首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Mesocellular Silica Foams (MCFs) with Tunable Pore Size as a Support for Lysozyme Immobilization: Adsorption Equilibrium and Kinetics Biocomposite Properties
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Mesocellular Silica Foams (MCFs) with Tunable Pore Size as a Support for Lysozyme Immobilization: Adsorption Equilibrium and Kinetics Biocomposite Properties

机译:具有可调谐孔径的Mesocellular二氧化硅泡沫(MCF)作为溶菌酶固定化的支持:吸附平衡和动力学生物复合性能

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摘要

The effect of the porous structure of mesocellular silica foams (MCFs) on the lysozyme (LYS) adsorption capacity, as well as the rate, was studied to design the effective sorbent for potential applications as the carriers of biomolecules. The structural (N adsorption/desorption isotherms), textural (SEM, TEM), acid-base (potentiometric titration), adsorption properties, and thermal characteristics of the obtained lysozyme/silica composites were studied. The protein adsorption equilibrium and kinetics showed significant dependence on silica pore size. For instance, LYS adsorption uptake on MCF-6.4 support (pore diameter 6.4 nm) was about 0.29 g/g. The equilibrium loading amount of LYS on MCF-14.5 material (pore size 14.5 nm) increased to 0.55 g/g. However, when the pore diameter was larger than 14.5 nm, the LYS adsorption value systematically decreased with increasing pore size (e.g., for MCF-30.1 was only 0.27 g/g). The electrostatic attractive interactions between the positively charged lysozyme (at pH = 7.4) and the negatively charged silica played a significant role in the immobilization process. The differences in protein adsorption and surface morphology for the biocomposites of various pore sizes were found. The thermal behavior of the studied bio/systems was conducted by TG/DSC/FTIR/MS coupled method. It was found that the thermal degradation of lysozyme/silica composites was a double-stage process in the temperature range 165–420–830 °C.
机译:研究了Mesocellular硅胶泡沫(MCF)对溶菌酶(Lys)吸附容量以及速率的影响,以及潜在应用的有效吸附剂作为生物分子的载体。研究了所得溶菌酶/二氧化硅复合材料的结构(SEM,SEM,TEM),纹理(SEM,TEM),酸碱(电位滴定),吸附性能和热特性。蛋白质吸附平衡和动力学显示出对硅孔径的显着依赖性。例如,Lys吸附对MCF-6.4载体(孔径6.4nm)的吸附摄取为约0.29g / g。 MCF-14.5材料上的Lys均衡量(孔径为14.5nm)增加至0.55g / g。然而,当孔径大于14.5nm时,随着孔径的增加(例如,MCF-30.1仅为0.27g / g),Lys吸附值系统地降低。带正电荷的溶菌酶(pH = 7.4)和带负电二氧化硅之间的静电相互作用在固定过程中发挥了重要作用。发现了各种孔隙尺寸的生物复合材料的蛋白质吸附和表面形态的差异。研究的生物/系统的热行为由TG / DSC / FTIR / MS耦合方法进行。发现溶菌酶/二氧化硅复合材料的热劣化是在165-420-830℃的温度范围内的双级过程。

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