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http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/77015完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 陳建甫(Chien-Fu Chen) | |
| dc.contributor.author | Yu-Te Li | en |
| dc.contributor.author | 李育德 | zh_TW |
| dc.date.accessioned | 2021-07-10T21:43:25Z | - |
| dc.date.available | 2021-07-10T21:43:25Z | - |
| dc.date.copyright | 2020-08-28 | |
| dc.date.issued | 2020 | |
| dc.date.submitted | 2020-08-17 | |
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Chawla, 'Determination of glycated hemoglobin with special emphasis on biosensing methods,' Analytical biochemistry, vol. 444, pp. 47-56, 2014. [13] D. M. Nathan, J. Kuenen, R. Borg, H. Zheng, D. Schoenfeld, and R. J. Heine, 'Translating the A1C Assay Into Estimated Average Glucose Values,' Diabetes Care, vol. 31, no. 8, pp. 1473-1478, 2008, doi: 10.2337/dc08-0545. [14] 'Diagnosis and Classification of Diabetes Mellitus,' Diabetes Care, vol. 33, no. Supplement 1, pp. S62-S69, 2010, doi: 10.2337/dc10-S062. [15] C. J. Doelman, C. W. Siebelder, W. A. Nijhof, C. W. Weykamp, J. Janssens, and T. J. Penders, 'Capillary electrophoresis system for hemoglobin A1c determinations evaluated,' Clinical chemistry, vol. 43, no. 4, pp. 644-648, 1997. [16] J.-O. Jeppsson et al., 'Approved IFCC Reference Method for the Measurement of HbA1c in Human Blood,' (in English), Clinical Chemistry and Laboratory Medicine (CCLM), vol. 40, no. 1, p. 78, 2002, doi: https://doi.org/10.1515/CCLM.2002.016. [17] A. K. Mallia, G. T. Hermanson, R. I. Krohn, E. K. Fujimoto, and P. K. Smith, 'Preparation and use of a boronic acid affinity support for separation and quantitation of glycosylated hemoglobins,' Analytical Letters, Part B: Clinical and Biochemical Analysis, vol. 14, no. 8, pp. 649-661, 1981. [18] J. Li, K.-W. Chang, C.-H. Wang, C.-H. Yang, S.-C. Shiesh, and G.-B. Lee, 'On-chip, aptamer-based sandwich assay for detection of glycated hemoglobins via magnetic beads,' Biosensors and Bioelectronics, vol. 79, pp. 887-893, 2016. [19] J.-M. Moon, D.-M. Kim, M. H. Kim, J.-Y. Han, D.-K. Jung, and Y.-B. Shim, 'A disposable amperometric dual-sensor for the detection of hemoglobin and glycated hemoglobin in a finger prick blood sample,' Biosensors and Bioelectronics, vol. 91, pp. 128-135, 2017. [20] S. H. Ang, M. Rambeli, T. M. Thevarajah, Y. B. Alias, and S. M. Khor, 'Quantitative, single-step dual measurement of hemoglobin A1c and total hemoglobin in human whole blood using a gold sandwich immunochromatographic assay for personalized medicine,' Biosensors and Bioelectronics, vol. 78, pp. 187-193, 2016. [21] A. W. Martinez, S. T. Phillips, M. J. Butte, and G. M. Whitesides, 'Patterned paper as a platform for inexpensive, low‐volume, portable bioassays,' Angewandte Chemie International Edition, vol. 46, no. 8, pp. 1318-1320, 2007. [22] E. Carrilho, A. W. Martinez, and G. M. Whitesides, 'Understanding wax printing: a simple micropatterning process for paper-based microfluidics,' Analytical chemistry, vol. 81, no. 16, pp. 7091-7095, 2009. [23] K. Yamada, T. G. Henares, K. Suzuki, and D. Citterio, 'Paper‐based inkjet‐printed microfluidic analytical devices,' Angewandte Chemie International Edition, vol. 54, no. 18, pp. 5294-5310, 2015. [24] Y. K. Oh, H.