Abstract
Tracer experiments were carried out in an attempt to explain why guanineless auxotrophs can use diaminopurine as a guanine replacement but nonexacting purine auxotrophs cannot do so. Cell suspensions of the nonexacting purineless Bacillus subtilis MB-1356 incorporated more radioactivity from diaminopurine-2-(14)C into nucleic acid than did guanineless B. subtilis MB-1517. The radioactivity in MB-1356 ribonucleic acid (RNA) was distributed in both adenine and guanine nucleotides, thus eliminating the possibility that the deamination of diaminopurine to guanine occurred predominantly on the level of nucleoside di- or triphosphates. Strain MB-1517 incorporated adenine-8-(14)C into nucleic acids extremely poorly. This correlated with results obtained with cell-free extracts; strain MB-1517 showed much less adenosine monophosphate (AMP) pyrophosphorylase activity than did MB-1356. Likewise, guanineless MB-1517 converted diaminopurine to its nucleotide much more slowly than did the nonexacting purine auxotroph. The results indicated that the lack of growth of nonexacting auxotrophs on diaminopurine alone is due not to an inability to convert the analogue to nucleic acid adenine but to the greater capacity of the nonexacting auxotrophs to convert diaminopurine to its 5'-ribonucleotide. Presumably, this compound, or a coenzyme analogue produced from it, inhibits growth of mutants which cannot make AMP de novo and only when the medium is devoid of adenine.
MeSH Terms
Adenine/metabolism
Adenine Nucleotides/metabolism
Bacillus subtilis/metabolism
Carbon Isotopes
Cell-Free System
Guanine/metabolism
Mutation
Nucleotides/metabolism
Purines/metabolism
RNA, Bacterial/analysis
Chemicals
Adenine Nucleotides
Carbon Isotopes
Nucleotides
Purines
RNA, Bacterial
Guanine
Adenine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Shigeura H T
Demain A L
References (23)
23 references, click to expand
-
The metabolism of 2,6-diaminopurine by diaminopurine-sensitive and diaminopurine-resistant L-strain mouse fibroblasts.
Can J Biochem. 1965 Nov;43(11):1857-78
PMID: 5867006
-
Identification of analogues of nicotinamide adenine dinucleotide among the metabolites of 2,6-diaminopurine in mammalian cells.
J Biol Chem. 1966 Mar 10;241(5):1114-21
PMID: 4286777
-
Adenine aminohydrolase. An investigation of specificity.
J Biol Chem. 1967 Feb 25;242(4):740-6
PMID: 6017742
-
Adenylate and 2,6-diaminopurine ribonucleotide pyrophosphorylase activities of L cells.
Can J Biochem. 1967 Apr;45(4):435-49
PMID: 6033819
-
Purification and properties of ATP deaminase from Microsporum audouini.
J Biochem. 1967 Jan;61(1):1-9
PMID: 6048966
-
Dependence of diaminopurine utilization on the mutational site of purine auxotrophy in Bacillus subtilis. 1. Nutritional experiments.
J Bacteriol. 1968 Feb;95(2):565-71
PMID: 4966550
-
Enzymatic phosphorylation of adenosine and 2,6-diaminopurine riboside.
J Biol Chem. 1951 Dec;193(2):481-95
PMID: 14907737
-
The incorporation of exogenous purines into pentose nucleic acid by Lactobacillus casei.
J Biol Chem. 1952 May;196(2):729-47
PMID: 12981013
-
Direct deamination of adenosine diphosphate by washed myofibrils.
Nature. 1953 Sep 5;172(4375):453-4
PMID: 13087269
-
Utilization of purines for nucleic acid synthesis in chrysomonads and other organisms.
Ann N Y Acad Sci. 1953 Oct 14;56(5):961-8
PMID: 13139287
-
Nucleotide metabolism. II. Chromatographic separation of acid-soluble nucleotides.
J Biol Chem. 1954 Jul;209(1):23-39
PMID: 13192056
-
Metabolism of 2, 6-diaminopurine; conversion to 5'-phosphoribosyl-2-methylamino-beta-aminopurine by enzymes of Escherichia coli.
J Biol Chem. 1957 Sep;228(1):325-38
PMID: 13475321
-
Enzymatic synthesis of 5'-phosphate nucleotides of purine analogues.
J Biol Chem. 1958 Mar;231(1):467-80
PMID: 13538984
-
Antagonisms between purines and purine analogues in auxotrophs of Salmonella typhimurium.
J Bacteriol. 1961 Mar;81:331-7
PMID: 13750937
-
Formation of 2-azaadenine and 2, 6-diaminopurine analogues of adenosine triphosphate in human erythrocytes.
Biochim Biophys Acta. 1962 Mar 12;57:613-5
PMID: 13919807
-
GENETIC ALTERATION OF ADENYLIC PYROPHOSPHORYLASE IN SALMONELLA.
Science. 1963 Nov 8;142(3593):680-1
PMID: 14068216
-
END-PRODUCT INHIBITION OF THYMIDINE KINASE ACTIVITY IN NORMAL AND LEUKEMIC HUMAN LEUKOCYTES.
Cancer Res. 1964 Jun;24:841-6
PMID: 14190550
-
3-RIBOSYLPURINES. I. SYNTHESIS OF (3-RIBOSYLURIC ACID) 5'-PHOSPHATE AND (3-RIBOSYLXANTHINE) 5'-PHOSPHATE BY A PYRIMIDINE RIBONUCLEOTIDE PYROPHOSPHORYLASE OF BEEF ERYTHROCYTES.
J Biol Chem. 1964 Aug;239:2580-6
PMID: 14235538
-
FEEDBACK INHIBITION OF URIDINE KINASE BY CYTIDINE TRIPHOSPHATE AND URIDINE TRIPHOSPHATE.
Biochim Biophys Acta. 1964 Nov 15;91:380-6
PMID: 14254009
-
THE EFFECTS OF 3'-DEOXYADENOSINE ON THE SYNTHESIS OF RIBONUCLEIC ACID.
J Biol Chem. 1965 Feb;240:806-10
PMID: 14275139
-
The utilization of purines by purineless mutants of Aerobacter aerogenes.
J Biol Chem. 1956 Apr;219(2):917-26
PMID: 13319311
-
Guanosine 5'-phosphate reductase and its role in the interconversion of purine nucleotides.
J Biol Chem. 1960 May;235:1474-8
PMID: 14419794
-
COBAMIDES AND RIBONUCLEOTIDE REDUCTION. I. COBAMIDE STIMULATION OF RIBONUCLEOTIDE REDUCTION IN EXTRACTS OF LACTOBACILLUS LEICHMANNII.
J Biol Chem. 1965 May;240:2173-80
PMID: 14299643