to the thalamic reticular nucleus in brain slices and recorded spontaneous and optogenetically evoked extracellular action potentials. Finally, we inserted electrodes more than 4 mm deep into the brain of rats and detected spontaneous individual unit activity in both cortical and subcortical regions. Compared to syringe injection, fluidic microdrives do not penetrate the brain and prevent changes in intracranial pressure by diverting fluid away from the implantation site during insertion and actuation. Overall, the fluidic microdrive technology provides a robust new method to implant and actuate ultraflexible neural electrodes.

Entities:  

Keywords:  Flexible microelectrodes; carbon nanotube fibers; microfluidics; neural interfaces; neurophysiology

Mesh:

Substances:

Year:  2017        PMID: 29220192      PMCID: PMC6632092          DOI: 10.1021/acs.nanolett.7b04184

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  64 in total

1.  Monolithic microfabricated valves and pumps by multilayer soft lithography.

Authors:  M A Unger; H P Chou; T Thorsen; A Scherer; S R Quake
Journal:  Science       Date:  2000-04-07       Impact factor: 47.728

2.  Increased responsiveness of cortical neurons in contrast to thalamic neurons during isoflurane-induced EEG bursts in rats.

Authors:  Oliver Detsch; Eberhard Kochs; Matthias Siemers; Burkhart Bromm; Christiane Vahle-Hinz
Journal:  Neurosci Lett       Date:  2002-01-04       Impact factor: 3.046

Review 3.  Head regeneration in Hydra.

Authors:  Hans R Bode
Journal:  Dev Dyn       Date:  2003-02       Impact factor: 3.780

4.  Electric field effect in atomically thin carbon films.

Authors:  K S Novoselov; A K Geim; S V Morozov; D Jiang; Y Zhang; S V Dubonos; I V Grigorieva; A A Firsov
Journal:  Science       Date:  2004-10-22       Impact factor: 47.728

5.  A finite-element model of the mechanical effects of implantable microelectrodes in the cerebral cortex.

Authors:  Jeyakumar Subbaroyan; David C Martin; Daryl R Kipke
Journal:  J Neural Eng       Date:  2005-10-11       Impact factor: 5.379

6.  Flexible polyimide-based intracortical electrode arrays with bioactive capability.

Authors:  P J Rousche; D S Pellinen; D P Pivin; J C Williams; R J Vetter; D R Kipke
Journal:  IEEE Trans Biomed Eng       Date:  2001-03       Impact factor: 4.538

7.  Neuronal ensemble control of prosthetic devices by a human with tetraplegia.

Authors:  Leigh R Hochberg; Mijail D Serruya; Gerhard M Friehs; Jon A Mukand; Maryam Saleh; Abraham H Caplan; Almut Branner; David Chen; Richard D Penn; John P Donoghue
Journal:  Nature       Date:  2006-07-13       Impact factor: 49.962

Review 8.  Response of brain tissue to chronically implanted neural electrodes.

Authors:  Vadim S Polikov; Patrick A Tresco; William M Reichert
Journal:  J Neurosci Methods       Date:  2005-09-27       Impact factor: 2.390

9.  Invariant visual representation by single neurons in the human brain.

Authors:  R Quian Quiroga; L Reddy; G Kreiman; C Koch; I Fried
Journal:  Nature       Date:  2005-06-23       Impact factor: 49.962

10.  Pacemaker activity in hydra is modulated by glycine receptor ligands.

Authors:  R D Ruggieri; P Pierobon; G Kass-Simon
Journal:  Comp Biochem Physiol A Mol Integr Physiol       Date:  2004-06       Impact factor: 2.320

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  20 in total

1.  Sputtered porous Pt for wafer-scale manufacture of low-impedance flexible microelectrodes.

Authors:  Bo Fan; Alexander V Rodriguez; Daniel G Vercosa; Caleb Kemere; Jacob T Robinson
Journal:  J Neural Eng       Date:  2020-06-25       Impact factor: 5.379

Review 2.  Emerging approaches for sensing and modulating neural activity enabled by nanocarbons and carbides.

Authors:  Nicolette Driscoll; Royce Dong; Flavia Vitale
Journal:  Curr Opin Biotechnol       Date:  2021-10-29       Impact factor: 9.740

3.  Can One Concurrently Record Electrical Spikes from Every Neuron in a Mammalian Brain?

Authors:  David Kleinfeld; Lan Luan; Partha P Mitra; Jacob T Robinson; Rahul Sarpeshkar; Kenneth Shepard; Chong Xie; Timothy D Harris
Journal:  Neuron       Date:  2019-09-05       Impact factor: 17.173

4.  Functionalized helical fibre bundles of carbon nanotubes as electrochemical sensors for long-term in vivo monitoring of multiple disease biomarkers.

Authors:  Liyuan Wang; Songlin Xie; Zhiyuan Wang; Fei Liu; Yifan Yang; Chengqiang Tang; Xiaoying Wu; Peng Liu; Yongjing Li; Hexige Saiyin; Shuang Zheng; Xuemei Sun; Fan Xu; Hongbo Yu; Huisheng Peng
Journal:  Nat Biomed Eng       Date:  2019-10-28       Impact factor: 25.671

Review 5.  How is flexible electronics advancing neuroscience research?

Authors:  Yihang Chen; Nicholas J Rommelfanger; Ali I Mahdi; Xiang Wu; Scott T Keene; Abdulmalik Obaid; Alberto Salleo; Huiliang Wang; Guosong Hong
Journal:  Biomaterials       Date:  2020-12-02       Impact factor: 12.479

Review 6.  Wireless and battery-free technologies for neuroengineering.

Authors:  Sang Min Won; Le Cai; Philipp Gutruf; John A Rogers
Journal:  Nat Biomed Eng       Date:  2021-03-08       Impact factor: 29.234

7.  Elastocapillary self-assembled neurotassels for stable neural activity recordings.

Authors:  S Guan; J Wang; X Gu; Y Zhao; R Hou; H Fan; L Zou; L Gao; M Du; C Li; Y Fang
Journal:  Sci Adv       Date:  2019-03-27       Impact factor: 14.136

Review 8.  Gels, jets, mosquitoes, and magnets: a review of implantation strategies for soft neural probes.

Authors:  Nicholas V Apollo; Brendan Murphy; Kayla Prezelski; Nicolette Driscoll; Andrew G Richardson; Timothy H Lucas; Flavia Vitale
Journal:  J Neural Eng       Date:  2020-09-11       Impact factor: 5.379

Review 9.  Ultraflexible Neural Electrodes for Long-Lasting Intracortical Recording.

Authors:  Fei He; Roy Lycke; Mehran Ganji; Chong Xie; Lan Luan
Journal:  iScience       Date:  2020-07-20

10.  Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.

Authors:  Flavia Vitale; Wendy Shen; Nicolette Driscoll; Justin C Burrell; Andrew G Richardson; Oladayo Adewole; Brendan Murphy; Akshay Ananthakrishnan; Hanju Oh; Theodore Wang; Timothy H Lucas; D Kacy Cullen; Mark G Allen; Brian Litt
Journal:  PLoS One       Date:  2018-11-01       Impact factor: 3.240

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