Thomas Zimmermann
Wallis
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Publication
Featured researches published by Thomas Zimmermann.
Journal of Bacteriology | 2004
Christian Hildmann; Milena Ninkovic; Rüdiger Dietrich; Dennis Wegener; Daniel Riester; Thomas Zimmermann; Olwen M Birch; Christine Dr. Bernegger; Peter Loidl; Andreas Schwienhorst
The full-length gene encoding the histone deacetylase (HDAC)-like amidohydrolase (HDAH) from Bordetella or Alcaligenes (Bordetella/Alcaligenes) strain FB188 (DSM 11172) was cloned using degenerate primer PCR combined with inverse-PCR techniques and ultimately expressed in Escherichia coli. The expressed enzyme was biochemically characterized and found to be similar to the native enzyme for all properties examined. Nucleotide sequence analysis revealed an open reading frame of 1,110 bp which encodes a polypeptide with a theoretical molecular mass of 39 kDa. Interestingly, peptide sequencing disclosed that the N-terminal methionine is lacking in the mature wild-type enzyme, presumably due to the action of methionyl aminopeptidase. Sequence database searches suggest that the new amidohydrolase belongs to the HDAC superfamily, with the closest homologs being found in the subfamily assigned acetylpolyamine amidohydrolases (APAH). The APAH subfamily comprises enzymes or putative enzymes from such diverse microorganisms as Pseudomonas aeruginosa, Archaeoglobus fulgidus, and the actinomycete Mycoplana ramosa (formerly M. bullata). The FB188 HDAH, however, is only moderately active in catalyzing the deacetylation of acetylpolyamines. In fact, FB188 HDAH exhibits significant activity in standard HDAC assays and is inhibited by known HDAC inhibitors such as trichostatin A and suberoylanilide hydroxamic acid (SAHA). Several lines of evidence indicate that the FB188 HDAH is very similar to class 1 and 2 HDACs and contains a Zn(2+) ion in the active site which contributes significantly to catalytic activity. Initial biotechnological applications demonstrated the extensive substrate spectrum and broad optimum pH range to be excellent criteria for using the new HDAH from Bordetella/Alcaligenes strain FB188 as a biocatalyst in technical biotransformations, e.g., within the scope of human immunodeficiency virus reverse transcriptase inhibitor synthesis.
Organic Process Research & Development | 2002
Nicholas Shaw; Andrew Naughton; Karen Robins; Andreas Tinschert; Evelyne Schmid; Marie-Louise Hischier; Veronika Venetz; Josef Werlen; Thomas Zimmermann; Walter Brieden; Patricia De Riedmatten; Jean-Paul Roduit; Bertin Zimmermann; Roman NEUMüLLER
Archive | 1994
Thomas Zimmermann; Josef Werlen
Archive | 1992
Thomas Zimmermann; Karen Robins; Olwen M Birch; Elisabeth Böhlen
Archive | 1997
Walter Brieden; Andrew Naughton; Karen Robins; Nicholas Shaw; Andreas Tinschert; Thomas Zimmermann
Archive | 1991
Thomas Zimmermann; Andreas Kiener; Shigeaki Harayama
Archive | 1992
Andreas Kiener; Thomas Zimmermann
Archive | 1991
Thomas Zimmermann; Andreas Kiener; Shigeaki Harayama
Archive | 1992
Andreas Kiener; Thomas Zimmermann
Archive | 2002
Uwe T. Bornscheuer; Anna Musidlowska; Josef Werlen; Thomas Zimmermann; Benno Tscherry