MECHANISM OF DIPICOLINIC ACID STIMULATION OF THE SOLUBLE REDUCED DIPHOSPHOPYRIDINE NUCLEOTIDE OXIDASE OF SPORES
Author:
Affiliation:
1. Department of Bacteriology, University of Wisconsin, Madison, Wisconsin
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Link
https://journals.asm.org/doi/pdf/10.1128/jb.81.4.642-648.1961
Reference23 articles.
1. BENTLEY R. 1955 Methods in enzymology vol. I p. 340 Edited by S. P. Colowick and N. 0. Kaplan. Academic Press Inc. New York.
2. A new powerful reducing agent-sodium borohydride in the presence of aluminum chloride and other polyvalent metal halides;BROWN H. C.;J. Am. Chem. Soc.,1956
3. Intermediate metabolism of aerobic spores. I. Activation of glucose oxidation in spores of Bacillus cereus var. terminalis;CHURCH B. D.;J. Bacteriol.,1957
4. Dependence of the heat resistance of bacterial endospores on their dipicolinic acid content;CHURCH B. D.;Nature,1959
5. Studies on spore germinatioin: its independence from alanine racemase activity;CHURCH B. D.;J. Bacteriol.,1954
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1. Inhibitory Action of Dipicolinic Acid on the Activation of Inactive Glucose Dehydrogenase fromBacillus subtilisSpores;Microbiology and Immunology;1987-01
2. α-α′-Dipyridyl or Ortho -Phenanthroline Stimulation of the Soluble Reduced Nicotinamide Adenine Dinucleotide Oxidase from Bacillus subtilis Spores and Dipicolinic Acid Inhibition of the Stimulated Enzyme;Journal of Bacteriology;1974-03
3. Acrylamide Gel Electrophoresis of Intracellular Proteins During Early Stages of Sporulation in Bacillus subtilis;Journal of Bacteriology;1971-11
4. Chapter VI Methods for Studying Bacterial Spores;Methods in Microbiology;1971
5. 4H-Pyran-2,6-dicarboxylate as a Substitute for Dipicolinate in the Sporulation of Bacillus megaterium;Journal of Biological Chemistry;1969-10
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