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  1. NTU Theses and Dissertations Repository
  2. 理學院
  3. 物理學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/28028
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor董成淵
dc.contributor.authorChen-Kuan Chouen
dc.contributor.author周政寬zh_TW
dc.date.accessioned2021-06-12T18:34:21Z-
dc.date.available2007-08-31
dc.date.copyright2007-08-02
dc.date.issued2007
dc.date.submitted2007-08-01
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4. C.E. Bigelow, D.L. Conover, and T.H. Foster, 'Confocal fluorescence spectroscopy and anisotropy imaging system.' Optics Letters, 28 695-697 (2003).
5. Y. Sun, W. Lo, S.J. Lin, S.H. Jee, and C.Y. Dong, 'Multiphoton polarization and generalized polarization microscopy reveal oleic-acid-induced structural changes in intercellular lipid layers of the skin.' Optics Letters, 29 2013-2015 (2004).
6. P.J. Campagnola and L.M. Loew, 'Second-harmonic imaging microscopy for visualizing biomolecular arrays in cells, tissues and organisms.' Nature Biotechnology, 21 1356-1360 (2003).
7. W.R. Zipfel, R.M. Williams, R. Christie, A.Y. Nikitin, B.T. Hyman, and W.W. Webb, 'Live tissue intrinsic emission microscopy using multiphoton-excited native fluorescence and second harmonic generation.' Proceedings of the National Academy of Sciences of the United States of America, 100 7075-7080 (2003).
8. S.V. Plotnikov, A.C. Millard, P.J. Campagnola, and W.A. Mohler, 'Characterization of the myosin-based source for second-harmonic generation from muscle sarcomeres.' Biophysical Journal, 90 693-703 (2006).
9. S.W. Teng, H.Y. Tan, J.L. Peng, H.H. Lin, K.H. Kim, W. Lo, Y. Sun, W.C. Lin, S.J. Lin, S.H. Jee, P.T.C. So, and C.Y. Dong, 'Multiphoton autofluorescence and second-harmonic generation imaging of the ex vivo porcine eye.' Investigative Ophthalmology & Visual Science, 47 1216-1224 (2006).
10. A. Zoumi, A. Yeh, and B.J. Tromberg, 'Imaging cells and extracellular matrix in vivo by using second-harmonic generation and two-photon excited fluorescence.' Proceedings of the National Academy of Sciences of the United States of America, 99 11014-11019 (2002).
11. Y. Liu, H.C. Chen, S.M. Yang, T.L. Sun, W. Lo, L.L. Chiou, G.T. Huang, C.Y. Dong, and H.S. Lee, 'Visualization of hepatobiliary excretory function by intravital multiphoton microscopy.' Journal of Biomedical Optics, 12 014014 (2007).
12. E.B. Brown, R.B. Campbell, Y. Tsuzuki, L. Xu, P. Carmeliet, D. Fukumura, and R.K. Jain, 'In vivo measurement of gene expression, angiogenesis and physiological function in tumors using multiphoton laser scanning microscopy.' Nature Medicine, 7 864-868 (2001).
13. M.G. Lin, T.L. Yang, C.T. Chiang, H.C. Kao, J.N. Lee, W. Lo, S.H. Jee, Y.F. Chen, C.Y. Dong, and S.J. Lin, 'Evaluation of dermal thermal damage by multiphoton autofluorescence and second-harmonic-generation microscopy.' Journal of Biomedical Optics, 11 064006 (2006).
14. S.W. Chu, S.Y. Chen, G.W. Chern, T.H. Tsai, Y.C. Chen, B.L. Lin, and C.K. Sun, 'Studies of x((2))/x((3)) tensors in submicron-scaled bio-tissues by polarization harmonics optical microscopy.' Biophysical Journal, 86 3914-3922 (2004).
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17. A.M. Pena, T. Boulesteix, T. Dartigalongue, and M.C. Schanne-Klein, 'Chiroptical effects in the second harmonic signal of collagens I and IV.' Journal of the American Chemical Society, 127 10314-10322 (2005).
18. D. Debarre, W. Supatto, A.M. Pena, A. Fabre, T. Tordjmann, L. Combettes, M.C. Schanne-Klein, and E. Beaurepaire, 'Imaging lipid bodies in cells and tissues using third-harmonic generation microscopy.' Nature Methods, 3 47-53 (2006).
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25. G. Veit, B. Kobbe, D.R. Keene, M. Paulsson, M. Koch, and R. Wagener, 'Collagen XXVIII, a novel von Willebrand factor A domain-containing protein with many imperfections in the collagenous domain.' Journal of Biological Chemistry, 281 3494-3504 (2006).
26. J. Brinckmann, H. Notbohm, and P.K. Müller, 'Collagen: primer in structure, processing, and assembly.' (Springer, 2005).
