Microbial Transformations of Selenium
- 1 January 1977
- journal article
- research article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 33 (1) , 31-37
- https://doi.org/10.1128/aem.33.1.31-37.1977
Abstract
Resting cell suspensions of a strain of Corynebacterium isolated from soil formed dimethyl selenide from selenate, selenite, elemental selenium, selenomethionine, selenocystine, and methaneseleninate. Extracts of the bacterium catalyzed the production of dimethyl selenide from selenite, elemental selenium, and methaneseleninate, and methylation of the inorganic Se compounds was enhanced by S-adenosylmethionine. Neither trimethylselenonium nor methaneselenonate was metabolized by the Corynebacterium. Resting cell suspensions of a methionine-utilizing pseudomonad converted selenomethionine to dimethyl diselenide. Six of 10 microorganisms able to grow on cystine used selenocystine as a sole source of carbon and formed elemental selenium, and one of the isolates, a pseudomonad, was found also to produce selenide. Soil enrichments converted trimethylselenonium to dimethyl selenide. Bacteria capable of utilizing trimethylselenonium, dimethyl selenide, and dimethyl diselenide as carbon sources were isolated from soil.This publication has 9 references indexed in Scilit:
- Acid-volatile selenium formation catalyzed by glutathione reductaseBiochemistry, 1975
- Evolution of dimethylselenide from soils.1974
- The nature of the acid-volatile selenium in the liver of the male ratBiochemical Journal, 1973
- The separation of some alkyl selenium compounds by gas chromatographyJournal of Chromatography A, 1966
- Selenoamino acid identification on paper chromatogramsJournal of Chromatography A, 1964
- Reactions of Seleno- and Sulfoamino Acids with Hydroperoxides*Biochemistry, 1964
- ACTIVATORS FOR THE CYSTEINE DESULFHYDRASE SYSTEM OF AN ESCHERICHIA COLI MUTANTJournal of Bacteriology, 1951
- PROTEIN MEASUREMENT WITH THE FOLIN PHENOL REAGENTJournal of Biological Chemistry, 1951