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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/123456789/64262
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor董成淵(Chen-Yuan Dong)
dc.contributor.authorPing-Chih Yangen
dc.contributor.author楊平至zh_TW
dc.date.accessioned2021-06-16T17:37:32Z-
dc.date.available2013-08-19
dc.date.copyright2012-08-19
dc.date.issued2012
dc.date.submitted2012-08-14
dc.identifier.citation1. Fukaki H, Wysocka-Diller J, Kato T, Fujisawa H, Benfey PN, Tasaka M. (1998). Genetic evidence that the endodermis is essential for shoot gravitropism in Arabidopsis thaliana. Plant J.14(4):425-30.
2. FRED D. SACK (1991). Plant gravity sensing. International review of cytology, vol. 127.
3. Naohiro Kato*, Dexter Reynolds, Matthew L Brown, Marietta Boisdore, Yukichi Fujikawa, Andrea Morales and Lee A Meisel (2008). Multidimensional fluorescence microscopy of multiple organelles in Arabidopsis seedlings. Plant Methods, 4:9.
4. Elwira Sliwinska*, George W. Bassel and J. Derek Bewley (2009). Germination of Arabidopsis thaliana seeds is not completed as a result of elongation of the radicle but of the adjacent transition zone and lower hypocotyl. Journal of Experimental Botany, Vol. 60, No. 12, pp. 3587–3594.
5. Zhuo ZY, Liao CS, Huang CH, Yu JY, Tzeng YY, Lo W, Dong CY, Chui HC, Huang YC, Lai HM, Chu SW (2010). Second harmonic generation imaging – A new method for unraveling molecular information of starch. Journal of Structural Biology 171, 88–94.
6. Sari Timonen (1995). Avoiding autofluorescence problems time-resolved time-resolved fluorescence microscopy with plant and fungal cells in ectomycorrhiza. Mycorrhiza, Volume 5, 455-458.
7. Tamara L. Western2, Debra J. Skinner3, and George W. Haughn* (2000). Differentiation of Mucilage Secretory Cells of the Arabidopsis Seed Coat. Plant Physiology, Vol. 122, pp. 345–355.
8. Guy C. Cox; Nuno Moreno; Jose Feijo (2005). Second Harmonic Imaging of Plant Polysaccharides. Journal of Biomedical Optics 10(02), 024013.
9. Weise SE, Kiss JZ (1999). Gravitropism of inflorescence stems in starch-deficient mutants of Arabidopsis. Int J Plant Sci.;160(3):521-7.
10. Vladimir A Hovhannisyan, Po-Shen Hu, Hsing-Yuan Tan, Shean-Jen Chen, Chen-Yuan Dong (2012). Spatial orientation mapping of fibers using polarization-sensitive second harmonic generation microscopy. J. Biophotonics 1–9 / DOI 10.1002/jbio.201100123.
11. Chou CK, Chen WL, Fwu PT, Lin SJ, Lee HS, Dong CY (2008). Polarization ellipticity compensation in polarization second-harmonic generation microscopy without specimen rotation. J Biomed Opt., 13(1):014005.
12. Shi-Wei Chu, I-Hsiu Chen, Tzu-Ming Liu, Ping Chin Chen, Chi-Kuang Sun, and Bai-Ling Lin (2001). Multimodal nonlinear spectral microscopy based on a femtosecond Cr:forsterite laser. Optics Letters, Vol. 26, Issue 23, pp. 1909-1911.
13. Muthugapatti K. Kandasamy and Richard B. Meagher* (1999). Actin-Organelle Interaction Association With Chloroplast in Arabidopsis Leaf Mesophyll Cells. Cell Motil Cytoskeleton.;44(2):110-8.
14. Yun Lin,1 Lin Sun,1* Long V. Nguyen,1† Richard A. Rachubinski,2 Howard M. Goodman1 (1999). The Pex16p Homolog SSE1 and Storage Organelle Formation in Arabidopsis Seeds. Science 284, 328 (1999); DOI: 10.1126/science.284.5412.328.
15. Vasilios M. E. Andriotis, Marilyn J. Pike, Baldeep Kular, Stephen Rawsthorne and Alison M. Smith (2010). Starch turnover in developing oilseed embryos. New Phytologist 187: 791–804.
16. Liam Dolan1,3, Kees Janmaat2, Viola Willemsen2, Paul Linstead3, Scott Poethig1, Keith Roberts3 and Ben Scheres2,* (1993.) Cellular organisation of the Arabidopsis thaliana root. Development 119, 71-84.
