Literature DB >> 21654037

In vivo deployment of mechanically adaptive nanocomposites for intracortical microelectrodes.

J P Harris1, A E Hess, S J Rowan, C Weder, C A Zorman, D J Tyler, J R Capadona.   

Abstract

We recently introduced a series of stimuli-responsive, mechanically adaptive polymer nanocomposites. Here, we report the first application of these bio-inspired materials as substrates for intracortical microelectrodes. Our hypothesis is that the ideal electrode should be initially stiff to facilitate minimal trauma during insertion into the cortex, yet become mechanically compliant to match the stiffness of the brain tissue and minimize forces exerted on the tissue, attenuating inflammation. Microprobes created from mechanically reinforced nanocomposites demonstrated a significant advantage compared to model microprobes composed of neat polymer only. The nanocomposite microprobes exhibit a higher storage modulus (E' = ~5 GPa) than the neat polymer microprobes (E' = ~2 GPa) and can sustain higher loads (~12 mN), facilitating penetration through the pia mater and insertion into the cerebral cortex of a rat. In contrast, the neat polymer microprobes mechanically failed under lower loads (~7 mN) before they were capable of insertion into cortical tissue. Further, we demonstrated the material's ability to morph while in the rat cortex to more closely match the mechanical properties of the cortical tissue. Nanocomposite microprobes that were implanted into the rat cortex for up to eight weeks demonstrated increased cell density at the microelectrode-tissue interface and a lack of tissue necrosis or excessive gliosis. This body of work introduces our nanocomposite-based microprobes as adaptive substrates for intracortical microelectrodes and potentially for other biomedical applications.

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Year:  2011        PMID: 21654037      PMCID: PMC4134134          DOI: 10.1088/1741-2560/8/4/046010

Source DB:  PubMed          Journal:  J Neural Eng        ISSN: 1741-2552            Impact factor:   5.379


  34 in total

1.  Long-term neural recording characteristics of wire microelectrode arrays implanted in cerebral cortex.

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Journal:  Brain Res Brain Res Protoc       Date:  1999-12

Review 2.  Brain-machine interfaces to restore motor function and probe neural circuits.

Authors:  Miguel A L Nicolelis
Journal:  Nat Rev Neurosci       Date:  2003-05       Impact factor: 34.870

3.  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

4.  Collagenase-aided insertion of intracortical microelectrode arrays: evaluation of insertion force and chronic recording performance.

Authors:  Kunal J Paralikar; Jonathan K Lawrence; Ryan S Clement
Journal:  Conf Proc IEEE Eng Med Biol Soc       Date:  2006

5.  Toward a comparison of microelectrodes for acute and chronic recordings.

Authors:  Matthew P Ward; Pooja Rajdev; Casey Ellison; Pedro P Irazoqui
Journal:  Brain Res       Date:  2009-05-30       Impact factor: 3.252

6.  Stimuli-responsive mechanically adaptive polymer nanocomposites.

Authors:  Kadhiravan Shanmuganathan; Jeffrey R Capadona; Stuart J Rowan; Christoph Weder
Journal:  ACS Appl Mater Interfaces       Date:  2010-01       Impact factor: 9.229

7.  Biomechanical analysis of silicon microelectrode-induced strain in the brain.

Authors:  Hyunjung Lee; Ravi V Bellamkonda; Wei Sun; Marc E Levenston
Journal:  J Neural Eng       Date:  2005-09-30       Impact factor: 5.379

8.  Strength characterization of silicon microprobes in neurophysiological tissues.

Authors:  K Najafi; J F Hetke
Journal:  IEEE Trans Biomed Eng       Date:  1990-05       Impact factor: 4.538

9.  Computer control using human intracortical local field potentials.

Authors:  Philip R Kennedy; M Todd Kirby; Melody M Moore; Brandon King; Adon Mallory
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2004-09       Impact factor: 3.802

10.  Polymer nanocomposites with nanowhiskers isolated from microcrystalline cellulose.

Authors:  Jeffrey R Capadona; Kadhiravan Shanmuganathan; Stephanie Trittschuh; Scott Seidel; Stuart J Rowan; Christoph Weder
Journal:  Biomacromolecules       Date:  2009-04-13       Impact factor: 6.988

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  44 in total

1.  Mechanically adaptive intracortical implants improve the proximity of neuronal cell bodies.

Authors:  J P Harris; J R Capadona; R H Miller; B C Healy; K Shanmuganathan; S J Rowan; C Weder; D J Tyler
Journal:  J Neural Eng       Date:  2011-11-02       Impact factor: 5.379

2.  Environmentally-controlled microtensile testing of mechanically-adaptive polymer nanocomposites for ex vivo characterization.

