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Nucleic Acids Research|June 25, 1990
A human immunoglobulin kappa orphon without sequence defects may be the product of a pericentric inversionC Huber, R Thiebe, H Hameister, et al.Nucleic Acids Research|May 11, 1988
An ACCC-containing protein-binding sequence in the neighbourhood of the decanucleotide recognition site of the immunoglobulin gene promoterR Mocikat, G J Pruijn, P C van der Vliet, et al.European Journal of Immunology|November 1, 1993
The human immunoglobulin kappa locus. Characterization of the partially duplicated L regionsC Huber, E Huber, A Lautner-Rieske, et al.RNA (New York, N.Y.)|March 1, 1996
Structure of 4.5S RNA in the signal recognition particle of Escherichia coli as studied by enzymatic and chemical probingG Lentzen, H Moine, C Ehresmann, et al.The Journal of Biological Chemistry|January 8, 2000
Stimulation of the GTPase activity of translation elongation factor G by ribosomal protein L7/12A Savelsbergh, D Mohr, B Wilden, et al.Journal of Molecular Biology|June 5, 1985
A large section of the gene locus encoding human immunoglobulin variable regions of the kappa type is duplicatedM Pech, H Smola, H D Pohlenz, et al.Journal of Molecular Biology|June 20, 1986
Mechanism of ribosomal translocation. Translocation limits the rate of Escherichia coli elongation factor G-promoted GTP hydrolysisJ M Robertson, C Urbanke, G Chinali, et al.The Journal of Biological Chemistry|January 12, 1996
Initial binding of the elongation factor Tu.GTP.aminoacyl-tRNA complex preceding codon recognition on the ribosomeM V Rodnina, T Pape, R Fricke, et al.The EMBO Journal|December 2, 1996
The G222D mutation in elongation factor Tu inhibits the codon-induced conformational changes leading to GTPase activation on the ribosomeE Vorstenbosch, T Pape, M V Rodnina, et al.Molecular Cell|September 13, 2000
Conformationally restricted elongation factor G retains GTPase activity but is inactive in translocation on the ribosomeF Peske, N B Matassova, A Savelsbergh, et al.Pageof 19