17. Steven Penfield, Elizabeth L. Rylott, Alison D. Gilday, Stuart Graham, Tony R. Larson, and Ian A. Graham (2004). Reserve Mobilization in the Arabidopsis Endosperm Fuels Hypocotyl Elongation in the Dark, Is Independent of Abscisic Acid, and Requires PHOSPHOENOLPYRUVATE CARBOXYKINASE. The Plant Cell, Vol. 16, 2705–2718.
18. Samuel C. Zeeman,1 Jens Kossmann,2 and Alison M. Smith3 (2010). Starch: Its Metabolism, Evolution, and Biotechnological Modification in Plants. Annu. Rev. Plant Biol. 61:209–34.
19. J. V. Jacobsen and E. Pressman (1979). A Structural Study of Germination in Celery (Apium graveolens L.) Seed with emphasis on endosperm breakdown. Planta, Volume 144, Number 3, 241-248.
20. S. GARY MANSFIELD' AND L. GREGORY BRIARTY (1996). The dynamics of seedling and cotyledon cell development in Arabidopsis thaliana during reserve mobilization. Int. J. Plant Sci. 157(3):280-295.
21. Sarah L. Pritchard1, Wayne L. Charlton2, Alison Baker2 and Ian A. Graham1,* (2002). Germination and storage reserve mobilization are regulated independently in Arabidopsis. The Plant Journal, 31(5), 639-647.
22. Walla, P J ; Fleming, Graham R ; Linden, Patricia A ; Ohta, Kaoru (2002). Excited-state kinetics of the carotenoid S//1 state in LHC II and two-photon excitation spectra of lutein and beta-carotene in solution : Efficient Car S//1 yields Chl electronic energy transfer via hot S//1 states? J. Phys. Chem. A 106, pp.1909-1916.
23. Barzda V, de Grauw CJ, Vroom J, Kleima FJ, van Grondelle R, van Amerongen H, Gerritsen HC (2001). Fluorescence lifetime heterogeneity in aggregates of LHCII revealed by time-resolved microscopy. Biophys J.; 81(1):538-46.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/64262-
dc.description.abstract我們利用澱粉的特性來取代染色,施加一激發光使得澱粉產生二次諧波,藉此偵測追蹤阿拉伯芥植株內的澱粉開始發芽後的連續5天和一些較晚期的成長階段。取代用I-KI 溶液去染色澱粉,我們用較自然的方式呈現在一整棵阿拉伯芥植株上澱粉時間上和空間上的分布情形。另外因為在脂質儲存物、暫存性澱粉和葉綠體的成長之間存在一個緊密的關係,這個關係直接反映了碳的流動和碳的來源。因此將這個緊密關係與我們所得到的暫存性澱粉分布情況連結在一起,我們可以更進一步得知植株內每個細胞的發展狀態。最後我們也檢視一些阿拉伯芥發展較晚期的階段來證明積聚的暫存性澱粉只被快速發展中的細胞須要。這裡我們不只提供一個新的方法來追蹤ㄧ活植物中的澱粉,特別是阿拉伯芥,而我們所得到的實驗結果也相當重要,因為對於了解植物生理和儲存物的代謝,阿拉伯芥在植物學中是一個相當重要的模型。
接下來我們利用線偏振光來研究葉綠體的內部結構。因為基粒有著會發二次諧波的自然特性,所以我們將從00 到1800各個不同角度的線偏振光打在阿拉伯芥葉肉細胞上的葉綠體。就我們已經知道的二次諧波是電偶極與極化光源的交互作用結果,一旦分子的電偶極方向平行於光源的極化方向將會有效率的產生二次諧波。因此我們應用這個獨特的性質來探測阿拉伯芥葉綠體內基粒的極化。最後我們發現葉綠體內基粒上分子的電偶極確實有一個特定的排列方式,此外我們也發現微絲的結構也會發出二次諧波。這暗示了我們未來運用二次諧波來研究微絲的可能性。
zh_TW
dc.description.abstractWe took advantage of starch, which emits intense SHG (second harmonic generation) radiation upon the application of optical excitation sources, to noninvasively monitor germination process of starch in Arabidopsis postembryos for the course of 5 days and some later phases of the seedling development. Instead of the traditional staining with I-KI, we presented the temporal and spatial distribution patterns of a whole Arabidopsis seedling in a more natural, noninvasive manner. And since there exists an impartible link between lipid reserves, transient starch, and the progression of growth of chloroplasts that directly reflect the flux of carbon and the sources of carbon. Hence, by associating this link with the patterns of transient starch we obtained, we can further derive the developmental state of every cell in the seedling. At last we also examined some later phases of the evolution of Arabidopsis to demonstrate that accumulated transient starch is only needed for rapidly developing cells. Here, we have provided not only a novel method to tracing starch in a living plant, but also gathered results that are important, particularly, for Arabidopsis which is a major model in botanical studies for the understanding of plant physiology and reservoir metabolism.
