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C C DELWICHE

Publications and source records attributed to C C DELWICHE.

14 recordsLinked to original sources

MOLYBDENUM AS A MICRONUTRIENT FOR NITROBACTER.

Finstein, M. S. (University of California, Davis), and C. C. Delwiche. Molybdenum as a micronutrient for Nitrobacter. J. Bacteriol. 89:123-128. 1965.-The requirement of Nitrobacter for molybdenum was investigated by use of a medium purified by chemical means, as well as by depletion by the prior growth of this autotrophic bacterium. During 5 days of growth, added molybdenum induced an approximately 11-fold increase in both nitrite utilization and cell-mass development. In short-term studies, maximal response was obtained with concentrations as low as 10(-9)m. No other metal tested substituted for molybdenum. It is estimated that a minimum of 2,000 atoms of molybdenum is required for the synthesis of one Nitrobacter cell. Molybdenum did not directly influence the thermodynamic efficiency of Nitrobacter. The efficiency of molybdenum-deficient cultures and of cultures supplied with the micronutrient declined equally during the early stage of development, despite large differences in the amount of nitrite consumed. After the utilization of about 100 mumoles of nitrite per ml, cultures supplied with molybdenum became relatively less efficient. A procedure is described whereby large masses of Nitrobacter cells can be obtained with relative ease.

Bacteria↗

Phosphorylation by extracts of Nitrosomonas europaea.

Burge, W. D. (University of California, Berkeley), E. Malavolta, and C. C. Delwiche. Phosphorylation by extracts of Nitrosomonas europaea. J. Bacteriol. 85:106-110. 1963.-Cellfree preparations of Nitrosomonas europaea are capable of oxidizing hydroxylamine, but not ammonium ion, to nitrite. The quantity of nitrite formed by our preparations was, at most, equivalent to only 70% of the hydroxylamine added. Although the preparations had a strong phosphatase activity, resulting in a net loss of organic phosphate during the experimental period, P(32)-labeled inorganic phosphate was found to be incorporated into the organic fraction, including adenosine triphosphate (ATP) and adenosine diphosphate (ADP). The provision of hydroxylamine as substrate resulted in the formation of nitrite and an increased incorporation of P(32) into the organic fraction. It is concluded that the chemosynthetic autotroph Nitrosomonas, in common with certain other autotrophic organisms and heterotrophs, is capable of converting energy released in the oxidation of its inorganic substrate into high-energy phosphate units (ATP and ADP) for the mediation of other energy-requiring reactions. The simultaneous formation of ATP and ADP is interpreted as evidence for an adenylate kinase activity. The preparations used exhibited a considerable endogenous incorporation of P(32) into organic phosphate in the absence of added hydroxylamine. Cyanide inhibited both phosphorylation and the oxidation of hydroxylamine. Both the supernatant and particulate fractions of a Nitrosomonas extract subjected to centrifugal fields of 100,000 x g were active in phosphorylation and nitrite formation, but these activities appeared to be uncoupled in the particulate fraction and only partially coupled in the supernatant solution. This most likely reflects a significant endogenous respiration, and not a real lack of coupling between the two reactions.

Cyanides↗