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A novel method for hydrophobin extraction using CO 2 foam fractionation system

机译:一种利用CO 2泡沫分离系统提取疏水蛋白的新方法

摘要

Due to the exceptional properties and many potential applications of hydrophobins, special fungal proteins, it becomes necessary to develop a real scale procedure for their production and purification. In our previous study (Deckers et al., 2010) [CO 2-hydrophobin structures acting as nanobombs in beer, Brew. Sci. 63:54-61], the strong interaction of CO 2-hydrophobin was demonstrated. For the first time, in an approach to isolate hydrophobin HFBII from the growth media of Trichoderma reesei, a foam fractionation system using CO 2 as the sparging gas was investigated in this study. Using CO 2 foam fractionation, the concentration of HFBII was increased from 0.10±0.02mg/mL up to 0.57±0.04mg/mL. This was shown after a purification step by conventional liquid chromatography and identification of the goal protein using MALDI-TOF. The obtained molecular weight of the protein was 7.042kDa which corresponds to the complete molecule of HFBII, minus the last aminoacid. Micro-spectrophotometry was used for quantification of purified HFBII. Moreover, different parameters of the foam fractionation system were optimized. The concentration of the protein after treatment by CO 2 followed by liquid chromatography was increased from 0.32±0.02 to 0.44±0.06mg/mL when the flow rate of gas injection was changed in the range of 1-3L/min. The highest amount of HFBII equal to 0.57±0.04mg/mL was obtained by the highest ratio of liquid height over the column height. Using the larger pore size frits causes increased protein absorption as well. The gushing potential of samples revealed that in contrast to the samples before CO 2 treatment, interestingly, no gushing was observed for the samples after treatment. The possibility that stable aggregates of HFBII molecules are formed as a consequence of their high concentration is discussed in this paper. By using DLS analysis of the overfoam, 100nm particle size of CO 2 nanobubbles coated by HFBII was obtained. The final concentration of the protein was carried out using Amicon ® ultracentrifuge device with the average recovery of 63.8±8.2%. © 2012 Elsevier B.V.
机译:由于疏水蛋白,特殊的真菌蛋白的优异性能和许多潜在的应用,有必要开发一种实际规模的生产和纯化方法。在我们之前的研究中(Deckers等,2010)[CO 2-疏水蛋白结构在啤酒中起纳米炸弹作用,布鲁尔。科学63:54-61],证明了CO 2-疏水蛋白的强相互作用。首次,从里氏木霉的生长培养基中分离出疏水蛋白HFBII的方法中,研究了使用CO 2作为喷射气体的泡沫分馏系统。使用CO 2泡沫分级分离,HFBII的浓度从0.10±0.02mg / mL增加到0.57±0.04mg / mL。这是通过常规液相色谱纯化步骤并使用MALDI-TOF鉴定目标蛋白后显示的。所获得的蛋白质分子量为7.042kDa,对应于HFBII的完整分子,减去最后一个氨基酸。显微分光光度法用于定量纯化的HFBII。此外,优化了泡沫分馏系统的不同参数。当注入气体的流速在1-3L / min的范围内变化时,CO 2 +液相色谱处理后的蛋白质浓度从0.32±0.02增加到0.44±0.06mg / mL。通过液体高度对色谱柱高度的最高比率,可获得最高的HFBII量等于0.57±0.04mg / mL。使用较大孔径的玻璃料也会导致蛋白质吸收增加。样品的涌出潜力表明,与CO 2处理之前的样品相比,有趣的是,在处理之后没有观察到涌出的样品。本文讨论了由于高浓度而形成HFBII分子稳定聚集体的可能性。通过对泡沫塑料的DLS分析,获得了由HFBII涂覆的CO 2纳米气泡的100nm粒径。蛋白质的最终浓度使用Amicon®超速离心仪进行,平均回收率为63.8±8.2%。 ©2012 Elsevier B.V.

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