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Enhanced Neural Stimulation System using Localized Surface Plasmon Resonance of Gold Nanorods : 금나노입자의 국소표면플라즈몬공명을 이용한 향상된 신경자극 시스템

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dc.contributor.advisor김성준-
dc.contributor.authorKYUNGSIK EOM-
dc.date.accessioned2017-07-13T07:15:45Z-
dc.date.available2017-07-13T07:15:45Z-
dc.date.issued2016-08-
dc.identifier.other000000136145-
dc.identifier.urihttps://hdl.handle.net/10371/119198-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 전기·컴퓨터공학부, 2016. 8. 김성준.-
dc.description.abstractModulating neural activity is essential to clinical treatment of neurological disorder and to the study of neural function. In particular, there has been growing interest in the development of a contact-free and high spatial selective infrared neural stimulation (INS) technique for use in clinics as well as research area. Despite a potential of INS for modulating neural activities, INS suffers from limited light confinement and tissue damage due to bulk heating. This dissertation provides fundamental information on the development of enhanced INS that could circumvent the limitations of conventional INS. The first part of this dissertation demonstrates for the first time that localized surface plasmon resonance of gold nanorods (GNRs) could induce neural depolarization with safe manner by lowering the stimulation threshold. To perform optical stimulation of neural tissue with GNRs, controllable fiber-coupled laser diode system, GNRs complex and neural cells are prepared. Pulsed near-infrared (NIR) light to efficiently absorbed to GNRs rather than bulk tissue and converted into localized heat which finally triggers neural activation. In the second part of this dissertation, surface-modified GNRs are used to bind to neuronal membrane to achieve washout resistance and to locally heat the neuronal membrane for which neural activation is responsible. INS using cell-targeted GNRs are employed in other types of cells, which is discussed in third part of this dissertation. Transient intracellular calcium waves are evoked in the astrocyte cells revealing GNRs-mediated INS stimulation can be applied in variety of cells. In the last part of this dissertation, the mechanism underlying GNRs-mediated INS is discussed. Illumination of NIR light to the GNRs at their resonant wavelength leads to local electromagnetic field enhancement and the generation localized heat. Local heat diffuses to the nearby plasma membrane which result transient temperature elevation. Transient temperature increase lead to capacitance change and/or opening of the temperature sensitive ion-channel (e.g. transient receptor potential vanilloid 1 (TRPV1) channel) which both trigger the neural depolarization. A neuron model is developed to theoretically and mathematically demonstrate on the mechanism underlying GNRs-mediated INS. These experimental and theoretical findings are expected to open up new possibilities for applications to non-invasive investigations of diverse excitable tissues and treatments of neurological disorders.-
dc.description.tableofcontentsChapter 1: Introduction 1
1.1. Background 1
1.1.1. Neuroprosthetic devices 1
1.1.2. Neural stimulation techniques 2
1.1.3. Infrared neural stimulation (INS) 3
1.1.4. Localized surface plasmon resonance (LSPR) 6
1.2. Objectives 8
1.2.1. GNRs-mediated NIR neural stimulation system 8
1.2.2. Theoretical elucidation on the origin of GNRs-mediated INS 9

Chapter 2: Materials and Methods 11
2.1. Experimental overview 11
2.2. Laser system 13
2.2.1. Design 13
2.2.2. Hardware 14
2.2.3. Software 17
2.2.4. Calibration 18
2.3. GNRs complex 20
2.3.1. Characteristics of GNRs 20
2.3.2. Photothermal effect of GNRs 21
2.3.3. Orientation of GNRs 24
2.4. Neural cells 29
2.5. Experimental protocols 30
2.5.1. Safe INS 30
2.5.2. Effective INS 32
2.5.3. Wide applicable INS 41
2.6. Numerical modeling 45
2.6.1. Overview 46
2.6.2. Background theory 47
2.6.3. Laser induced heat modeling 56
2.6.4. Neuronal membrane modeling 60
2.6.5. Capacitance change and conductance change induced action potential 69

Chapter 3: Results 73
3.1. GNRs-mediated safe INS 73
3.1.1. In vivo rat sciatic nerve 73
3.2. Cell-targeted GNRs-mediated effective INS 78
3.2.1. In vitro cultured rat hippocampal neuron 78
3.2.2. In vivo rat motor cortex 84
3.3. Cell-targeted GNRs-mediated wide applicable INS 90
3.3.1. In vitro cultured astrocyte 90
3.4. Numerical analysis 97
3.4.1. Numerical analysis using capacitance change considered H-H model 97
3.4.2. Numerical analysis using TRPV1 channel considered H-H model 98
3.4.3. Numerical analysis using capacitance change and TRPV1 channel considered H-H model 102

Chapter 4: Discussion 104
4.1. Comparison with previous results 104
4.2. Safety of gold nanoparticle mediated infrared neural stimulation 107
4.3. Link between experimental and simulation results 109
4.4. TRPV1 channel and membrane capacitance 112
4.5. Possible mechanisms of GNRs-mediated INS 113
4.6. Potential applications 114
4.7. Opportunities for further improvements 115

Chapter 5: Conclusion 118

Reference 120

국문 초록 129
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dc.formatapplication/pdf-
dc.format.extent4680777 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectinfrared neural stimulation-
dc.subjectgold nanorod-
dc.subjectlocalized surface plasmon resonance-
dc.subjectnon-invasive neuromodulation-
dc.subject.ddc621-
dc.titleEnhanced Neural Stimulation System using Localized Surface Plasmon Resonance of Gold Nanorods-
dc.title.alternative금나노입자의 국소표면플라즈몬공명을 이용한 향상된 신경자극 시스템-
dc.typeThesis-
dc.contributor.AlternativeAuthor엄경식-
dc.description.degreeDoctor-
dc.citation.pages130-
dc.contributor.affiliation공과대학 전기·컴퓨터공학부-
dc.date.awarded2016-08-
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