Liu Ying, Qu Xiaohu, Guo Hongwei, Chen Hongjun, Liu Baifeng, Dong Shaojun
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, No. 5625 Renmin Street, Changchun, Jilin 130022, Graduate School of the Chinese Academy of Sciences, Beijing 100039, China.
Biosens Bioelectron. 2006 Jun 15;21(12):2195-201. doi: 10.1016/j.bios.2005.11.014. Epub 2005 Dec 27.
The carbon nanotubes-chitosan (CNTs-CS) composite provides a suitable biosensing matrix due to its good conductivity, high stability, and good biocompatibility. Enzymes can be firmly incorporated into the matrix without the aid of other cross-linking reagents. The composite is easy to form insoluble film in solution above pH 6.3. Based on this, a facilely fabricated amperometric biosensor by entrapping laccase into the CNTs-CS composite film has been developed. At pH 6.0, the fungi laccase incorporated into the composite film remains better catalytic activity than that dissolved in solution. The system is in favor of the accessibility of substrate to the active site of laccase, thus the affinity to substrates is improved greatly, such as 2,2'-azino-bis-(3-ethylbenzthiazoline-6-sulfonic acid) diammonium salt (ABTS), catechol, and O2 with Km values of 19.86 microM, 9.43 microM, and 3.22 mM, respectively. The major advantages of the as-prepared biosensor are: detecting different substrates (ABTS, catechol, and O2), possessing high affinity and sensitivity, durable long-term stability, and facile preparation procedure. On the other hand, the system can be applied in fabrication of biofuel cells as the cathodic catalysts based on its good electrocatalysis for oxygen reduction. It can be extended to immobilize other enzymes and biomolecules, which will greatly facilitate the development of biosensors, biofuel cells, and other bioelectrochemical devices.
碳纳米管-壳聚糖(CNTs-CS)复合材料因其良好的导电性、高稳定性和良好的生物相容性而提供了一种合适的生物传感基质。无需其他交联试剂的帮助,酶就能牢固地掺入该基质中。该复合材料在pH 6.3以上的溶液中易于形成不溶性薄膜。基于此,已开发出一种通过将漆酶包埋在CNTs-CS复合膜中来简便制备的电流型生物传感器。在pH 6.0时,掺入复合膜中的真菌漆酶比溶解在溶液中的漆酶保留了更好的催化活性。该体系有利于底物接近漆酶的活性位点,因此对底物的亲和力大大提高,例如对2,2'-联氮双(3-乙基苯并噻唑啉-6-磺酸)二铵盐(ABTS)、邻苯二酚和O2的亲和力,其Km值分别为19.86 microM、9.43 microM和3.22 mM。所制备生物传感器的主要优点是:可检测不同底物(ABTS、邻苯二酚和O2),具有高亲和力和灵敏度、持久的长期稳定性以及简便的制备过程。另一方面,基于其对氧还原的良好电催化性能,该体系可应用于生物燃料电池阴极催化剂的制备。它可以扩展到固定其他酶和生物分子,这将极大地促进生物传感器、生物燃料电池和其他生物电化学装置的发展。