Uric Acid-Degrading Bacteria in Guts of Termites [ Reticulitermes flavipes (Kollar)]
- 1 July 1980
- journal article
- research article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 40 (1) , 117-124
- https://doi.org/10.1128/aem.40.1.117-124.1980
Abstract
Uricolytic bacteria were present in guts of Reticulitermes flavipes in populations up to 6 × 104 cells per gut. Of 82 strains isolated under strict anaerobic conditions, most were group N Streptococcus sp., Bacteroides termitidis, and Citrobacter sp. All isolates used uric acid (UA) as an energy source anaerobically, but not aerobically, and NH3 was the major nitrogenous product of uricolysis. However, none of the isolates had an absolute requirement for UA. Utilization of heterocyclic compounds other than UA was limited. Fresh termite gut contents also degraded UA anaerobically, as measured by 14CO2 evolution from [2-14C]UA. The magnitude of anaerobic uricolysis [0.67 pmol of UA catabolized/(gut × h)] was entirely consistent with the population density of uricolytic bacteria in situ. Uricolytic gut bacteria may convert UA in situ to products usable by termites for carbon, nitrogen, energy, or all three. This possibility is consistent with the fact that R. flavipes termites from UA, but they do not void the purine in excreta despite the lack of uricase in their tissues.This publication has 23 references indexed in Scilit:
- Symbiosis in Convoluta roscoffenis.1975
- Symbiotic relationships between termites and their intestinal microbiota.1975
- The Occurence and Properties of Uric Acid Decomposing Anaerobic Bacteria in the Avian CaecumJournal of Applied Bacteriology, 1974
- Anaerobic Utilization of Uric Acid by Some Group D StreptococciJournal of General Microbiology, 1974
- A very rapid method for washing large numbers of precipitates of proteins and nucleic acidsAnalytical Biochemistry, 1971
- Uric acid metabolism by symbiotic bacteria from the fat body of Periplaneta americanaComparative Biochemistry and Physiology, 1967
- Simple method for staining and preserving epoxy resin-embedded animal tissue sections for light microscopyLife Sciences, 1965
- Determination of the base composition of deoxyribonucleic acid from its buoyant density in CsClJournal of Molecular Biology, 1962
- IMPROVEMENTS IN EPOXY RESIN EMBEDDING METHODSThe Journal of cell biology, 1961
- Darwin and Early Discoveries in Connection with Plant HormonesScience, 1938