A unique 2-sulfated {beta}-galactan from the egg jelly of the sea urchin Glyptocidaris crenularis: conformation flexibility versus induction of the sperm acrosome reaction.
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Hugo Verli | Noritaka Hirohashi | V. Pomin | N. Hirohashi | H. Verli | P. Mourão | Michelle O Castro | Vitor H Pomin | Livia L Santos | Ana-Cristina E S Vilela-Silva | Laércio Pol-Fachin | Paulo A S Mourão | L. Pol-Fachin | A. Vilela-Silva | Michelle O. Castro | L. L. Santos | P. Mourão
[1] T. Darden,et al. Particle mesh Ewald: An N⋅log(N) method for Ewald sums in large systems , 1993 .
[2] Gerrit Groenhof,et al. GROMACS: Fast, flexible, and free , 2005, J. Comput. Chem..
[3] T. Yamagata,et al. Enzymatic methods for the determination of small quantities of isomeric chondroitin sulfates. , 1968, The Journal of biological chemistry.
[4] B. Mulloy,et al. Structure of a fucose-branched chondroitin sulfate from sea cucumber. Evidence for the presence of 3-O-sulfo-beta-D-glucuronosyl residues. , 1991, The Journal of biological chemistry.
[5] V. Vacquier,et al. Egg Sialoglycans Increase Intracellular pH and Potentiate the Acrosome Reaction of Sea Urchin Sperm* , 2002, The Journal of Biological Chemistry.
[6] P. A. Mourão,et al. A carbohydrate-based mechanism of species recognition in sea urchin fertilization. , 2007, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[7] B. Mulloy,et al. Sulfated fucans from echinoderms have a regular tetrasaccharide repeating unit defined by specific patterns of sulfation at the 0-2 and 0-4 positions. , 1994, The Journal of biological chemistry.
[8] V. Vacquier,et al. Egg fucose sulfate polymer, sialoglycan, and speract all trigger the sea urchin sperm acrosome reaction. , 2002, Biochemical and biophysical research communications.
[9] V. Vacquier,et al. Store-operated calcium channels trigger exocytosis of the sea urchin sperm acrosomal vesicle. , 2003, Biochemical and biophysical research communications.
[10] D. Buttle,et al. Improved quantitation and discrimination of sulphated glycosaminoglycans by use of dimethylmethylene blue. , 1986, Biochimica et biophysica acta.
[11] V. Vacquier,et al. Isolation of bindin: the protein responsible for adhesion of sperm to sea urchin eggs. , 1977, Proceedings of the National Academy of Sciences of the United States of America.
[12] Hugo Verli,et al. Insights into the induced fit mechanism in antithrombin-heparin interaction using molecular dynamics simulations. , 2005, Journal of molecular graphics & modelling.
[13] R. Dwek,et al. Glycobiology , 2018, Biochimie.
[14] H. W. Kircher. Gas-Liquid Partition Chromatography of Methylated Sugars , 1960 .
[15] P. B. Cowles. Experimental Immunochemistry , 1948, The Yale Journal of Biology and Medicine.
[16] P. Mourão,et al. Isolation, fractionation, and preliminary characterization of a novel class of sulfated glycans from the tunic of Styela plicata (Chordata Tunicata). , 1986, The Journal of biological chemistry.
[17] H. Verli,et al. Depiction of the forces participating in the 2-O-sulfo-alpha-L-iduronic acid conformational preference in heparin sequences in aqueous solutions. , 2008, Carbohydrate research.
[18] A. Valente,et al. Selective cleavage and anticoagulant activity of a sulfated fucan: stereospecific removal of a 2-sulfate ester from the polysaccharide by mild acid hydrolysis, preparation of oligosaccharides, and heparin cofactor II-dependent anticoagulant activity. , 2005, Glycobiology.
[19] R. Linhardt,et al. A new sulfated β-galactan from clams with anti-HIV activity , 1999 .
[20] J. Marks,et al. Carbohydrate‐based species recognition in sea urchin fertilization: another avenue for speciation? , 2004, Evolution & development.
[21] A. Valente,et al. Sulfated Fucans from the Egg Jellies of the Closely Related Sea Urchins Strongylocentrotus droebachiensis and Strongylocentrotus pallidus Ensure Species-specific Fertilization* , 2002, The Journal of Biological Chemistry.
