研究生: |
鍾敏祺 Chung, Min-Chi |
---|---|
論文名稱: |
可控親和力側向流動層析法於小分子藥物之信號開啟檢測 Affinity-Switchable Lateral Flow Assay for Signal-On Detection of Small Molecule Drugs |
指導教授: |
陳貴通
Tan, Kui-Thong |
口試委員: |
林俊成
Lin, Chun-Cheng 詹揚翔 Chan, Yang-Hsiang |
學位類別: |
碩士 Master |
系所名稱: |
理學院 - 化學系 Department of Chemistry |
論文出版年: | 2023 |
畢業學年度: | 111 |
語文別: | 中文 |
論文頁數: | 71 |
中文關鍵詞: | 小分子檢測 、親和力調控 、側向流動層析法 、信號開啟檢測 、生物素 |
外文關鍵詞: | small molecule detection, affinity-switchable, lateral flow assay, signal-on detection, biotin |
相關次數: | 點閱:32 下載:0 |
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側向流動層析法 (Lateral flow assay, LFA) 是一項能夠進行即時檢測的試紙分析技術。由於此分析裝置具備操作簡易、成本低廉以及訊號易於判讀等特性,目前已被廣泛應用於許多快速臨床診斷,如驗孕試紙、傳染病快篩試紙等。隨著側向流動層析法的應用性拓展,已不再受限於大分子的檢測,亦能透過競爭法的機制來針對不具反應活性之小分子進行偵測。然而,由於競爭法的訊號呈現方式為信號關閉 (signal-off),與常規認知的判讀方式相反外,於低濃度的分析樣品中也容易造成偽陰性的錯誤判讀,致使其僅有較小的定量範圍。因此,於本研究中,我們以磺胺類藥物作為小分子模板,發展出新型可控親和力側向流動層析法 (Affinity-switchable lateral flow assay, ASLFA),並於不同生物樣品中進行目標物監測,加以證實ASLFA之可行性。此策略不僅能夠選擇性地針對目標物進行偵測,更是能以信號開啟 (signal-on) 的方式呈現高靈敏度的檢測結果。因此,我們期許這項新型檢測機制可被廣泛地應用於醫學及生物研究領域中,作為體外的即時診斷及快速篩檢。
Lateral flow assay (LFA) has been a rapid diagnostic technique in many analytical fields where on-site detection is required. Due to its simple operation, low cost and easy interpretation, this type of assay has been widely applied for some clinical diagnoses, such as pregnancy test and infectious disease screening. Nowadays, with the expansion of the applications, LFA approach is no longer limited to the detection of macromolecules. Currently, competitive LFA is generally used for small molecules detection since they have fewer binding sites. However, competitive assay typically produces signal-off readout, which is different from conventional sandwich assay for macromolecules. In addition, false negative misinterpretation occurs easily in low-concentration analysis samples, resulting in a narrower dynamic range. In this thesis, we develop a new and general affinity-switchable LFA (ASLFA) that can respond selectively and sensitively with signal-on feature for the detection of sulfonamide drugs in various biological samples. Therefore, we expect this novel ASLFA to be a useful approach for the in vitro rapid detection of small molecules in basic biological research and medical diagnosis.
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