研究生: |
李揚德 |
---|---|
論文名稱: |
超導磁導儀的開發及利用磁性奈米粒子標靶肝腫瘤進行活體檢測的研究 |
指導教授: |
洪姮娥
Horng, Herng-Er 謝振傑 Chieh, Jen-Jie |
學位類別: |
碩士 Master |
系所名稱: |
光電工程研究所 Graduate Institute of Electro-Optical Engineering |
論文出版年: | 2013 |
畢業學年度: | 101 |
語文別: | 中文 |
論文頁數: | 49 |
中文關鍵詞: | 磁性奈米粒子 、超導磁導儀 |
論文種類: | 學術論文 |
相關次數: | 點閱:142 下載:0 |
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本研究提出一個新穎檢測肝癌腫瘤的活體檢驗方法,利用批覆Alphafetaprotein(AFP)抗體的磁性奈米粒子(Magnetic nanoparticles,MNPs),注射於癌鼠進行標靶實驗,並開發掃描式超導磁導儀(Scanning superconducting-quantum-interference device, SSB)檢驗MNPS的交流磁化率。本研究除了用SSB對注射MNPs試劑的癌鼠進行檢測,也利用MRI與切片染色方法進行驗證,SSB、MRI與切片染色結果的一致性證實了SSB的可行性與MNPs標靶於腫瘤位置的專一性。因此未來病人可注射批覆AFP抗體的磁性奈米粒子試劑後用SSB進行活體篩檢,如需進一步精確斷層掃描則再花較多的MRI診斷費,減少民眾與健保的負擔。許多醫學影像技術如MRI、X-ray,雖具有高解析的斷層影像,但因造價維護費用高且需另有良好的屏蔽環境,因此往往僅大型醫療機構能採購。此外,為增加對腫瘤辨識的靈敏度與專一性,以批覆生物探針的奈米粒子已為主流。
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[2]. Huang KW, Yang SY, Hong YW, et al. Feasibility studies for assaying alpha-fetoprotein using antibody- activated magnetic nanoparticles. Int J Nanomed.;7:1991 (2012)
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[10]. Chieh JJ, Hong CY. Non-invasive and high-sensitivity scanning detection of magnetic nanoparticles in animals using high-Tc scanning superconducting-quantum-interference-device biosusceptometry. Rev Sci Instrum.;82(8):084301-1(2011)
[11]. Martin Nikolo.A guide to alternating current susceptibility measurements and alternating current susceptometer design.American Association of Physics Teachers 57-65
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S. Y. Yang, “Enhancement of nuclear magnetic resonance in microtesla
magnetic field with prepolarization field detected with high-Tc superconducting quantum interference device,” Appl. Phys. Lett., 88:252505( 2006)
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[23]. Horng HE, Yang SY, Huang YW, Jiang WQ, Hong CY, et al. Nanomagnetic Particles for SQUID-based Magnetically Labeled Immunoassay.IEEE Trans Appl Supercond. 15: 668(2005)
[24]. Yang SY, Jian ZF, Horng HE, Hong CY, Yang HC, et al. Dualimmobilization and magnetic manipulation of magnetic nanoparticles. J MagnMagn Mater,.320: 2688 (2008)
[25]. Chieh JJ, Hong CY Non-invasive and High-sensitivity scanning detection of magnetic nanoparticles in animals using high-Tc scanning superconductingquantum-interference-device biosusceptometry. Rev Sci Instrum .82: 084301-1 (2011)
[26]. Yang SY, Sun JS, Liu CH, et al. Ex vivo magnetofection with magnetic nanoparticles: a novel platform for nonviral tissue engineering. Artif Organs.;32(3):195(2008)
[27]. Wang J, Chen Y, Chen B, Ding J, Xia G, et al. Pharmacokinetic parameters and tissue distribution of magnetic Fe3O4 nanoparticles in mice. International Journal of Nanomedicine5:861(2010)
[28]. Tsuchiya K, Nitta N, Sonoda A, Seko AN, Ohta S, et al. Histological study of the biodynamics of iron oxide nanoparticles with different diameters.Int J Nanomed, 6:1587(2011)
[29]. Huang KW, Yang SY, Hong YW, Chieh JJ, Yang CC, et al. Feasibility studies for assaying alpha-fetoprotein using antibody- activated magnetic nanoparticles. Int. J. Nanomed.7: 1991(2012)
[30]. Yang SY, Jian ZF, Horng HE, et al. Dual immobilization and mag¬netic manipulation of magnetic nanoparticles. J Magn Magn Mater.;320(21):2688( 2008)