Academy of Scientific and Innovative Research (AcSIR), CSIR - National Physical Laboratory (Campus), New Delhi 110012, India; CSIR - National Physical Laboratory, New Delhi 110012, India.
CCS Haryana Agricultural University, Hisar 125004, Haryana, India.
Int J Biol Macromol. 2019 Jun 1;130:333-341. doi: 10.1016/j.ijbiomac.2019.02.121. Epub 2019 Feb 21.
Gold nanoparticles decorated graphene oxide (Au-rGO) nanocomposite thin films with enhanced electro-active characteristics were prepared and covalently immobilized with uricase (UOx) enzyme for sensitive and selective detection of uric acid (UA). Differential pulse voltammetry (DPV) studies revealed rapid response of fabricated electrode towards UA at low potential (0.228 V) in a wide concentration range of 50-800 μM with a sensitivity of 86.62 ± 0.19 μA mM and very low detection limit of 7.32 ± 0.21 μM. The obtained Michaelis-Menten constant (k) value of 51.75 μM signifies high enzyme kinetics at electrode surface with UA. The developed biosensor was successfully applied to detect UA in human serum samples. Interferences due to components present in the real matrix were evaluated and UA determination in mixed sample was also performed. The fabricated UOx/Au-rGO/ITO biosensor demonstrated high reproducibility and a shelf-life of 6 months indicating the promising future of Au-rGO nanocomposite as an efficient transducer matrix for biosensing applications. The fast response time (1.0 ± 0.6 s) and improved sensor performance is attributed to the synergistic electronic properties of Au-nanoparticles and rGO that provided enhanced electron transfer and high electro-active species surface coverage at Au-rGO nanocomposite.
用金纳米粒子修饰氧化石墨烯(Au-rGO)纳米复合材料薄膜,具有增强的电活性特性,并通过尿酸酶(UOx)共价固定,用于灵敏和选择性检测尿酸(UA)。差分脉冲伏安法(DPV)研究表明,在 50-800μM 的宽浓度范围内,在低电位(0.228 V)下,制备的电极对 UA 具有快速响应,灵敏度为 86.62±0.19μA mM,检测限非常低,为 7.32±0.21μM。获得的 Michaelis-Menten 常数(k)值为 51.75μM,表明 UA 在电极表面具有高酶动力学。该生物传感器成功地应用于检测人血清样品中的 UA。评估了真实基质中存在的成分引起的干扰,并在混合样品中进行了 UA 测定。所制备的 UOx/Au-rGO/ITO 生物传感器表现出高重现性和 6 个月的保质期,表明 Au-rGO 纳米复合材料作为生物传感应用的高效换能器基质具有广阔的前景。快速响应时间(1.0±0.6 s)和改进的传感器性能归因于 Au 纳米粒子和 rGO 的协同电子特性,它们在 Au-rGO 纳米复合材料中提供了增强的电子转移和高电活性物质的表面覆盖率。