-A. Joung, S. Kim, and M.-G. Kim, 'Vertical flow immunoassay (VFA) biosensor for a rapid one-step immunoassay,' Lab on a Chip, vol. 13, no. 5, pp. 768-772, 2013. [25] C.-A. Chen, W.-S. Yeh, T.-T. Tsai, and C.-F. Chen, 'Three-dimensional origami paper-based device for portable immunoassay applications,' Lab on a Chip, vol. 19, no. 4, pp. 598-607, 2019. [26] C. E. Chivers, A. L. Koner, E. D. Lowe, and M. Howarth, 'How the biotin–streptavidin interaction was made even stronger: investigation via crystallography and a chimaeric tetramer,' Biochemical Journal, vol. 435, no. 1, pp. 55-63, 2011. [27] X. Deng et al., 'Poly (oligoethylene glycol methacrylate) dip-coating: turning cellulose paper into a protein-repellent platform for biosensors,' Journal of the American Chemical Society, vol. 136, no. 37, pp. 12852-12855, 2014. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/77015 | - |
| dc.description.abstract | 本研究開發一多維度紙張微流體平臺結合免疫分析法與攜帶式Blue Red value 讀取儀,主要研究動機為達到定量分析血紅蛋白、糖化血色素以及疾病定點照護的目的。平臺整體由匣具與纖維素層析紙構成。匣具提供正向力,使得多層紙張能緊密配合,減少紙張層與層之間的空隙與降低外在干擾。紙張微流道以漸擴式圖案設計,讓試劑能夠均勻且穩定地在紙張微流道中流動,得到均勻、明確的檢測結果點。本平臺採用競爭型免疫分析反應為檢測機制,透過探針與目標蛋白競爭抗體位置,偵測檢體中糖化血色素與血紅蛋白的濃度。最後使用攜帶式Blue Red value 讀取儀,將檢測結果數據化,提供測試者判讀檢測結果,達到定量分析糖化血色素的目的。檢測過程,採用直流式免疫分析(Vertical Flow Test, VFT),以直接滴入樣品於檢測區域進行檢測,試劑以垂直方向流動,有效降低檢測時所需樣品體積,縮減流體路徑,減少無效體積。並測試不同的吸收層紙張微流道圖案,進行紙張微流體平臺優化,目標降低檢測誤差與得到均勻的檢測結果點。本研究同步進行競爭型免疫分析法的試劑濃度探討,利用最佳化紙張微流體平臺,得到捕捉抗體、探針以及酵素的最佳化濃度。由分析結果證明血紅蛋白可獲得線性偵測極限為32 ~ 500 µg/mL、糖化血色素可獲得線性偵測極限為10 ~ 1000 µg/mL,僅需指針採血所獲得檢體量,即可進行檢測。檢測完成後,將檢測層紙張插入攜帶式Blue Red value 讀取儀中,進行檢測結果數據化,整個檢測在15分鐘內即可獲得分析結果。吾人期望此多維度紙張微流體平臺,能夠應用於糖尿病患者的病情監控與診斷以及一線醫療人員進行糖尿病的快速篩檢,達到即時疾病定點照護(Point of Care Testing, POCT)的目的。 | zh_TW |
| dc.description.abstract | We have developed a multi-dimensional paper platform combined with immunoassay and a portable Blue Red value reader in this study. The main motivation of this study is to achieve quantitative analysis of hemoglobin, glycated hemoglobin, and to achieve point of care testing. The platform is composed of housing and cellulose chromatography paper. The housing is processed with 3D printer and combined with paper during testing, so that multiple layers of paper contact more closely, reducing the gap between paper layers and removing external interference. In the testing, we use vertical flow immunoassay which can greatly reduce dead volume of reagents compared with lateral flow systems. The paper microfluidic channel is designed with a gradual pattern, so that the reagent can flow evenly and stably in the paper microfluidic channel, and a uniform and clear detection result point can be obtained. The molecules that are not attached to the detection area flow to the absorbent layer by capillary force. In this way, the detection area can reduce detection errors and non-specific attachments. The platform was used to complete a competitive immunoassay to quantitatively analyze of