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酪氨酸酶共价固定于三聚氯氰交联的胺功能化超顺磁性纳米粒子上:可循环利用的纳米生物催化剂的合成与表征

Covalent immobilization of tyrosinase onto cyanuric chloride crosslinked amine-functionalized superparamagnetic nanoparticles: Synthesis and characterization of the recyclable nanobiocatalyst.

作者信息

Abdollahi Kourosh, Yazdani Farshad, Panahi Reza

机构信息

Chemistry & Chemical Engineering Research Center of Iran (CCERCI), P.O. Box 14335-186, Tehran, Iran.

Chemistry & Chemical Engineering Research Center of Iran (CCERCI), P.O. Box 14335-186, Tehran, Iran.

出版信息

Int J Biol Macromol. 2017 Jan;94(Pt A):396-405. doi: 10.1016/j.ijbiomac.2016.10.058. Epub 2016 Oct 19.

Abstract

Magnetic nanoparticles (MNPs) were synthesized using the chemical co-precipitation method. Then the nanoparticles were coated with silica via hydrolysis of tetraethyl orthosilicate using the sol-gel process. The silica coated magnetic nanoparticles were amine-functionalized with 3-aminopropyltriethoxysilane/ethanol solution. Subsequently, the nanoparticles were added to a solution of cyanuric chloride in tetrahydrofuran to synthesize cyanuric chloride-functionalized magnetic nanoparticles (Cy-MNPs). For covalent immobilization of tyrosinase, Cy-MNPs were added to a freshly prepared tyrosinase solution and the mixture was shaken. The FTIR spectra, as well as EDX, analysis proved the covalent immobilization of tyrosinase on the nanoparticles. The magnetic properties of tyrosinase-immobilized magnetic nanoparticles (tyrosinase-MNPs) were specified by VSM analysis. TEM images indicated that the most of the tyrosinase-MNPs had a semi-spherical shape with an average size of 17nm. The synthesized nanoparticles had a high loading capacity of 194mg tyrosinase/g nanoparticles with an immobilization yield of 69%. The optimum condition for both free and immobilized tyrosinase was found at pH 7.0 and 35°C. The immobilized enzyme was active after treatment of the particles at various pHs and temperatures for 100min. In addition, reusability of the immobilized enzyme was investigated and it was proved its suitability to be used for more than 7 cycles. Also, tyrosinase-MNPs remained about 70% of its initial activity after storing at 4°C for 40days. This nanobiocatalyst with interesting properties is promising for practical application in wastewater treatment and biosensor development.

摘要

采用化学共沉淀法合成磁性纳米颗粒(MNPs)。然后,通过溶胶 - 凝胶法利用正硅酸乙酯水解对纳米颗粒进行二氧化硅包覆。用3 - 氨丙基三乙氧基硅烷/乙醇溶液对二氧化硅包覆的磁性纳米颗粒进行胺功能化。随后,将纳米颗粒加入到四氢呋喃中的三聚氯氰溶液中,合成三聚氯氰功能化磁性纳米颗粒(Cy - MNPs)。为了将酪氨酸酶共价固定,将Cy - MNPs加入到新制备的酪氨酸酶溶液中并振荡混合物。傅里叶变换红外光谱(FTIR)以及能谱分析(EDX)证明了酪氨酸酶在纳米颗粒上的共价固定。通过振动样品磁强计(VSM)分析确定了固定化酪氨酸酶的磁性纳米颗粒(酪氨酸酶 - MNPs)的磁性。透射电子显微镜(TEM)图像表明,大多数酪氨酸酶 - MNPs呈半球形,平均尺寸为17nm。合成的纳米颗粒对酪氨酸酶的负载量高达194mg酪氨酸酶/ g纳米颗粒,固定化产率为69%。游离和固定化酪氨酸酶的最佳条件均为pH 7.0和35°C。在不同pH值和温度下对颗粒处理100分钟后,固定化酶仍具有活性。此外,研究了固定化酶的可重复使用性,证明其适用于7个以上循环。而且,酪氨酸酶 - MNPs在4°C储存40天后仍保留其初始活性的约70%。这种具有有趣性质的纳米生物催化剂在废水处理和生物传感器开发的实际应用中具有广阔前景。

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