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研究生: 孫志彰
Jyh-jang Sun
論文名稱: 細胞內鋅離子對鼠大腦皮質神經元麩胺酸受器之調控
指導教授: 張兗君 教授
Yen-Chung Chang
口試委員:
學位類別: 碩士
Master
系所名稱: 生命科學暨醫學院 - 生命科學系
Department of Life Sciences
論文出版年: 2000
畢業學年度: 88
語文別: 中文
論文頁數: 34
中文關鍵詞: 麩胺酸鋅離子全細胞電位箝制法突觸間訊號傳遞麩胺酸受器促效劑
外文關鍵詞: glutamate, zinc, whole cell patch clamp, synaptic transmission, NMDA, sEPSCs
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  • 神經突觸是神經細胞間訊息傳遞的主要通道。而麩胺酸(glutamate)為主要興奮性神經傳導物質,功能除訊息傳導外,也涉及學習與記憶。中樞神經系統中,鋅為腦部含量第二高(僅次於鐵)的微量元素,與麩胺酸共同存在於前突觸端(presynaptic terminal)的synaptic vesicle中,於神經興奮時共同釋放入突觸間隙(synaptic cleft)。之後,鋅離子藉由多種通道進入後突觸端(postsynaptic terminal)。本論文主要在探討細胞內鋅離子對麩胺酸受器的調控。
    我們使用二次全細胞電位箝制法,第一次全細胞電位箝制法使用正常的internal solution,第二次全細胞電位箝制法使用內含10μM鋅離子的internal solution。在二次箝制實驗中,我們以藥理學方法,研究細胞內鋅離子對突觸間訊號傳遞(synaptic transmission)之影響,我們也測試細胞對外加麩胺酸受器促效劑的反應,並以Hill equation估計出其最大電流(Imax)、最大電流的二分之一時的打藥時間(EC50)與Hill coefficient。比較前後兩次箝制實驗,得到以下結果:細胞內鋅離子導致spontanous excitatory postsynaptic current (sEPSCs)中穿透過NMDA受器的部分增大2.61±1.23倍,sEPSCs中穿透過non-NNMDA受器的部分增大1.66±0.29倍;並促進神經細胞對外加NMDA與glutamate所引發向內電流之Imax的反應,增大的比值分別為1.73±0.21與4.51±1.18。所以,我們推論細胞內鋅離子可增強麩胺酸受器的活性。


    摘要…………………………………………………………………… ii 壹、 緒論……………………………………………………………… 1 1-1. 麩胺酸與麩胺酸受器……………………………………… 1 1-2. 鋅離子與麩胺酸受器……………………………………… 3 貳、材料與方法……………………………………………………… 5 2-1. 細胞培養…………………………………………………… 5 2-2. 二次全細胞電位箝制法…………………………………… 7 2-3. 以二次全細胞電位箝制法研究突觸間訊號之傳遞……… 8 2-4. 以二次全細胞電位箝制法研究麩胺酸受器……………… 8 2-5. 電生理訊號的擷取、儲存與分析………………………… 10 2-6. 鋅離子之灌流……………………………………………… 11 2-7. 神經細胞樹突的局部給藥………………………………… 11 2-8. 影像之擷取、儲存與處理………………………………… 11 參、結果……………………………………………………………… 12 3-1. 二次全細胞電位箝制法…………………………………… 13 3-2. 細胞內鋅離子對突觸間訊號傳遞之影響………………… 13 3-3. 神經細胞對麩胺酸受器促效劑的反應…………………… 13 3-4. 細胞內鋅離子對麩胺酸受器Imax、EC50與Hill coefficient之影響……………………………………………………… 15 3-5. 細胞外鋅離子對樹突形態的影響………………………… 15 3-6. 細胞外鋅離子與麩胺酸對樹突形態的影響……………… 16 肆、討論……………………………………………………………… 17 4-1. 二次全細胞電位箝制法…………………………………… 17 4-2. 細胞內鋅離子對麩胺酸受器之調控……………………… 17 伍、圖表……………………………………………………………… 20 陸、參考文獻………………………………………………………… 28

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