Next we utilized linearly polarized lights to investigate the interior structure of a chloroplast. With the nature of grana which produces SHG we introduced linearly polarized laser focusing on the chloroplasts in mesophyll cells of Arabidopsis thaliana at different angles of polarization ranging from 00 to 1800. As we have already known that SHG is an interactive result of the electric dipoles and the polarized sources, SHG radiation can be generated efficiently when the direction of an electric dipole in the molecule is parallel to the polarization direction of the laser. Therefore we applied this extraordinary property to explore the polarization of grana in an Arabidopsis chloroplast. Finally, we found that a particular arrangement of electric dipoles of molecules on grana exists in a chloroplast, and the structure of microfilament produces SHG as well, which suggests the possibility of using SHG for to investigate microfilaments in the future exploration of botany.
en
dc.description.provenanceMade available in DSpace on 2021-06-16T17:37:32Z (GMT). No. of bitstreams: 1
ntu-101-R99222059-1.pdf: 6078685 bytes, checksum: ddc25ecb74a234a70e63743a06fd0a8e (MD5)
Previous issue date: 2012
en
dc.description.tableofcontents口試委員會審定書 i
Acknowledgements ii
中文摘要 iv
Abstract v
Table of contents vii
Figure Catalog ix
Part 1 Spatial and temporal patterns of transient starch in Arabidopsis seedling traced without staining P.1
Chapter 1 Introduction P.1
Chapter 2 Basic Principles P.2
2.1 Two-Photon fluorescence P.2
2.2 Second Harmonic Generation (SHG) P.8
Chapter 3 Methods P.15
3.1 Plant Materials and Growth Conditions P.15
3.1.1 Starch P.16
3.1.2 Chloroplast P.17
3.2 Two-photon fluorescence and second-harmonic microscopy P.18
3.2.1 Experimental setup P.18
3.3 Data analysis P.21
Chapter 4 Results P.22
4.1 0 DAG P.22
4.2 1 DAG P.24
4.3 2 DAG P.25
4.4 3 DAG P.27
4.5 4 DAG P.29
4.6 5 DAG P.33
4.7 The later phases of seedling development P.42
4.8 Corelation between endosperm and embryo P.45
Chapter 5 Discussion P.47
Part 2 Revelation of the arrangement of electric dipoles of molecules within grana in chloroplast by SHG imaging P.51
References P.57
dc.language.isoen
dc.subject阿拉伯芥植株發展zh_TW
dc.subject基粒zh_TW
dc.subject二次諧波zh_TW
dc.subject葉綠體zh_TW
dc.subject短暫性澱粉zh_TW
dc.subject發芽zh_TW
dc.subjectgerminationen
dc.subjectchloroplasten
dc.subjectsecond harmonic generationen
dc.subjectArabidopsis seedling developmenten
dc.subjectgranaen
dc.subjecttransient starchen
dc.title多光子成像阿拉伯芥內短暫性澱粉隨時間的分布和基粒zh_TW
dc.titleMultiphoton imaging of the spatial and temporal patterns of transient starch and grana in Arabidopsis seedlingen
dc.typeThesis
dc.date.schoolyear100-2
dc.description.degree碩士
dc.contributor.oralexamcommittee楊鴻昌(Hong-Chang Yang),石明豐(Ming-Feng Shih),陳永芳(Yang-Fang Chen)
dc.subject.keyword短暫性澱粉,葉綠體,二次諧波,阿拉伯芥植株發展,基粒,發芽,zh_TW
dc.subject.keywordtransient starch,chloroplast,second harmonic generation,Arabidopsis seedling development,grana,germination,en
dc.relation.page60
dc.rights.note有償授權
dc.date.accepted2012-08-15
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept物理研究所zh_TW
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