Authors:  Allison E Hess; Kelsey A Potter; Dustin J Tyler; Christian A Zorman; Jeffrey R Capadona
Journal:  J Vis Exp       Date:  2013-08-20       Impact factor: 1.355

3.  A Materials Roadmap to Functional Neural Interface Design.

Authors:  Steven M Wellman; James R Eles; Kip A Ludwig; John P Seymour; Nicholas J Michelson; William E McFadden; Alberto L Vazquez; Takashi D Y Kozai
Journal:  Adv Funct Mater       Date:  2017-07-19       Impact factor: 18.808

4.  Insertion of linear 8.4 μm diameter 16 channel carbon fiber electrode arrays for single unit recordings.

Authors:  Paras R Patel; Kyounghwan Na; Huanan Zhang; Takashi D Y Kozai; Nicholas A Kotov; Euisik Yoon; Cynthia A Chestek
Journal:  J Neural Eng       Date:  2015-06-02       Impact factor: 5.379

5.  Ultrasoft microwire neural electrodes improve chronic tissue integration.

Authors:  Zhanhong Jeff Du; Christi L Kolarcik; Takashi D Y Kozai; Silvia D Luebben; Shawn A Sapp; Xin Sally Zheng; James A Nabity; X Tracy Cui
Journal:  Acta Biomater       Date:  2017-02-06       Impact factor: 8.947

6.  Elastomeric and soft conducting microwires for implantable neural interfaces.

Authors:  Christi L Kolarcik; Silvia D Luebben; Shawn A Sapp; Jenna Hanner; Noah Snyder; Takashi D Y Kozai; Emily Chang; James A Nabity; Shawn T Nabity; Carl F Lagenaur; X Tracy Cui
Journal:  Soft Matter       Date:  2015-05-20       Impact factor: 3.679

7.  In vivo polymerization of poly(3,4-ethylenedioxythiophene) in the living rat hippocampus does not cause a significant loss of performance in a delayed alternation task.

Authors:  Liangqi Ouyang; Crystal L Shaw; Chin-Chen Kuo; Amy L Griffin; David C Martin
Journal:  J Neural Eng       Date:  2014-02-06       Impact factor: 5.379

8.  Inhibition of the cluster of differentiation 14 innate immunity pathway with IAXO-101 improves chronic microelectrode performance.

Authors:  John K Hermann; Madhumitha Ravikumar; Andrew J Shoffstall; Evon S Ereifej; Kyle M Kovach; Jeremy Chang; Arielle Soffer; Chun Wong; Vishnupriya Srivastava; Patrick Smith; Grace Protasiewicz; Jingle Jiang; Stephen M Selkirk; Robert H Miller; Steven Sidik; Nicholas P Ziats; Dawn M Taylor; Jeffrey R Capadona
Journal:  J Neural Eng       Date:  2018-04       Impact factor: 5.379

9.  Evaluation of poly(3,4-ethylenedioxythiophene)/carbon nanotube neural electrode coatings for stimulation in the dorsal root ganglion.

Authors:  Christi L Kolarcik; Kasey Catt; Erika Rost; Ingrid N Albrecht; Dennis Bourbeau; Zhanhong Du; Takashi D Y Kozai; Xiliang Luo; Douglas J Weber; X Tracy Cui
Journal:  J Neural Eng       Date:  2014-12-08       Impact factor: 5.379

10.  Long-term changes in the material properties of brain tissue at the implant-tissue interface.

Authors:  Arati Sridharan; Subramaniam D Rajan; Jit Muthuswamy
Journal:  J Neural Eng       Date:  2013-10-08       Impact factor: 5.379

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