[22] A. Valente,et al. A preponderantly 4-sulfated, 3-linked galactan from the green alga Codium isthmocladum. , 2007, Glycobiology.
[23] R. Woods,et al. Three-dimensional structures of oligosaccharides. , 1995, Current opinion in structural biology.
[24] M. Bilan,et al. Structure of a highly pyruvylated galactan sulfate from the Pacific green alga Codium yezoense (Bryopsidales, Chlorophyta). , 2007, Carbohydrate research.
[25] T. Straatsma,et al. THE MISSING TERM IN EFFECTIVE PAIR POTENTIALS , 1987 .
[26] 宁北芳,et al. 疟原虫var基因转换速率变化导致抗原变异[英]/Paul H, Robert P, Christodoulou Z, et al//Proc Natl Acad Sci U S A , 2005 .
[27] P. Mourão,et al. Structural features of sulfated glycans from the tunic of Styela plicata (Chordata-Tunicata). A unique occurrence of L-galactose in sulfated polysaccharides. , 1987, European journal of biochemistry.
[28] V. Vacquier,et al. Cyclic GMP-specific phosphodiesterase-5 regulates motility of sea urchin spermatozoa. , 2005, Molecular biology of the cell.
[29] B. Mulloy,et al. Sulfated Polysaccharides from the Egg Jelly Layer Are Species-specific Inducers of Acrosomal Reaction in Sperms of Sea Urchins* , 1997, The Journal of Biological Chemistry.
[30] V. Vacquier,et al. High Molecular Mass Egg Fucose Sulfate Polymer Is Required for Opening Both Ca2+ Channels Involved in Triggering the Sea Urchin Sperm Acrosome Reaction* , 2002, The Journal of Biological Chemistry.
[31] M. Bilan,et al. Structure of a sulfated xylogalactan from the calcareous red alga Corallina pilulifera P. et R. (Rhodophyta, Corallinaceae). , 1997, Carbohydrate research.
[32] A. Valente,et al. A 2-sulfated, 3-linked α-l-galactan is an anticoagulant polysaccharide , 2002 .
[33] A. Gamian,et al. 3-Deoxy-octulosonic-acid-containing hexasaccharide fragment of unusual core type isolated from Hafnia alvei 2 lipopolysaccharide. , 1995, European journal of biochemistry.
[34] N. Hirohashi,et al. The structure of sulfated polysaccharides ensures a carbohydrate-based mechanism for species recognition during sea urchin fertilization. , 2008, The International journal of developmental biology.
[35] J. A. Guimarães,et al. Molecular dynamics and atomic charge calculations in the study of heparin conformation in aqueous solution. , 2005, Carbohydrate research.
[36] Alan E. Mark,et al. The GROMOS96 Manual and User Guide , 1996 .
[37] A. W. Schüttelkopf,et al. PRODRG: a tool for high-throughput crystallography of protein-ligand complexes. , 2004, Acta crystallographica. Section D, Biological crystallography.
[38] V. K. Handa,et al. A facile synthesis of [3,6-di-O-acetyl-4-O-(chloroacetyl)-1,2-dideoxy-α-D-glucopyrano]-[2,1-d]-2-methyl-2-oxazoline for use in oligosaccharide synthesis , 1979 .
[39] A. Valente,et al. Mild acid hydrolysis of sulfated fucans: a selective 2-desulfation reaction and an alternative approach for preparing tailored sulfated oligosaccharides. , 2005, Glycobiology.
[40] V. Vacquier,et al. Females of the sea urchin Strongylocentrotus purpuratus differ in the structures of their egg jelly sulfated fucans. , 1998, Glycobiology.
[41] J. A. Guimarães,et al. Molecular dynamics simulation of a decasaccharide fragment of heparin in aqueous solution. , 2004, Carbohydrate research.
[42] J. A. Guimarães,et al. Conformation of sulfated galactan and sulfated fucan in aqueous solutions: implications to their anticoagulant activities. , 2007, Journal of molecular graphics & modelling.
[43] V. Vacquier,et al. Structure of the sulfated alpha-L-fucan from the egg jelly coat of the sea urchin Strongylocentrotus franciscanus: patterns of preferential 2-O- and 4-O-sulfation determine sperm cell recognition. , 1999, Glycobiology.
[44] F. Smith,et al. COLORIMETRIC METHOD FOR DETER-MINATION OF SUGAR AND RELATED SUBSTANCE , 1956 .