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991.
992.
The aim of this work was to investigate the influence of some non-ionic surfactants, Tween 80 and Brij 98, on the viscosity
and flow behavior of a commercial montmorillonite clay, Veegum Granules. The effect of different concentrations of the surfactants
on the shear stress-shear rate rheograms of hydrated concentrated clay suspensions was determined by shear viscometry. The
addition of either surfactant increased the plastic viscosity and the yield stress of the suspensions. Furthermore both surfactants
altered the thixotropy of the suspensions to an extent that depended on both the surfactant concentration and the time of
equilibration of the surfactant and Veegum. Brij 98 had a greater and more rapid effect. It is proposed that the surfactant
polar head-groups anchor at the tetrahedral sheet surface, leaving the alkyl chains extending away from the edges and faces.
Consequently, the alkyl chains undergo hydrophobic interactions that facilitate the association between the platelets and
increase the physical structure within the suspension. Stereochemical differences between the polar groups may lead to differences
in the way the surfactants associate with the tetrahedral sheet and hence their ultimate effect on the rheological behavior.
There is a significant interaction between these surfactants and montmorillonite clays, and the rheological changes that occur
could have a major impact on any pharmaceutical formulation that uses these ingredients.
Published: March 30, 2007 相似文献
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Biodiversity and Conservation - Invasive predators, land clearing and altered fire regimes have been implicated in species decline and extinction worldwide. Enhanced knowledge of how these factors... 相似文献
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Identifying the contributions to thermodynamic stability of capsids is of fundamental and practical importance. Here we use simulation to assess how mutations affect the stability of lumazine synthase from the hyperthermophile Aquifex aeolicus, a T = 1 icosahedral capsid; in the simulations the icosahedral symmetry of the capsid is preserved by simulating a single pentamer and imposing crystal symmetry, in effect simulating an infinite cubic lattice of icosahedral capsids. The stability is assessed by estimating the free energy of association using an empirical method previously proposed to identify biological units in crystal structures. We investigate the effect on capsid formation of seven mutations, for which it has been experimentally assessed whether they disrupt capsid formation or not. With one exception, our approach predicts the effect of the mutations on the capsid stability. The method allows the identification of interaction networks, which drive capsid assembly, and highlights the plasticity of the interfaces between subunits in the capsid. Proteins 2015; 83:1733–1741. © 2015 The Authors. Proteins: Structure, Function, and Bioinformatics Published by Wiley Periodicals, Inc 相似文献
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Prion formation involves the conversion of soluble proteins into an infectious amyloid form. This process is highly specific, with prion aggregates templating the conversion of identical proteins. However, in some cases non-identical prion proteins can interact to promote or inhibit prion formation or propagation. These interactions affect both the efficiency with which prion diseases are transmitted across species and the normal physiology of yeast prion formation and propagation. Here we examine two types of heterologous prion interactions: interactions between related proteins from different species (the species barrier) and interactions between unrelated prion proteins within a single species. Interestingly, although very subtle changes in protein sequence can significantly reduce or eliminate cross-species prion transmission, in Saccharomyces cerevisiae completely unrelated prion proteins can interact to affect prion formation and propagation. 相似文献
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Zhang D Grode KD Stewman SF Diaz-Valencia JD Liebling E Rath U Riera T Currie JD Buster DW Asenjo AB Sosa HJ Ross JL Ma A Rogers SL Sharp DJ 《Nature cell biology》2011,13(4):361-370
Regulation of microtubule dynamics at the cell cortex is important for cell motility, morphogenesis and division. Here we show that the Drosophila katanin Dm-Kat60 functions to generate a dynamic cortical-microtubule interface in interphase cells. Dm-Kat60 concentrates at the cell cortex of S2 Drosophila cells during interphase, where it suppresses the polymerization of microtubule plus-ends, thereby preventing the formation of aberrantly dense cortical arrays. Dm-Kat60 also localizes at the leading edge of migratory D17 Drosophila cells and negatively regulates multiple parameters of their motility. Finally, in vitro, Dm-Kat60 severs and depolymerizes microtubules from their ends. On the basis of these data, we propose that Dm-Kat60 removes tubulin from microtubule lattice or microtubule ends that contact specific cortical sites to prevent stable and/or lateral attachments. The asymmetric distribution of such an activity could help generate regional variations in microtubule behaviours involved in cell migration. 相似文献