hemoglobin and glycated hemoglobin. The results show that the detection range of hemoglobin is 32 to 500 µg/ml, and the detection range of glycated hemoglobin is 10 to 1000 µg/ml. The detection can be performed only by pointer blood sampling. After the test completed, the detection layer is inserted into the portable Blue Red value reader, and test results are digitized to achieve the purpose of (Point of Care Testing, POCT). We hope this multi-dimensional paper platform can be applied to the monitoring and diagnosis of diabetic patients and the rapid screening of diabetes by first-line medical staff. | en |
| dc.description.provenance | Made available in DSpace on 2021-07-10T21:43:25Z (GMT). No. of bitstreams: 1 U0001-2307202013510400.pdf: 4251779 bytes, checksum: 9ce49c5aa63cc7f1ea63b4f3192139a7 (MD5) Previous issue date: 2020 | en |
| dc.description.tableofcontents | 口試委員審定書 i 致謝 ii 摘要 iii Abstract iv 目錄 vi 圖目錄 viii 表目錄 ix 第一章:前言與文獻回顧 1 1.1 糖尿病 1 1.2 傳統糖尿病診斷與病情追蹤 1 1.3 糖化血色素 3 1.4 傳統糖化血色素檢測與分析 4 1.4.1 毛細管電泳 4 1.4.2 高效液相色譜 4 1.4.3 硼酸酯親和色譜法 4 1.5 生物感測器用於糖化血色素檢測 5 1.5.1 微流體晶片技術 6 1.5.2 電化學與微流道晶片 7 1.5.3 側向流層析免疫檢測法 8 1.6 紙張微流體平臺與直流式免疫分析系統 9 1.7 研究目的 10 第二章:實驗設計與實驗流程 14 2.1 實驗材料 14 2.1.1 實驗試劑與耗材 14 2.1.2 實驗儀器 14 2.2 溶液及樣品配製 15 2.2.1 CMC配置 15 2.2.2 EDC/NHS配製 15 2.2.3 血紅蛋白(Hemoglobin)捕捉抗體配置 15 2.2.4 糖化血色素(HbA1c)捕捉抗體配置 16 2.2.6 糖化血色素(HbA1c)抗原標準品配置 16 2.2.7 修飾biotin於血紅蛋白(Hemoglobin)上 16 2.2.8 修飾biotin於糖化血色素(HbA1c)上 16 2.3 多維度紙張平臺製造 17 2.3.1 平臺製備 17 2.3.2 多維度紙張平臺前處理 19 2.3.3 攜帶式Blue Red value讀取儀 20 2.4 競爭型免疫分析法實驗步驟 21 2.4.1 血紅蛋白競爭型免疫分析法實驗步驟 21 2.4.2 糖化血色素競爭型免疫分析法實驗步驟 22 第三章:結果與討論 24 3.1 多維度紙張微流體平臺設計 24 3.2 最佳Streptavidin-HRP濃度測試與TMB滴入後反應時間 28 3.3 Biotin-Labeled Competitor濃度測試 33 3.4 血紅蛋白、糖化血色素之競爭型免疫分析法最佳捕捉抗體濃度 37 3.5 血紅蛋白與糖化血色素競爭型免疫分析法 40 3.6 使用攜帶式Blue Red value讀取儀進行實驗結果判讀 42 第四章:結論 44 參考文獻 45 | |
| dc.language.iso | zh-TW | |
| dc.subject | 糖化血色素 | zh_TW |
| dc.subject | 糖尿病 | zh_TW |
| dc.subject | 酵素免疫分析法 | zh_TW |
| dc.subject | 直流式免疫分析法 | zh_TW |
| dc.subject | Arduino | zh_TW |
| dc.subject | 3D列印 | zh_TW |
| dc.subject | 3D printer | en |
| dc.subject | Diabetes Metabolism | en |
| dc.subject | Vertical flow immunoassay (VFA) | en |
| dc.subject | Arduino | en |
| dc.subject | Paper-based ELISA | en |
| dc.subject | HbA1c | en |
| dc.title | 多維度紙張微流體分析平臺應用於糖化血色素檢測 | zh_TW |
| dc.title | Detection of HbA1c on Multi-Dimensional Paper-Based Microfluidic Analytical Devices | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 108-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 周逸儒(Yi-Ju Chou),余政儒(Cheng-Ju Yu),黃志清(Chih-Ching Huang) | |
| dc.subject.keyword | 糖尿病,糖化血色素,酵素免疫分析法,直流式免疫分析法,Arduino,3D列印, | zh_TW |
| dc.subject.keyword | Diabetes Metabolism,HbA1c,Paper-based ELISA,Vertical flow immunoassay (VFA),Arduino,3D printer, | en |
| dc.relation.page | 47 | |
| dc.identifier.doi | 10.6342/NTU202001778 | |
| dc.rights.note | 未授權 | |
| dc.date.accepted | 2020-08-18 | |
| dc.contributor.author-college | 工學院 | zh_TW |
| dc.contributor.author-dept | 應用力學研究所 | zh_TW |
| 顯示於系所單位: | 應用力學研究所 | |
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