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I Silman

Showing results (141-150 of 153) with videos related to

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Biophysical Journal|August 16, 2005
Effects of soman inhibition and of structural differences on cholinesterase molecular dynamics: a neutron scattering studyF Gabel, M Weik, P Masson, et al.
Proceedings of the National Academy of Sciences of the United States of America|October 1, 1993
Quaternary ligand binding to aromatic residues in the active-site gorge of acetylcholinesteraseM Harel, I Schalk, L Ehret-Sabatier, et al.
Protein Engineering|April 1, 1992
The alpha/beta hydrolase foldD L Ollis, E Cheah, M Cygler, et al.
Science (New York, N.Y.)|March 4, 1994
Open "back door" in a molecular dynamics simulation of acetylcholinesteraseM K Gilson, T P Straatsma, J A McCammon, et al.
Proceedings of the National Academy of Sciences of the United States of America|January 19, 2000
Specific chemical and structural damage to proteins produced by synchrotron radiationM Weik, R B Ravelli, G Kryger, et al.
Protein Science : a Publication of the Protein Society|July 13, 2000
Three-dimensional structures of Drosophila melanogaster acetylcholinesterase and of its complexes with two potent inhibitorsM Harel, G Kryger, T L Rosenberry, et al.
Acta Crystallographica. Section D, Biological Crystallography|October 29, 2000
Structures of recombinant native and E202Q mutant human acetylcholinesterase complexed with the snake-venom toxin fasciculin-IIG Kryger, M Harel, K Giles, et al.
Biochemistry|June 3, 1999
Crystal structures of aged phosphonylated acetylcholinesterase: nerve agent reaction products at the atomic levelC B Millard, G Kryger, A Ordentlich, et al.
Biochemistry|February 28, 2002
3D structure of Torpedo californica acetylcholinesterase complexed with huprine X at 2.1 A resolution: kinetic and molecular dynamic correlatesH Dvir, D M Wong, M Harel, et al.
Biochemistry|August 28, 2002
X-ray structures of Torpedo californica acetylcholinesterase complexed with (+)-huperzine A and (-)-huperzine B: structural evidence for an active site rearrangementH Dvir, H L Jiang, D M Wong, et al.
Pageof 16

Showing results (141-150 of 153) with videos related to

Sort By:
Pageof 16
Biophysical Journal|August 16, 2005
Effects of soman inhibition and of structural differences on cholinesterase molecular dynamics: a neutron scattering studyF Gabel, M Weik, P Masson, et al.
Proceedings of the National Academy of Sciences of the United States of America|October 1, 1993
Quaternary ligand binding to aromatic residues in the active-site gorge of acetylcholinesteraseM Harel, I Schalk, L Ehret-Sabatier, et al.
Protein Engineering|April 1, 1992
The alpha/beta hydrolase foldD L Ollis, E Cheah, M Cygler, et al.
Science (New York, N.Y.)|March 4, 1994
Open "back door" in a molecular dynamics simulation of acetylcholinesteraseM K Gilson, T P Straatsma, J A McCammon, et al.
Proceedings of the National Academy of Sciences of the United States of America|January 19, 2000
Specific chemical and structural damage to proteins produced by synchrotron radiationM Weik, R B Ravelli, G Kryger, et al.
Protein Science : a Publication of the Protein Society|July 13, 2000
Three-dimensional structures of Drosophila melanogaster acetylcholinesterase and of its complexes with two potent inhibitorsM Harel, G Kryger, T L Rosenberry, et al.
Acta Crystallographica. Section D, Biological Crystallography|October 29, 2000
Structures of recombinant native and E202Q mutant human acetylcholinesterase complexed with the snake-venom toxin fasciculin-IIG Kryger, M Harel, K Giles, et al.
Biochemistry|June 3, 1999
Crystal structures of aged phosphonylated acetylcholinesterase: nerve agent reaction products at the atomic levelC B Millard, G Kryger, A Ordentlich, et al.
Biochemistry|February 28, 2002
3D structure of Torpedo californica acetylcholinesterase complexed with huprine X at 2.1 A resolution: kinetic and molecular dynamic correlatesH Dvir, D M Wong, M Harel, et al.
Biochemistry|August 28, 2002
X-ray structures of Torpedo californica acetylcholinesterase complexed with (+)-huperzine A and (-)-huperzine B: structural evidence for an active site rearrangementH Dvir, H L Jiang, D M Wong, et al.
Pageof 16