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谷氨酰胺转移酶对明胶-CaCO3矿物质膜成膜性的影响 被引量:7
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作者 刘安军 王跃猛 +4 位作者 王稳航 郑捷 李鑫 祝传望 朱红 《现代食品科技》 EI CAS 北大核心 2014年第5期18-22,共5页
本实验通过向明胶-碳酸钙矿物质膜中添加谷氨酰胺转移酶(TGase),研究了谷氨酰胺转移酶对明胶-碳酸钙矿物质膜特性的影响,对谷氨酰胺转移酶处理前后样品进行厚度、质构、水溶性、水蒸气透过系数、扫描电镜(SEM)、流变性、差示热量扫描(D... 本实验通过向明胶-碳酸钙矿物质膜中添加谷氨酰胺转移酶(TGase),研究了谷氨酰胺转移酶对明胶-碳酸钙矿物质膜特性的影响,对谷氨酰胺转移酶处理前后样品进行厚度、质构、水溶性、水蒸气透过系数、扫描电镜(SEM)、流变性、差示热量扫描(DSC)等方法表征。研究结果表明:在成膜溶液中加入谷氨酰胺转移酶(6 U/g)可以使矿物质膜的厚度增加19.69%、成膜液凝胶强度增加17.24%、膜的抗拉强度增加28.05%、断裂伸长率增加21.27%,而水溶性和水蒸气透过率没有显著改变;扫描电镜表明,谷氨酰胺转移酶交联的矿物质膜表面和断面与不加谷氨酰胺转移酶的矿物质膜相比更加粗糙;流变性结果表明,谷氨酰胺转移酶加入后成膜溶液的粘度显著增加;差示热量扫描表明,谷氨酰胺转移酶催化明胶-碳酸钙矿物膜产生了交联。 展开更多
关键词 谷氨酰胺转移酶 明胶 碳酸钙 矿物质膜
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聚丙烯腈/四氧化三铁共混膜的耐温与耐溶剂性能 被引量:1
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作者 黄征青 郭兴蓬 +1 位作者 张智 唐淑杰 《高分子材料科学与工程》 EI CAS CSCD 北大核心 2006年第4期118-121,共4页
以聚丙烯腈(PAN)、聚乙烯吡咯烷酮(PVP)和四氧化三铁为原料,二甲亚砜(DMSO)为溶剂.采用相转化法制备了不同四氧化三铁含量的共混膜。利用红外光谱、热重分析(TGA)、差示扫描量热法(DSC)和动态力学分析(DMA)对共混膜进行... 以聚丙烯腈(PAN)、聚乙烯吡咯烷酮(PVP)和四氧化三铁为原料,二甲亚砜(DMSO)为溶剂.采用相转化法制备了不同四氧化三铁含量的共混膜。利用红外光谱、热重分析(TGA)、差示扫描量热法(DSC)和动态力学分析(DMA)对共混膜进行了研究,并进行了耐溶剂实验。结果表明,在PAN膜中添加四氧化三铁对玻璃化温度没有影响,但能提高PAN环化脱氢反应的温度和分解温度;共混膜中的四氧化三铁在醋酸和pH值为3.5~9.5N水溶液中的溶解度较小,溶解损失量在3%以下。 展开更多
关键词 聚丙烯腈 四氧化三铁 有机-矿物质膜 耐热性 耐溶剂性
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Clay-protein ultrathin films:Design and bio-catalytic performance study 被引量:2
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作者 MIAO ShiDing QIU ZhiGuo CUI Peng 《Science China Chemistry》 SCIE EI CAS 2012年第9期1842-1855,共14页
In recent years, immense interest has been paid to the biomolecular architecture with the aim of protein assembly in two di- mensions on solid substrates, and the constructions of clay-protein ultrathin films (CPUFs... In recent years, immense interest has been paid to the biomolecular architecture with the aim of protein assembly in two di- mensions on solid substrates, and the constructions of clay-protein ultrathin films (CPUFs) are particularly concerned. This paper gives an overview of the recent research concerning the protein molecules (lysozyme, papain, protamine, bovine serum albumin) immobilized on clay mineral (Na-saponite) platelets and assembled in monolayered or multilayered hybrid ultrafilms or nanofilms. Two techniques including alternate layer-by-layer (LbL) assembly and the Langmuir-Blodgett (LB) are de- scribed in detail. A variety of means, including UV-vis absorption, attenuated total reflectance Fourier transform infrared (ATR-FTIR) spectroscopy, XRD, AFM and surface chemistry techniques, have been described for characterization of the films in terms of quantification of protein and clay. The result reveals that electrostatic interaction is a prominent but not the only driving force in CPUF construction. In the case of LB technique, we managed to manipulate the elementary clay mineral platelets (1.3 nm in thickness) and assemble proteins into CPUFs with the aid of surfactants, and the formation of CPUFs was monitored via surface pressure vs. time (a--t) kinetics curves and surface pressure vs. area (a--A) isotherms. The factors that in- fluence protein adsorption on the clay layer, such as surfactants, the concentration of clay, equilibrium time, categories of pro- tein, and injection methods, were investigated. The parameters such as protein amount (nS), packing density (O), and average surface area per molecule (.(2) of deposited CPUFs were measured via method of surface chemistry and spectroscopy. By comparing the results of surface chemistry with those of adsorption experiments, we demonstrate that the surface chemistry method is a useful tool in investigating CPUFs. We also found that the water soluble protein molecules could form protein-clay hybrid monolayer over the dilute clay dispersions without addition of surfactants, and CPUFs containing elementary clay sheets and protein with great homogeneity were easily prepared by controlling certain surface pressure. To investigate the bio-catalytic performance of the immobilized lysozyme in CPUFs, we deposited CPUFs onto a cover glass, and installed the cover glass in a flow cell-grown reactor for Comamonas testosteroni (WDL7-GFP) incubation. The results show that the pro- liferation of WDL7-GFP is greatly suppressed by lysozyme, which demonstrates that lysozyme still retains its bioactivity after it is immobilized in the CPUFs. 展开更多
关键词 PROTEIN clay mineral ultrathin films DESIGN bio-catalytic performance
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