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Science (New York, N.Y.)|October 20, 2000
Structure of a glycerol-conducting channel and the basis for its selectivityD Fu, A Libson, L J Miercke, et al.Protein Engineering|August 31, 2000
Replacement set mutagenesis of the four phosphate-binding arginine residues of thymidylate synthaseS Kawase, S W Cho, J Rozelle, et al.Chemie Der Erde : Beitrage Zur Chemischen Mineralogie, Petrographie Und Geologie|April 23, 2019
The nature, origin and modification of insoluble organic matter in chondrites, the possibly interstellar source of Earth's C and NC M O'D Alexander, G D Cody, B T De Gregorio, et al.The Journal of Biological Chemistry|January 10, 1985
Domain structure of 3-hydroxy-3-methylglutaryl coenzyme A reductase, a glycoprotein of the endoplasmic reticulumL Liscum, J Finer-Moore, R M Stroud, et al.Proceedings of the National Academy of Sciences of the United States of America|November 1, 1989
Structure of a bacterial enzyme regulated by phosphorylation, isocitrate dehydrogenaseJ H Hurley, P E Thorsness, V Ramalingam, et al.Cold Spring Harbor Symposia on Quantitative Biology|January 1, 1983
Subunit organization and structure of an acetylcholine receptorR H Fairclough, J Finer-Moore, R A Love, et al.The Journal of Biological Chemistry|July 25, 1993
Structure of a non-peptide inhibitor complexed with HIV-1 protease. Developing a cycle of structure-based drug designE Rutenber, E B Fauman, R J Keenan, et al.Biochemistry|March 26, 1991
Wild-type and mutant bacteriorhodopsins D85N, D96N, and R82Q: purification to homogeneity, pH dependence of pumping, and electron diffractionL J Miercke, M C Betlach, A K Mitra, et al.Biochemistry|February 9, 1993
Bacteriorhodopsin D85N: three spectroscopic species in equilibriumG J Turner, L J Miercke, T E Thorgeirsson, et al.Biochemistry|December 31, 1997
Access to phosphorylation in isocitrate dehydrogenase may occur by domain shiftingJ Finer-Moore, S E Tsutakawa, D R Cherbavaz, et al.Pageof 16