Key Laboratory of Chemical Biology and Traditional Chinese Medicine Research (Ministry of Education of China), College of Chemistry and Chemical Engineering, Hunan Normal University, Changsha, China.
Biosens Bioelectron. 2010 Feb 15;25(6):1277-82. doi: 10.1016/j.bios.2009.10.014. Epub 2009 Oct 21.
One-pot chemical oxidation of 1,6-hexanedithiol (HDT) in its aqueous suspension containing glucose oxidase (GOx) and Fe(3)O(4)-Au nanocomposites by 1,4-benzoquinone yields novel Fe(3)O(4)-Au-poly(HDT) (PHDT)-GOx magnetic polymeric bionanocomposites (MPBNCs) with GOx immobilized at high load and high activity. Transmission/scanning electron microscopy and UV-vis spectrophotometry are used to characterize the prepared MPBNCs. A Fe(3)O(4)-Au-PHDT-GOx/Au electrode has been prepared by facile and efficient magnetism separation/immobilization of the MPBNCs onto an Au magnetism-electrode for biosensing of glucose, which exhibits high detection sensitivity (110 microA cm(-2) mM(-1)), low detection limit (0.33 microM, S/N=3), rapid response time (<5 s), and excellent anti-interferent ability and stability. The biosensor performs better than those based on the existing protocols of conventional electropolymerization and chemical preoxidation/electropolymerization of monomer. The chemical oxidation synthesis and magnetism separation/immobilization protocol proposed here for convenient preparation and surface immobilization of functional MPBNCs of the target biomolecules may have application potential in many fields, such as biosensing, biocatalysis, biofuel cells, and bioaffinity separation.
一锅法化学氧化 1,6-己二硫醇(HDT)在其包含葡萄糖氧化酶(GOx)和 Fe(3)O(4)-Au 纳米复合材料的水溶液悬浮液中,由 1,4-苯醌生成新型 Fe(3)O(4)-Au-聚(HDT)(PHDT)-GOx 磁性聚合物生物纳米复合材料(MPBNCs),GOx 以高负载和高活性固定。透射/扫描电子显微镜和紫外可见分光光度法用于表征制备的 MPBNCs。通过简便有效的将 MPBNCs 磁性分离/固定在 Au 磁电极上,制备了 Fe(3)O(4)-Au-PHDT-GOx/Au 电极,用于葡萄糖的生物传感,其表现出高检测灵敏度(110 microA cm(-2) mM(-1))、低检测限(0.33 microM,S/N=3)、快速响应时间(<5 s)以及出色的抗干扰能力和稳定性。该生物传感器的性能优于基于现有常规电化学聚合和单体化学预氧化/电化学聚合的协议。这里提出的化学氧化合成和磁性分离/固定方案,用于方便制备和表面固定目标生物分子的功能性 MPBNCs,可能在生物传感、生物催化、生物燃料电池和生物亲和分离等许多领域具有应用潜力。