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1. 中国科学院长春光学精密机械与物理研究所,吉林 长春,130021
2. 中国科学院激发态物理开放研究实验室,吉林 长春,130021
3. 沈阳电力高等专科学校, 辽宁沈阳110036
收稿日期:2001-03-22,
修回日期:2001-07-20,
纸质出版日期:2002-03-20
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马保亮, 范翊, 张立功, 沈冰, 李亚军. 大肠杆菌的直接比色检测及其机理[J]. 发光学报, 2002,23(2): 186-190
MA Bao-liang, FAN Yi, ZHANG Li-gong, SHEN Bing, LI Ya-jun. Direct Colorimetric Detection for Escherichia Coli and Its Mechanism[J]. Chinese Journal of Luminescence, 2002,23(2): 186-190
带有甘露糖的聚双炔薄膜能够识别大肠杆菌并与它们结合
更重要的是结合可以导致聚双炔薄膜的颜色发生改变
这种颜色变化很容易用裸眼观察到并且可以通过可见吸收光谱定量分析。这种通过聚双炔薄膜对分子识别的直接检测方法不仅为该薄膜在生物传感器发展领域中的应用开辟了一条新途径
而且为诊断应用和筛选新的连接配体提供了可能。此外
为了理解颜色变化的机理
我们用共振喇曼光谱和傅立叶变换红外光谱对聚双炔的亲合变色特性进行了检测。结果表明:当由蓝到红的颜色变化发生时
聚合物骨架的侧链进行了重新排列
同时聚合物骨架的电子结构由炔的形式转变为三烯的形式。
The membranes of polydiacetylene backbone decorated with mannose can recognize Escherichia coli (E.coli) and bind with them. The binding leads to the color transition of the membranes which is readily visible to the naked eyes and can be quantified by visible absorption spectroscopy. The direct colorimetric detection by polydiacetylene membranes not only opens a new path for the use of these membranes in the area of biosensor development but also offers new possibilities for diagnostic applications and screening for binding ligand. In present paper
we utilized Langmuir-Blodgett technology to fabricate the mixed PDA/MPDA monolayers and measured the values of the colorimetric response when the mixed PDA/MPDA monolayers were incubated with various E.coli and physiological saline. On the basis of these measurements
we conclude the monolayers can be used to detect environmental E.coli. In order to understand the mechanism of the chromatic transition
the affinochromism properties of polydiacetylene are examined by Resonance Raman (RR) spectroscopy and Fourier Transform Infrared (FTIR) spectroscopy. The results of RR spectroscopy demonstrate the bands of the double and triple bonds simultaneously shift to higher wavenumber during the affinochromism. At the same time
the bands intensity ratio of the double bonds to the triple bonds changes from a value 1.12 in the blue film to a value of about 2.5 in the red film
which can be explained by that the electronic structure in the polymer backbone changes from a acetylene to butatriene form when the blue to red chromatic transformation occurs. In addition
the results of FTIR spectroscopy also show that the side chains of polymer backbone perform rearrangement during the affinochromism. In conclusion
we demonstrate a simple and rapid method to detect E.coli and give a possible explanation to the mechanism of the affinochromism through RR and FTIR spectroscopy.
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