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Study on Different Molecular Weights of Chitosan as an Immobilization Matrix for a Glucose Biosensor

机译:不同分子量的壳聚糖作为葡萄糖生物传感器固定化基质的研究

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摘要

Two chitosan samples (medium molecular weight (MMCHI) and low molecular weight (LMCHI)) were investigated as an enzyme immobilization matrix for the fabrication of a glucose biosensor. Chitosan membranes prepared from acetic acid were flexible, transparent, smooth and quick-drying. The FTIR spectra showed the existence of intermolecular interactions between chitosan and glucose oxidase (GOD). Higher catalytic activities were observed on for GOD-MMCHI than GOD-LMCHI and for those crosslinked with glutaraldehyde than using the adsorption technique. Enzyme loading greater than 0.6 mg decreased the activity. Under optimum conditions (pH 6.0, 35°C and applied potential of 0.6 V) response times of 85 s and 65 s were observed for medium molecular weight chitosan glucose biosensor (GOD-MMCHI/PT) and low molecular weight chitosan glucose biosensor (GOD-LMCHI/PT), respectively. The apparent Michaelis-Menten constant () was found to be 12.737 mM for GOD-MMCHI/PT and 17.692 mM for GOD-LMCHI/PT. This indicated that GOD-MMCHI/PT had greater affinity for the enzyme. Moreover, GOD-MMCHI/PT showed higher sensitivity (52.3666 nA/mM glucose) when compared with GOD-LMCHI/PT (9.8579 nA/mM glucose) at S/N>3. Better repeatability and reproducibility were achieved with GOD-MMCHI/PT than GOD-LMCHI/PT regarding glucose measurement. GOD-MMCHI/PT was found to give the highest enzymatic activity among the electrodes under investigation. The extent of interference encountered by GOD-MMCHI/PT and GOD-LMCHI/PT was not significantly different. Although the Nafion coated biosensor significantly reduced the signal due to the interferents under study, it also significantly reduced the response to glucose. The performance of the biosensors in the determination of glucose in rat serum was evaluated. Comparatively better accuracy and recovery results were obtained for GOD-MMCHI/PT. Hence, GOD-MMCHI/PT showed a better performance when compared with GOD-LMCHI/PT. In conclusion, chitosan membranes shave the potential to be a suitable matrix for the development of glucose biosensors.
机译:研究了两种壳聚糖样品(中分子量(MMCHI)和低分子量(LMCHI))作为酶固定基质,用于制造葡萄糖生物传感器。由乙酸制备的壳聚糖膜具有柔韧性,透明性,光滑性和快干性。 FTIR光谱表明壳聚糖和葡萄糖氧化酶(GOD)之间存在分子间相互作用。与使用吸附技术相比,GOD-MMCHI的催化活性高于GOD-LMCHI,与戊二醛交联的催化活性更高。酶负载量大于0.6 mg会降低活性。在最佳条件下(pH 6.0、35°C和施加电势为0.6 V),中分子量壳聚糖葡萄糖生物传感器(GOD-MMCHI / PT)和低分子量壳聚糖葡萄糖生物传感器(GOD)的响应时间分别为85 s和65 s -LMCHI / PT)。发现表观的Michaelis-Menten常数()对于GOD-MMCHI / PT为12.737mM,对于GOD-LMCHI / PT为17.692mM。这表明GOD-MMCHI / PT对酶具有更大的亲和力。而且,当S / N> 3时,与GOD-LMCHI / PT(9.8579nA / mM葡萄糖)相比,GOD-MMCHI / PT显示出更高的灵敏度(52.3666nA / mM葡萄糖)。就葡萄糖测量而言,与GOD-LMCHI / PT相比,GOD-MMCHI / PT具有更好的重复性和重现性。发现GOD-MMCHI / PT在所研究的电极中具有最高的酶促活性。 GOD-MMCHI / PT和GOD-LMCHI / PT遇到的干扰程度没有显着差异。尽管由于研究中的干扰物,Nafion涂层生物传感器显着降低了信号,但它也显着降低了对葡萄糖的响应。评估了生物传感器在测定大鼠血清葡萄糖中的性能。对于GOD-MMCHI / PT,获得了相对更好的准确性和恢复结果。因此,与GOD-LMCHI / PT相比,GOD-MMCHI / PT表现出更好的性能。总而言之,壳聚糖膜具有成为开发葡萄糖生物传感器的合适基质的潜力。

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  • 年(卷),期 -1(8),8
  • 年度 -1
  • 页码 e70597
  • 总页数 13
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