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D E HUGHES

Publications and source records attributed to D E HUGHES.

At least 19 recordsLinked to original sources

THE METABOLISM OF HALOGEN-SUBSTITUTED BENZOIC ACIDS BY PSEUDOMONAS FLUORESCENS.

1. Washed suspensions of Pseudomonas fluorescens, grown with benzoate as sole carbon source, oxidize monohalogenobenzoates in the following descending order of effectiveness: benzoate, fluorobenzoates, chlorobenzoates, bromobenzoates, iodobenzoates. 2. Cells grown on asparagine oxidize benzoate after an adaptive period of 90-120min. This adaptive period is increased by halogenobenzoates in the following approximate descending order of effectiveness: chlorobenzoates, fluorobenzoates (=bromobenzoates), iodobenzoates. This inhibition of adaptation by halogeno analogues depends on the concentration of benzoate and is thus apparently competitive. 3. Cells do not adapt to oxidize the halobenzoates when the halogeno analogues are inducers. However, the fluorobenzoates reduce the lag period taken to form the benzoate-oxidizing system. 4. The halogenobenzoates inhibit adaptation to citrate and nicotinate but not so effectively as benzoate itself. This is presumably a ;diauxic' effect. The analogues do not inhibit adaptation to catechol. 5. The halogenobenzoates are not used as sole carbon source for growth nor do they increase growth when cells grow with asparagine as the main carbon source. 6. It is suggested that this inability to use the analogues for growth is due partly to inability of the cells to liberate the halogen and to carry the oxidation to a stage at which carbon may be assimilated and partly to the inhibition of the induction of the oxidizing enzymes.

Benzoates↗

INORGANIC POLYPHOSPHATE METABOLISM IN CHLOROBIUM THIOSULFATOPHILUM.

Hughes, D. E. (Dartmouth Medical School, Hanover, N.H.), S. F. Conti, and R. C. Fuller. Inorganic polyphosphate metabolism in Chlorobium thiosulfatophilum. J. Bacteriol. 85:577-584. 1963.-Cells of the obligate phototroph Chlorobium thiosulfatophilum, when grown on a normal concentration of inorganic phosphate, accumulated large intracellular metachromatic granules identified as polymetaphosphate. Inorganic phosphate was released from polymetaphosphate by cell-free extracts. This release was adenosine diphosphate-dependent and light-independent. When cells were subcultured through serial transfer in the absence of inorganic phosphate, the production of polymetaphosphate granules was almost completely stopped. After the serial transfer, these cells showed little or no endogenous release of inorganic phosphate or release from added polymetaphosphate. Using such polymetaphosphate-free cells, it has been possible to demonstrate photosynthetic phosphorylation by the naturally occurring photosynthetic macro-molecules isolated from this organism. These particles, of about 100 A in diameter with a molecular weight of approximately 1.5 million, are by far the simplest functional naturally occurring photosynthetic electron-transport units thus far described.

Adenosine Diphosphate↗