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By Alton Meister

Advances in Enzymology and comparable parts of Molecular Biology is a seminal sequence within the box of biochemistry, providing researchers entry to authoritative studies of the most recent discoveries in all components of enzymology and molecular biology. those landmark volumes date again to 1941, delivering an unequalled view of the historic improvement of enzymology. The sequence deals researchers the newest figuring out of enzymes, their mechanisms, reactions and evolution, roles in complicated organic approach, and their program in either the laboratory and undefined. each one quantity within the sequence gains contributions by means of top pioneers and investigators within the box from worldwide. All articles are conscientiously edited to make sure thoroughness, caliber, and clarity.

With its wide variety of issues and lengthy historic pedigree, Advances in Enzymology and similar components of Molecular Biology can be utilized not just by means of scholars and researchers in molecular biology, biochemistry, and enzymology, but additionally through any scientist drawn to the invention of an enzyme, its houses, and its purposes.


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Extra resources for Advances in Enzymology and Related Areas of Molecular Biology, Volume 15

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Chem. ,34, 345 (1944). 114. LuValle, J. ,J. Am. Chem. ,70,2234 (1948). 115. LuValle, J. , and Goddard, D. , Quart. Rev. , 23, 197 (1948). 116. Lyman, C. , and Barron, E. 5. , J. Biol. , 181,275 (1937). 117. , and Waters, W. , J. Chem. ,1963,323. 118. Maehly, A. ,in Enzymes and Enzyme Systems, Harvard Univ. , 1951,p. 47. 119. Mann, P. J. , and Saunders, B. , Proc. Roy. London, S119,47 (1935). 120. , J. Chem. , 1937, 1706. 121. Medalia, A. , and Kolthoff, I. , J . , 4, 377 (1949). 122. Merz, J.

And Waters, W. ,No. 14 (1953). 11. S. , J . Biol. , 181,285(1937). 12. Barron, E. S. , in Advances i n Enzymology, Vol. XI, Interscience, New York-London, 1951,p. 201. 12a. S. , Arch. Biochem. , 41, 175 (1952). 13. Baxendale, J. , in Advances in Catalysis, Vol. IV, Academic Press, N e w York, 1952,p. 31. 14. Baxendale, J. , Evans, M. , and Leach, S. , Biochim. el Biophys. Acta, 11, 597 (1953). 15. Baxendale, J. ,Evans, M. , and Park, G. , Trans. , 42, 155 (1946). 6, 319 (1952). 16. Bayliss, N.

Ne He 0 - C< These assumptions have received some theoretical justification with the calculations of Evans and Gergely (54). The object of these calculations was to determine the extent of orbital overlap between the most energetic electrons of adjacent protein chains and therefore to what extent they could be regarded aa conduction electrons. It was first assumed that there was the usual type of hydrogen bonding between peptide bonds in adjacent polypeptide chains in the extended &configuration.

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