Searched for: subject%3A%22Solvent%255C%2Btolerance%22
(1 - 8 of 8)
document
Bandounas, L. (author), Ballerstedt, H. (author), de Winde, J.H. (author), Ruijssenaars, H.J. (author)
Pseudomonas putida S12 is a promising platform organism for the biological production of substituted aromatic compounds due to its extreme tolerance towards toxic chemicals. Solvent or aromatic stress tolerance may be due to membrane modifications and efflux pumps; however in general, polyamines have also been implicated in stressed cells....
article 2011
document
Wijte, D. (author), van Baar, B.L.M. (author), Heck, A.J.R. (author), Altelaar, A.F.M. (author)
To enhance target production from biocatalysts, it is necessary to thoroughly understand the molecular mechanisms involved in production, degradation, and, importantly, adaptation to the required environment. One such bacterium with high potential for biocatalysis is the solvent-tolerant bacteria Pseudomonas putida S12, which, among others, is...
article 2011
document
Wierckx, N. (author), Ruijssenaars, H.J. (author), de Winde, J.H. (author), Schmid, A. (author), Blank, L.M. (author), TNO Kwaliteit van Leven (author)
The physiological effects of genetic and transcriptional changes observed in a phenol producing mutant of the solvent-tolerant Pseudomonas putida S12 were assessed with metabolic flux analysis. The upregulation of a malate/lactate dehydrogenase encoding gene could be connected to a flux increase from malate to oxaloacetate. A mutation in the...
article 2009
document
Volkers, R.J.M. (author), Ballerstedt, H. (author), Ruijssenaars, H. (author), de Bont, J.A.M. (author), de Winde, J.H. (author), Wery, J. (author), TNO Kwaliteit van Leven (author)
Pseudomonas putida S12 is well known for its remarkable solvent tolerance. Transcriptomics analysis of this bacterium grown in toluene-containing chemostats revealed the differential expression of 253 genes. As expected, the genes encoding one of the major solvent tolerance mechanisms, the solvent efflux pump SrpABC and its regulatory genes...
article 2009
document
Ruijssenaars, H.J. (author), Sperling, E.M.G.M. (author), Wiegerinck, P.H.G. (author), Brands, F.T.L. (author), Wery, J. (author), de Bont, J.A.M. (author), TNO Kwaliteit van Leven (author)
A steroid 15β-hydroxylating whole-cell solvent tolerant biocatalyst was constructed by expressing the Bacillus megaterium steroid hydroxylase CYP106A2 in the solvent tolerant Pseudomonas putida S12. Testosterone hydroxylation was improved by a factor 16 by co-expressing Fer, a putative Fe-S protein from Bacillus subtilis. In addition, the...
article 2007
document
Nijkamp, K. (author), Westerhof, R.G.M. (author), Ballerstedt, H. (author), de Bont, J.A.M. (author), Wery, J. (author), TNO Kwaliteit van Leven (author)
A Pseudomonas putida S12 strain was constructed that is able to convert glucose to p-coumarate via the central metabolite l-tyrosine. Efficient production was hampered by product degradation, limited cellular L-tyrosine availability, and formation of the by-product cinnamate via L-phenylalanine. The production host was optimized by inactivation...
article 2007
document
Verhoef, S. (author), Ruijssenaars, H.J. (author), de Bont, J.A.M. (author), Wery, J. (author), TNO Kwaliteit van Leven (author)
Pseudomonas putida strain S12palB1 was constructed that produces p-hydroxybenzoate from renewable carbon sources via the central metabolite l-tyrosine. P. putida S12palB1 was based on the platform strain P. putida S12TPL3, which has an optimised carbon flux towards l-tyrosine. Phenylalanine ammonia lyase (Pal) was introduced for the conversion...
article 2007
document
Ballerstedt, H. (author), Volkers, R.J.M. (author), Mars, A.E. (author), Hallsworth, J.E. (author), Santos, V.A.M.D. (author), Puchalka, J. (author), van Duuren, J. (author), Eggink, G. (author), Timmis, K.N. (author), de Bont, J.A.M. (author), Wery, J. (author), TNO Kwaliteit van Leven (author)
Pseudomonas putida KT2440 is the only fully sequenced P. putida strain. Thus, for transcriptomics and proteomics studies with other P. putida strains, the P. putida KT2440 genomic database serves as standard reference. The utility of KT2440 whole-genome, high-density oligonucleotide microarrays for transcriptomics studies of other Pseudomonas...
article 2007
Searched for: subject%3A%22Solvent%255C%2Btolerance%22
(1 - 8 of 8)