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Items: 1 to 20 of 218

1.

The sulfonated osmolyte N-methyltaurine is dissimilated by Alcaligenes faecalis and by Paracoccus versutus with release of methylamine.

Weinitschke S, Denger K, Smits TH, Hollemeyer K, Cook AM.

Microbiology. 2006 Apr;152(Pt 4):1179-86.

PMID:
16549680
2.
3.

Enzymes and genes of taurine and isethionate dissimilation in Paracoccus denitrificans.

Brüggemann C, Denger K, Cook AM, Ruff J.

Microbiology. 2004 Apr;150(Pt 4):805-16.

PMID:
15073291
4.
5.

Amphoteric surfactant N-oleoyl-N-methyltaurine utilized by Pseudomonas alcaligenes with excretion of N-methyltaurine.

Denger K, Mayer J, Hollemeyer K, Cook AM.

FEMS Microbiol Lett. 2008 Nov;288(1):112-7. doi: 10.1111/j.1574-6968.2008.01341.x.

6.

N-acetyltaurine dissimilated via taurine by Delftia acidovorans NAT.

Mayer J, Denger K, Smits TH, Hollemeyer K, Groth U, Cook AM.

Arch Microbiol. 2006 Jul;186(1):61-7. Epub 2006 Jun 21.

PMID:
16802176
7.

Sulfoacetaldehyde is excreted quantitatively by Acinetobacter calcoaceticus SW1 during growth with taurine as sole source of nitrogen.

Weinitschke S, von Rekowski KS, Denger K, Cook AM.

Microbiology. 2005 Apr;151(Pt 4):1285-90.

PMID:
15817795
8.

Isethionate as a product from taurine during nitrogen-limited growth of Klebsiella oxytoca TauN1.

Styp von Rekowski K, Denger K, Cook AM.

Arch Microbiol. 2005 Aug;183(5):325-30. Epub 2005 May 10.

PMID:
15883781
9.

Sulfoacetate released during the assimilation of taurine-nitrogen by Neptuniibacter caesariensis: purification of sulfoacetaldehyde dehydrogenase.

Krejcík Z, Denger K, Weinitschke S, Hollemeyer K, Paces V, Cook AM, Smits TH.

Arch Microbiol. 2008 Aug;190(2):159-68. doi: 10.1007/s00203-008-0386-2. Epub 2008 May 28.

PMID:
18506422
10.

Structural comparison of crystal and solution states of the 138 kDa complex of methylamine dehydrogenase and amicyanin from Paracoccus versutus.

Cavalieri C, Biermann N, Vlasie MD, Einsle O, Merli A, Ferrari D, Rossi GL, Ubbink M.

Biochemistry. 2008 Jun 24;47(25):6560-70. doi: 10.1021/bi7023749. Erratum in: Biochemistry. 2009 May 12;48(18):4008.

PMID:
18512962
11.

Biomineralization of N,N-dimethylformamide by Paracoccus sp. strain DMF.

Swaroop S, Sughosh P, Ramanathan G.

J Hazard Mater. 2009 Nov 15;171(1-3):268-72. doi: 10.1016/j.jhazmat.2009.05.138. Epub 2009 Jun 6.

PMID:
19592157
12.

Sulfoacetate generated by Rhodopseudomonas palustris from taurine.

Denger K, Weinitschke S, Hollemeyer K, Cook AM.

Arch Microbiol. 2004 Oct;182(2-3):254-8. Epub 2004 Aug 31.

PMID:
15340795
13.

Molecular genetics and biochemistry of N-acetyltaurine degradation by Cupriavidus necator H16.

Denger K, Lehmann S, Cook AM.

Microbiology. 2011 Oct;157(Pt 10):2983-91. doi: 10.1099/mic.0.048462-0. Epub 2011 Jul 14.

PMID:
21757489
14.

Microbial degradation and metabolic pathway of pyridine by a Paracoccus sp. strain BW001.

Bai Y, Sun Q, Zhao C, Wen D, Tang X.

Biodegradation. 2008 Nov;19(6):915-26. doi: 10.1007/s10532-008-9193-3. Epub 2008 Apr 24.

PMID:
18437507
15.
16.

Biodegradation of phenol at high initial concentration by Alcaligenes faecalis.

Jiang Y, Wen J, Bai J, Jia X, Hu Z.

J Hazard Mater. 2007 Aug 17;147(1-2):672-6. Epub 2007 May 16.

PMID:
17597295
17.

Paracoccus denitrificans PD1222 utilizes hypotaurine via transamination followed by spontaneous desulfination to yield acetaldehyde and, finally, acetate for growth.

Felux AK, Denger K, Weiss M, Cook AM, Schleheck D.

J Bacteriol. 2013 Jun;195(12):2921-30. doi: 10.1128/JB.00307-13. Epub 2013 Apr 19.

19.

Expression of the mau genes involved in methylamine metabolism in Paracoccus denitrificans is under control of a LysR-type transcriptional activator.

Van Spanning RJ, van der Palen CJ, Slotboom DJ, Reijnders WN, Stouthamer AH, Duine JA.

Eur J Biochem. 1994 Nov 15;226(1):201-10.

20.

Linear alkanesulfonates as carbon and energy sources for gram-positive and gram-negative bacteria.

Reichenbecher W, Murrell JC.

Arch Microbiol. 1999 May-Jun;171(6):430-8.

PMID:
10369899

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