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首页> 外文期刊>Journal of Biotechnology >Investigation of structural changes of beta-casein and lysozyme at the gas-liquid interface during foam fractionation.
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Investigation of structural changes of beta-casein and lysozyme at the gas-liquid interface during foam fractionation.

机译:泡沫分离过程中气-液界面上β-酪蛋白和溶菌酶的结构变化研究。

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摘要

Purification and separation of proteins play a major role in biotechnology. Nowadays, alternatives to multistep operations suffering from low product yields and high costs are investigated closely amidst which one of the promising options is foam fractionation. The molecular behavior at the gas-liquid interface plays an important role in the formation and stabilization of enriched foam. This study for the first time correlates the physico-chemical parameters to the molecular structure in view of protein enrichment during foam fractionation of the two relatively different proteins lysozyme and beta-casein employing biophysical techniques such as circular dichroism (CD) spectroscopy and infrared reflection absorption spectroscopy (IRRAS). In case of lysozyme, high enrichment was achieved at pH < pI in contrast to current opinion. This is due to partial unfolding and aggregation of the lysozyme molecules under favorable foaming conditions that resulted with high enrichment of foamed protein. Under these favorable conditions, CD spectra and IRRA spectra show that the unfolding of lysozyme is partially irreversible. However, the unfavorable foaming conditions, giving low enrichment, promote only minor structural changes and these changes are fully reversible. In case of beta-casein, no pronounced unfolding can be observed using CD spectroscopy and IRRAS. The beta-casein molecules adsorb and purely reorient at the gas-liquid interface, depending on favorable or unfavorable conditions
机译:蛋白质的纯化和分离在生物技术中起着重要作用。如今,对于收率低和成本高的多步操作的替代方案,人们进行了密切的研究,其中泡沫分离是最有希望的选择之一。气液界面处的分子行为在富泡沫的形成和稳定中起着重要作用。鉴于圆二色谱(CD)光谱和红外反射吸收等生物物理技术,两种相对不同的蛋白溶菌酶和β-酪蛋白的泡沫分离过程中,蛋白质富集过程中,这项研究首次将理化参数与分子结构相关联光谱(IRRAS)。与目前的观点相反,在溶菌酶的情况下,在pH I时实现了高度富集。这是由于在有利的发泡条件下溶菌酶分子的部分展开和聚集,导致发泡蛋白的高度富集。在这些有利条件下,CD光谱和IRRA光谱显示溶菌酶的展开是部分不可逆的。但是,不利的起泡条件会导致浓度低,仅会导致微小的结构变化,并且这些变化是完全可逆的。对于β-酪蛋白,使用CD光谱和IRRAS不能观察到明显的展开。 β-酪蛋白分子在气-液界面处吸附并完全重新定向,具体取决于有利或不利的条件

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