ENHANCEMENT OF POLYETHER BIODEGRADATION IN ACTIVATED-SLUDGE FOLLOWING EXPOSURE TO CONDITIONING AGENTS

被引:2
作者
CHRISTOPHER, LJ
HOLZER, G
HUBBARD, JS
机构
[1] GEORGIA INST TECHNOL,SCH BIOL,ATLANTA,GA 30332
[2] GEORGIA INST TECHNOL,BIOTECHNOL RES CTR,ATLANTA,GA 30332
关键词
POLYETHYLENE GLYCOL; POLYPROPYLENE GLYCOL; BIODEGRADATION; BIOREMEDIATION; ACTIVATED SLUDGE;
D O I
10.1080/09593339209385180
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Activated sludge exposed to C18 unsaturated fatty acid diesters of polyethylene glycol (PEG) acquires the ability to degrade PEG of average molecular weight (Mn) 1,000, 1,450, 3,350 but not 8,000. Likewise, a polypropylene glycol (PPG) diester of oleic acid enhances the degradation of PPG Mn 1,025. An analogous enhancement in PEG degradative activity is effected by pre-exposure to polyoxyethylene oleyl monoether. Enhancement of degradation is restricted to polyethers which are the same kind as used in the pretreatment; for example, samples pre-exposed to PEG unsaturated diester are unable to degrade PPG. Thin layer chromatographic analysis of PEG incubations indicates disappearance of PEGs from the supernatant without a noticeable change in the molecular weight of remaining PEGs. Removal of these compounds from the supernatants occurs well before catabolic CO2 evolution is completed. Since there were negligible increases in the biomass and acetylesterase activity resulting from the catabolism of PEG or its diester and minimal levels of C-14-assimilation from C-14-PEG, the responsible microbial populations are apparently not deriving growth or energetic benefits from the degradative process. A working model consistant with these findings assumes the polyethers are degraded by enzymes specific for other substrates, i.e., examples of cometabolism or fortuitous metabolism. It is proposed that degradation of recalcitrant pollutants could be enhanced by the addition of metabolizable derivatives of the pollutants (conditioning agents) to ecosystems.
引用
收藏
页码:521 / 530
页数:10
相关论文
共 17 条
[11]  
OGATA K, 1975, J FERMENT TECHNOL, V53, P757
[12]   MICROSCOPIC COUNTING AND ADENOSINE 5'-TRIPHOSPHATE MEASUREMENT IN DETERMINING MICROBIAL-GROWTH IN SOILS [J].
PAUL, EA ;
JOHNSON, RL .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1977, 34 (03) :263-269
[13]  
SCHNURER J, 1982, APPL ENVIRON MICROB, V43, P1256
[14]   CARBON-MONOXIDE METABOLISM IN ROADSIDE SOILS [J].
SPRATT, HG ;
HUBBARD, JS .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1981, 41 (05) :1192-1201
[15]   METABOLITES AND BIODEGRADATION PATHWAYS OF FATTY ALCOHOL ETHOXYLATES IN MICROBIAL BIOCENOSES OF SEWAGE-TREATMENT PLANTS [J].
STEBER, J ;
WIERICH, P .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1985, 49 (03) :530-537
[16]  
Swisher R.D., 1970, SURFACTANT BIODEGRAD
[17]   BIODEGRADATION OF POLYETHYLENE GLYCOLS BY SEWAGE BACTERIA [J].
WATSON, GK ;
JONES, N .
WATER RESEARCH, 1977, 11 (01) :95-100