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Proceedings of the National Academy of Sciences of the United States of America|July 1, 1988
Sources and evolution of human Alu repeated sequencesR J Britten, W F Baron, D B Stout, et al.Proceedings of the National Academy of Sciences of the United States of America|May 1, 1989
The current source of human Alu retroposons is a conserved gene shared with Old World monkeyR J Britten, D B Stout, E H DavidsonProceedings of the National Academy of Sciences of the United States of America|February 1, 1976
Studies on nucleic acid reassociation kinetics: empirical equations describing DNA reassociationR J Britten, E H DavidsonFederation Proceedings|August 1, 1976
DNA sequence arrangement and preliminary evidence on its evolutionR J Britten, E H DavidsonScience (New York, N.Y.)|June 8, 1979
Regulation of gene expression: possible role of repetitive sequencesE H Davidson, R J BrittenCell|December 1, 1978
The single-copy DNA sequence polymorphism of the sea urchin Strongylocentrotus purpuratusR J Britten, A Cetta, E H DavidsonDevelopmental Biology|May 1, 1994
Repeated sequence target sites for maternal DNA-binding proteins in genes activated in early sea urchin developmentR Anderson, R J Britten, E H DavidsonChromosoma|December 6, 1976
Contrasting patterns of DNA sequence arrangement in Apis mellifera (honeybee) and Musca domestica (housefly)W R Crain, E H Davidson, R J BrittenJournal of Molecular Evolution|March 1, 1990
Rapid evolution in a fraction of the Drosophila nuclear genomeS D Werman, E H Davidson, R J BrittenDevelopment, Growth & Differentiation|July 10, 1999
SM37, a skeletogenic gene of the sea urchin embryo linked to the SM50 geneY H Lee, R J Britten, E H DavidsonPageof 22