Download e-book for kindle: Foundations of modern biochemistry by Margery G. Ord and Lloyd A. Stocken (Eds.)

By Margery G. Ord and Lloyd A. Stocken (Eds.)


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Nature 284, 604^07. , & Schaller, H. (1973). Purification and properties of DNA polymerase III. Eur. J. Biochem. 34, 440-447. B. (1985). Molecular basis of gene expression: Origins from the pajama experiment. BioEssays 2, 86-89. L. G. (1969). Molecular hybridization of radioactive DNA to the DNA of cytological preparations. Proc. Natl. Acad. Sci. USA 64, 600-604. Pauling, L. B. (1953). Aproposed structure for the nucleic acids. Proc. Natl. Acad. Sci. USA 39, 84-97. P. (1969). Nucleoli—the cellular site for ribosome production.

Physiol. Rev. 25, 643—663. J. (1960). Calf thymus polymerases. J. Biol. Chem. 235, 2399-2403. Brachet, J. (1957). Biochemical Cytology. Academic Press, New York. Brawerman, E. (1974). Eukaryotic mRNA. Annu. Rev. Biochem. 43, 621-642. , Jacob, R, & Meselson, H. (1961). An unstable intermediate carrying information from genes to ribosomes for protein synthesis. Nature 190, 576-581. J. H. (1969). Gene regulation for higher cells: A theory. Science 165,349-357. J. E. (1968). Repeated sequences in DNA.

Lobban and Kaiser (1973) showed that it was possible to convert linear phage 22 DNA into double-stranded circles, closed covalently. This they did by first using X phage exonuclease to produce 3' singlestrand ends on the phage DNA; terminal transferase was used to add strings of Manipulating DNA 31 adenines to one preparation and strings of thymidines to another; annealing the two populations of molecules through these poly-A and poly-T extensions; and finally treating with DNA ligase, exonuclease III, and DNA polymerase I to covalently link and repair the annealed strands.

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