Microbial Transformation and Degradation of Toxic Organic ChemicalsThis book examines the role of microbes, from theoretical, field, and applied perspectives, in the degradation of toxic organic chemicals. |
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Page 23
( ed ) : The Bacteria , vol X , The Biology of Pseudomonas . Orlando : Academic
Press , pp 439 – 481 . Lessie TG , Wood MS , Byrne A , Ferrante A ( 1990 ) :
Transposable gene - activating elements in Pseudomonas cepacia . In Silver S ...
( ed ) : The Bacteria , vol X , The Biology of Pseudomonas . Orlando : Academic
Press , pp 439 – 481 . Lessie TG , Wood MS , Byrne A , Ferrante A ( 1990 ) :
Transposable gene - activating elements in Pseudomonas cepacia . In Silver S ...
Page 367
This approach was recently used in evaluating Pseudomonas strain PNPI for use
in the degradation of a waste stream containing aniline ( ANL ) and p -
nitrophenol ( PNP ) as two of the principal components ( Heitkamp et al . , 1990b )
.
This approach was recently used in evaluating Pseudomonas strain PNPI for use
in the degradation of a waste stream containing aniline ( ANL ) and p -
nitrophenol ( PNP ) as two of the principal components ( Heitkamp et al . , 1990b )
.
Page 649
... 43 Proteins , 562 – 564 Protozoa , 85 Pseudomonas aeruginosa anthracene
metabolism , 276 nutritional variability , 17 Pseudomonas cepacia , 224
chlorinated organic compounds , 457 – 458 genotype , 558 , 563 insertion
elements , 9 ...
... 43 Proteins , 562 – 564 Protozoa , 85 Pseudomonas aeruginosa anthracene
metabolism , 276 nutritional variability , 17 Pseudomonas cepacia , 224
chlorinated organic compounds , 457 – 458 genotype , 558 , 563 insertion
elements , 9 ...
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Contents
MICROBIAL VERSATILITY | 13 |
Norberto J Palleroni | 27 |
CLEANUP OF PETROLEUM HYDROCARBON | 77 |
Copyright | |
14 other sections not shown
Common terms and phrases
acid activity added addition aerobic anaerobic Appl Environ Microbiol application Aroclor aromatic bacteria biodegradation biological bioremediation biphenyl carbon cells changes chemical chlorinated chlorophenols complete compounds concentration congeners contaminated cultures dechlorination dechlorination processes decreases degradation dehalogenation demonstrated detected determine effect electron enrichment environmental enzymes et al example experiments factors field Figure gene Gibson glyphosate groups growth Hudson River hydrocarbons important increased indicated industrial initial involved isolated laboratory Lake levels limited mechanisms meta metabolism methods microbial microorganisms mineralization mixture naphthalene natural observed occur organic oxidation oxygen PAHs pathway pattern phenols populations potential present Pseudomonas reactions recent reductive relative removal reported responsible ring samples sediment selective showed shown sludge soil specific strain structure studies substrate suggested sulfate Table tion toluene toxic transformation treatment Ware waste