Development of Nanoscale Neuromodulationg Platforms
Development of Nanoscale Neuromodulationg Platforms
批准号:
6414623
负责人:
DAVID R PEPPERBERG
金额:
$15.59万
依托单位国家:
美国
项目类别:
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-09-30 至 2004-09-29
关键词:
GABA receptor X ray spectrometry Xenopus oocyte atomic force microscopy cell cell interaction cone cell electrochemistry electrophysiology fish infrared spectrometry nanotechnology neural transmission neurotransmitter receptor posttranslational modifications retina degeneration retinal bipolar neuron rod cell stimulus /response surface plasmon resonance synapses technology /technique development transcription factor visual photoreceptor visual phototransduction
中文摘要
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英文摘要
DESCRIPTION: (Applicant's Abstract) Retinal degenerative diseases such as
macular degeneration involve progressive dysfunction and deterioration of rod
and cone photoreceptors. In these and other neurodegenerative diseases, neurons
post-synaptic to the deteriorating cells are believed frequently to preserve
their capacity for neural signaling; functional loss follows from the inability
of the deteriorating pre-synaptic cell to stimulate the post-synaptic membrane
receptor protein of a specific chemical synapse. Here we propose a novel
project, the long-term goal of which is to restore stimulus-regulated signaling
at nonfunctioning chemical synapses. The proposed approach is to develop
nanoscale neuromodulating platforms (NNPs) that are responsive to external
stimulating signals and interact physiologically with specific post-synaptic
membrane receptor proteins. The essential feature of the platform is
electrochemical control of the accessibility, to the receptor protein, of
neurotransmitter derivatized and tethered to a signal-responsive substrate. In
the first three years of the project we propose to construct and test prototype
platforms (surface dimensions of ~0.1-1 mm) that, in response to light,
modulate the electrophysiological activity of defined membrane receptor
proteins (e.g., GABAc receptors) expressed in Xenopus oocytes. The platform's
active surface will consist of alkyl and poly(ethylene oxide) chains that are
covalently linked to the surface, derivatized with a ferrocene/ferricinium
moiety, and distally terminated by an N-substituted analog of the relevant
amino acid neurotransmitter. The analog's accessibility to the receptor protein
will be regulated by an avalanche photodetector (APD) architecture of the
platform, resulting in redox-control of the hydrophobicity of the
ferrocene/ferricinium and a conformational change in the tethering chain.
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负责人:DAVID R PEPPERBERG
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VISUAL PIGMENT AND PHOTORECEPTOR ADAPTATION
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海外基金