Controlled Delivery For Neuro-Bionic Devices

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Controlled delivery for neuro-bionic devices - ScienceDirect

    https://www.sciencedirect.com/science/article/pii/S0169409X12001998
    Controlled delivery for neuro-bionic devices ... Controlled delivery of bioactive molecules has been used to minimise reactive cellular and tissue responses and/or promote nerve preservation and neurite outgrowth toward the implanted electrode. These effects are integral to establishing a chronically stable and effective electrode-neural ...Author: Zhilian Yue, Simon E. Moulton, Mark Cook, Mark Cook, Stephen O'Leary, Gordon G. Wallace

Controlled delivery for neuro-bionic devices Request PDF

    https://www.researchgate.net/publication/227171004_Controlled_delivery_for_neuro-bionic_devices
    Controlled delivery for neuro-bionic devices. ... Controlled delivery of bioactive molecules has been used to minimise reactive cellular and tissue responses and/or promote nerve preservation and ...

Controlled delivery for neuro-bionic devices

    http://ro.uow.edu.au/cgi/viewcontent.cgi?article=1630&context=aiimpapers
    Controlled delivery for neuro-bionic devices Abstract Implantable electrodes interface with the human body for a range of therapeutic as well as diagnostic applications. Here we provide an overview of controlled delivery strategies used in neuro-bionics. Controlled

Controlled delivery for neuro-bionic devices

    https://scholars.uow.edu.au/display/publication77363
    Here we provide an overview of controlled delivery strategies used in neuro-bionics. Controlled delivery of bioactive molecules has been used to minimise reactive cellular and tissue responses and/or promote nerve preservation and neurite outgrowth toward the implanted electrode.

Controlled delivery for neuro-bionic devices, Advanced ...

    https://www.deepdyve.com/lp/elsevier/controlled-delivery-for-neuro-bionic-devices-TephDXhj2a
    Apr 01, 2013 · Read "Controlled delivery for neuro-bionic devices, Advanced Drug Delivery Reviews" on DeepDyve, the largest online rental service for scholarly research with thousands of academic publications available at your fingertips.

"Controlled delivery for neuro-bionic devices" by Zhilian Yue

    https://works.bepress.com/gwallace/440/
    Controlled delivery for neuro-bionic devices. Advanced Drug Delivery Reviews, 65 (4), 559-569. Abstract. Implantable electrodes interface with the human body for a range of therapeutic as well as diagnostic applications. Here we provide an overview of controlled delivery strategies used in neuro-bionics. Controlled delivery of bioactive ...

Controlled delivery for neuro-bionic devices. - Abstract ...

    http://europepmc.org/abstract/MED/22705546
    May 01, 2013 · Here we provide an overview of controlled delivery strategies used in neuro-bionics. Controlled delivery of bioactive molecules has been used to minimise reactive cellular and tissue responses and/or promote nerve preservation and neurite outgrowth toward the implanted electrode.Author: Zhilian Yue, Simon E. Moulton, Mark Cook, Mark Cook, Stephen O'Leary, Gordon G. Wallace

Controlled delivery for neuro-bionic devices - CORE

    https://core.ac.uk/display/37015799
    Controlled delivery for neuro-bionic devices . By Zhilian Yue, Simon E Moulton, Mark Cook, Stephen O\u27Leary and Gordon G Wallace. Abstract. Implantable electrodes interface with the human body for a range of therapeutic as well as diagnostic applications. Here we provide an overview of controlled delivery strategies used in neuro-bionics.

Electrically Controlled Drug Delivery from Biotin‐Doped ...

    https://onlinelibrary.wiley.com/doi/10.1002/adma.200501242
    A platform for controlled drug delivery using a conductive‐polymer substrate has been created. Through the incorporation of biotin into the conductive polymer polypyrrole (PPy) and the subsequent attachment of the desired drug molecule (such as nerve growth factor, NGF) via a streptavidin linker, an applied potential can trigger release of the drug from the polymer surface (see figure).Author: Paul M. George, David A. Lavan, Jason A. Burdick, Ching-Yuan Chen, Ellen Liang, Robert Langer

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