Literature DB >> 20077424

Conducting-polymer nanotubes improve electrical properties, mechanical adhesion, neural attachment, and neurite outgrowth of neural electrodes.

Mohammad Reza Abidian1, Joseph M Corey, Daryl R Kipke, David C Martin.   

Abstract

An in vitro comparison of conducting-polymer nanotubes of poly(3,4-ethylenedioxythiophene) (PEDOT) and poly(pyrrole) (PPy) and to their film counterparts is reported. Impedance, charge-capacity density (CCD), tendency towards delamination, and neurite outgrowth are compared. For the same deposition charge density, PPy films and nanotubes grow relatively faster vertically, while PEDOT films and nanotubes grow more laterally. For the same deposition charge density (1.44 C cm(-2)), PPy nanotubes and PEDOT nanotubes have lower impedance (19.5 +/- 2.1 kOmega for PPy nanotubes and 2.5 +/- 1.4 kOmega for PEDOT nanotubes at 1 kHz) and higher CCD (184 +/- 5.3 mC cm(-2) for PPy nanotubes and 392 +/- 6.2 mC cm(-2) for PEDOT nanotubes) compared to their film counterparts. However, PEDOT nanotubes decrease the impedance of neural-electrode sites by about two orders of magnitude (bare iridium 468.8 +/- 13.3 kOmega at 1 kHz) and increase capacity of charge density by about three orders of magnitude (bare iridium 0.1 +/- 0.5 mC cm(-2)). During cyclic voltammetry measurements, both PPy and PEDOT nanotubes remain adherent on the surface of the silicon dioxide while PPy and PEDOT films delaminate. In experiments of primary neurons with conducting-polymer nanotubes, cultured dorsal root ganglion explants remain more intact and exhibit longer neurites (1400 +/- 95 microm for PPy nanotubes and 2100 +/- 150 microm for PEDOT nanotubes) than their film counterparts. These findings suggest that conducting-polymer nanotubes may improve the long-term function of neural microelectrodes.

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Year:  2010        PMID: 20077424      PMCID: PMC3045566          DOI: 10.1002/smll.200901868

Source DB:  PubMed          Journal:  Small        ISSN: 1613-6810            Impact factor:   13.281


  41 in total

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2.  Chronic, multisite, multielectrode recordings in macaque monkeys.

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3.  Factors influencing the biocompatibility of insertable silicon microshafts in cerebral cortex.

Authors:  D J Edell; V V Toi; V M McNeil; L D Clark
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4.  Aligned electrospun nanofibers specify the direction of dorsal root ganglia neurite growth.

Authors:  Joseph M Corey; David Y Lin; Katherine B Mycek; Qiaoran Chen; Stanley Samuel; Eva L Feldman; David C Martin
Journal:  J Biomed Mater Res A       Date:  2007-12-01       Impact factor: 4.396

5.  Electrochemically controlled release of dexamethasone from conducting polymer polypyrrole coated electrode.

Authors:  Reecha Wadhwa; Carl F Lagenaur; Xinyan Tracy Cui
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6.  The design of electrospun PLLA nanofiber scaffolds compatible with serum-free growth of primary motor and sensory neurons.

Authors:  Joseph M Corey; Caitlyn C Gertz; Bor-Shuen Wang; Lisa K Birrell; Sara L Johnson; David C Martin; Eva L Feldman
Journal:  Acta Biomater       Date:  2008-03-12       Impact factor: 8.947

Review 7.  Neural stimulation and recording electrodes.

Authors:  Stuart F Cogan
Journal:  Annu Rev Biomed Eng       Date:  2008       Impact factor: 9.590

8.  Polymerization of the conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) around living neural cells.

Authors:  Sarah M Richardson-Burns; Jeffrey L Hendricks; Brian Foster; Laura K Povlich; Dong-Hwan Kim; David C Martin
Journal:  Biomaterials       Date:  2006-12-13       Impact factor: 12.479

9.  Use of ionic liquids for pi-conjugated polymer electrochemical devices.

Authors:  Wen Lu; Andrei G Fadeev; Baohua Qi; Elisabeth Smela; Benjamin R Mattes; Jie Ding; Geoffrey M Spinks; Jakub Mazurkiewicz; Dezhi Zhou; Gordon G Wallace; Douglas R MacFarlane; Stewart A Forsyth; Maria Forsyth
Journal:  Science       Date:  2002-07-04       Impact factor: 47.728

10.  Micropatterned Polypyrrole: A Combination of Electrical and Topographical Characteristics for the Stimulation of Cells.

Authors:  Natalia Gomez; Jae Y Lee; Jon D Nickels; Christine E Schmidt
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  49 in total

Review 1.  Implantable neurotechnologies: a review of micro- and nanoelectrodes for neural recording.

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2.  Glial responses to implanted electrodes in the brain.

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Review 3.  A review of organic and inorganic biomaterials for neural interfaces.

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Journal:  Adv Mater       Date:  2014-03-26       Impact factor: 30.849

4.  Neural Recording and Modulation Technologies.

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Journal:  Nat Rev Mater       Date:  2017-01-04       Impact factor: 66.308

5.  Engraving the Surface of Electrospun Microfibers with Nanoscale Grooves Promotes the Outgrowth of Neurites and the Migration of Schwann Cells.

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Review 6.  Applications of conducting polymers and their issues in biomedical engineering.

Authors:  Rajeswari Ravichandran; Subramanian Sundarrajan; Jayarama Reddy Venugopal; Shayanti Mukherjee; Seeram Ramakrishna
Journal:  J R Soc Interface       Date:  2010-07-07       Impact factor: 4.118

7.  Stretchable polymeric multielectrode array for conformal neural interfacing.

Authors:  Liang Guo; Mingming Ma; Ning Zhang; Robert Langer; Daniel G Anderson
Journal:  Adv Mater       Date:  2013-10-22       Impact factor: 30.849

8.  High performance conducting polymer nanofiber biosensors for detection of biomolecules.

Authors:  Guang Yang; Kelly L Kampstra; Mohammad Reza Abidian
Journal:  Adv Mater       Date:  2014-04-09       Impact factor: 30.849

9.  Tuning nano-architectures and improving bioactivity of conducting polypyrrole coating on bone implants by incorporating bone-borne small molecules.

Authors:  Jingwen Liao; Ye Zhu; Zhaoyi Yin; Guoxin Tan; Chengyun Ning; Chuanbin Mao
Journal:  J Mater Chem B       Date:  2014       Impact factor: 6.331

10.  3D Particle Free Printing of Biocompatible Conductive Hydrogel Platforms for Neuron Growth and Electrophysiological Recording.

Authors:  Chen Wang; Stanislav S Rubakhin; Michael J Enright; Jonathan V Sweedler; Ralph G Nuzzo
Journal:  Adv Funct Mater       Date:  2021-01-27       Impact factor: 18.808

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