Understanding lipopolysaccharide aggregation and its influence on activation of Factor C.
暂无分享,去创建一个
[1] N. Kameta,et al. Preparation and Formation Process of Zn(II)-Coordinated Nanovesicles. , 2017, Langmuir : the ACS journal of surfaces and colloids.
[2] H. Motschmann,et al. Masking of endotoxin in surfactant samples: Effects on Limulus-based detection systems. , 2016, Biologicals : journal of the International Association of Biological Standardization.
[3] M. Tsuchiya. Possible Mechanism of Low Endotoxin Recovery 1 Possible Mechanism of Low Endotoxin Recovery , 2016 .
[4] Sandor Balog,et al. Avoiding drying-artifacts in transmission electron microscopy: Characterizing the size and colloidal state of nanoparticles , 2015, Scientific Reports.
[5] G. Acar,et al. Alcohols Effect on Critic Micelle Concentration of Polysorbate 20 and Cetyl Trimethyl Ammonium Bromine Mixed Solutions , 2013, Journal of surfactants and detergents.
[6] T. Sidim,et al. Some Surface Properties of Polysorbates and Cetyl Trimethyl Ammonium Bromine Mixed Systems , 2011 .
[7] K. Brandenburg,et al. Effects of specific versus nonspecific ionic interactions on the structure and lateral organization of lipopolysaccharides. , 2011, Biophysical journal.
[8] B. Kerwin. Polysorbates 20 and 80 used in the formulation of protein biotherapeutics: structure and degradation pathways. , 2008, Journal of pharmaceutical sciences.
[9] S. White,et al. Aggregation behavior of an ultra-pure lipopolysaccharide that stimulates TLR-4 receptors. , 2008, Biophysical journal.
[10] N. Abbott,et al. Lipoplexes formed by DNA and ferrocenyl lipids: effect of lipid oxidation state on size, internal dynamics, and zeta-potential. , 2007, Biophysical journal.
[11] S. Iwanaga. Biochemical principle of Limulus test for detecting bacterial endotoxins , 2007, Proceedings of the Japan Academy. Series B, Physical and biological sciences.
[12] D. Reinhoudt,et al. Intravesicular and intervesicular interaction by orthogonal multivalent host–guest and metal–ligand complexation , 2007, Proceedings of the National Academy of Sciences.
[13] Peng Li,et al. Molecular mechanisms that govern the specificity of Sushi peptides for Gram-negative bacterial membrane lipids. , 2006, Biochemistry.
[14] Göran Widmalm,et al. The structures of Escherichia coli O-polysaccharide antigens. , 2006, FEMS microbiology reviews.
[15] J. L. Ding,et al. The molecular mechanism of interaction between sushi peptide and Pseudomonas endotoxin. , 2006, Cellular & molecular immunology.
[16] N. Abbott,et al. Electrochemical control of the interactions of polymers and redox-active surfactants. , 2005, Langmuir : the ACS journal of surfaces and colloids.
[17] Jonathan Cohen. The immunopathogenesis of sepsis , 2002, Nature.
[18] R. Devraj,et al. Release studies on niosomes containing fatty alcohols as bilayer stabilizers instead of cholesterol. , 2002, Journal of colloid and interface science.
[19] J. L. Ding,et al. Definition of endotoxin binding sites in horseshoe crab Factor C recombinant sushi proteins and neutralization of endotoxin by sushi peptides , 2000, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[20] Ghosh,et al. Interfacial and Micellization Behaviors of Binary and Ternary Mixtures of Amphiphiles (Tween-20, Brij-35, and Sodium Dodecyl Sulfate) in Aqueous Medium. , 1998, Journal of colloid and interface science.
[21] N. Surolia,et al. Titration calorimetric studies to elucidate the specificity of the interactions of polymyxin B with lipopolysaccharides and lipid A. , 1996, The Biochemical journal.
[22] R. Roth,et al. Human hemoglobin increases the biological activity of bacterial lipopolysaccharides in activation of Limulus amebocyte lysate and stimulation of tissue factor production by endothelial cells in vitro , 1994 .
[23] K. Takayama,et al. Monomeric Re lipopolysaccharide from Escherichia coli is more active than the aggregated form in the Limulus amebocyte lysate assay and in inducing Egr-1 mRNA in murine peritoneal macrophages. , 1994, The Journal of biological chemistry.
[24] M. Kastowsky,et al. Effect of pH on solubility and ionic state of lipopolysaccharide obtained from the deep rough mutant of Escherichia coli. , 1993, Biochemistry.
[25] G. Jackson,et al. The Pathogenesis of Bacterial Infections , 1985 .
[26] C. Tondre,et al. On the kinetics of the micelle dissolution-formation equilibrium in solutions of cationic detergents: A comparison between temperature-jump and stopped-flow data , 1978 .
[27] D. Dekegel,et al. Macromolecular structure of lipopolysaccharides from gram-negative bacteria. , 1973, European journal of biochemistry.
[28] M. DePamphilis. Dissociation and Reassembly of Escherichia coli Outer Membrane and of Lipopolysaccharide, and Their Reassembly onto Flagellar Basal Bodies , 1971 .
[29] J. Adler,et al. Attachment of Flagellar Basal Bodies to the Cell Envelope: Specific Attachment to the Outer, Lipopolysaccharide Membrane and the Cytoplasmic Membrane , 1971, Journal of bacteriology.