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28. P. Stoller, B.M. Kim, A.M. Rubenchik, K.M. Reiser, and L.B. Da Silva, 'Polarization-dependent optical second-harmonic imaging of a rat-tail tendon.' Journal of Biomedical Optics, 7 205-214 (2002).
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/28028-
dc.description.abstract在光學顯微術中,使用線性偏振光掃描生物的纖維樣品,可以得到其分子尺度上的資訊,像是肌肉、膠原蛋白束等。但是在雷射掃描顯微鏡中,光的偏振性常會被光學元件所改變,如分光鏡;於是我們使用半波長片和四分之一波長片來校正這種偏振性的改變,並在反射式雷射顯微鏡中以改變線偏振光的角度,取得老鼠尾巴的二倍頻影像。從二倍頻強度的變化,可以得到老鼠尾巴內膠原蛋白的二階極化張量,並且以我們旋轉入射光的方法,可以減少轉動樣品所帶來的困擾。藉由螺旋結構來模擬膠原蛋白分子,偏振光的二倍頻影像可以得到分子尺度上的訊息;從強度對於入射光偏振性的改變上,我們得到的極化張量可以判斷出膠原蛋白的螺旋角,而且與原子力顯微鏡的結果相符。對於非中心對稱的生物樣品,我們證明了偏振化的二倍頻顯微術可以在型態跟強度之外,提供額外分子上的資訊,並且具有生醫應用上的潛力。zh_TW
dc.description.abstractIn imaging anisotropic samples with optical microscopy, the use of controlled, polarized light source can be used to gain molecular information of fibrous materials such as muscle and collagen fibers. However, the delivery of polarized excitation light source in a system such as a laser scanning optical microscope often encounter the problem of the polarization ellipticity altering effect of the main dichroic mirror and other optical components. By using a half-wave plate and a quarter-wave plate, we demonstrated that the polarization ellpticity altering effect of the dichroic mirror in an epi-illuminated laser scanning microscope can be corrected for, and that this approach may be used to obtain polarized second harmonic generation (SHG) images of rat tail tendon using controlled polarized excitation. In this work, the excitation polarization angular dependence of the SHG intensities were fitted to a model to determine the ratio of the second order susceptibility tensor elements associated with type I collagen in rat tail tendon and our methodology can be applied to polarized SHG imaging without the disadvantages of the sample rotation approach. With the helix structure assumption, we obtained collagen molecular information by polarized SHG images. By analyzing the susceptibility tensor using the measured intensity variation with polarization of incident light, we determined the pitch angle of collagen. Our result is consistent with that obtained using atomic force microscope. We showed that polarized SHG has a great potential in imaging noncentrosymmetric biological sample, giving information on the molecular scale in addition to morphological informations.en
dc.description.provenanceMade available in DSpace on 2021-06-12T18:34:21Z (GMT). No. of bitstreams: 1
ntu-96-R94222037-1.pdf: 2293345 bytes, checksum: 1027cffbef053837813583658e18c9ef (MD5)
Previous issue date: 2007
en
dc.description.tableofcontents口試委員會審定書 i
致謝 ii
摘要 iii
Abstract iv
Figure Catalog vi
Chapter 1 Introduction 1
Chapter 2 Second Harmonic Generation (SHG) 3
2.1 Principles 3
2.2 Related Concepts for SHG Microscopy 7
Chapter 3 Collagen 12
3.1 Structure and Arrangement 12
3.2 Second Order Susceptibility of Collagen Fiber 15
Chapter 4 Polarization Ellipticity Compensation in Optical Microscopy 17
4.1 Theoretical Analysis of Using Wave Plates 17
4.2 Verification 24
Chapter 5 Polarized SHG Imaging of Collagen Fiber 27
5.1 Equipments, Material, and Method 27
5.2 Results and Discussion 30
Chapter 6 Conclusion 33
Acknowledgements 34
Reference 35
dc.language.isoen
dc.title以偏振二倍頻顯微術分析膠原蛋白結構zh_TW
dc.titleCollagen Structure Analysis by Polarized Second Harmonic Generation Microscopyen
dc.typeThesis
dc.date.schoolyear95-2
dc.description.degree碩士
dc.contributor.oralexamcommittee陳永芳,李宣書,朱士維
dc.subject.keyword二倍頻,膠原蛋白,偏振,非線性極化率,螺旋結構,雷射掃描顯微術,zh_TW
dc.subject.keywordsecond harmonic generation,collagen,polarization,nonlinear susceptibility,helical structure,laser scanning microscopy,en
dc.relation.page37
dc.rights.note有償授權
dc.date.accepted2007-08-01
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept物理研究所zh_TW
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