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Studies of enzyme-catalyzed modification of proteins. I. Tyrosinase-catalyzed modification of asparaginase.

Asparaginase [EC 3.5.1.1.] of Escherichia coli, an anti-tumor enzyme, was inactivated in a time-dependent fashion by mushroom tyrosinase [EC1.14.18.1.]. The inactivation did not proceed, however, when heat-inactivated tyrosinase was used. Exculusion of the atmospheric oxygen or addition of diethyldithiocarbamate, a copper selective chelating agent, prevented the inactivation. The difference absorption spectrum of tyrosinase-inactivated asparaginase versus intact asparaginase exhibited the appearance of marked absorption peaks at 300 and 350 nm. These results indicate that the tyrosyl residue(s) of asparaginase, which is essential for the activity is enzymatically modified by tyrosianes.

Asparaginase↗

Protein-polymer grafts, IV. A. Modification of amino acids: IIai. Modification of free lysine with reductive arylation.

Inability to increase the yield of reaction between 2,4 dihydroxybenzaldehyde and gelatin beyond 55 and 60% has led to an extensive investigation of reductive alkylation with free lysine. Even with free lysine, the extent of reaction was about 60%. Since this could be attributed to the electron donation by the phenolic hydroxyls, reductive alkylation was performed between o-, m-, and p-nitrobenzaldehydes and free lysine; o- and m-nitrobenzaldehyde were ineffective in increasing the yield while with p-nitrobenzaldehyde a yield of 72% was achieved. The unreacted 28% of the lysines are susceptible to epichlorohydrin. These results suggest that the slow, reversible first step in reductive alkylation, the formation of the Schiff's base, is responsible for the low yield.

Alkylation↗

Spectinomycin modification. II. Spectinomycin C-3'-modification via diazoketone intermediates.

The C-3'-carbonyl group of N-protected spectinomycin is efficiently converted into a diazo group via base treatment of the corresponding tosylhydrazone. The diazo group imparts a new synthetically useful reactivity pattern on the sugar ring of the molecule. The synthesis of C-3'-deoxo-, monohalo- and dihalospectinomycins via the intermediacy of these diazo compounds is described. The reduced bioactivity of these analogs as compared to the parent and the C-3'-dihydro and aminospectinomycins established the need for hydrogen bonding groups in this region of the molecule for good activity, further refining the structure activity relationships in the spectinomycin series.

Chemical Phenomena↗

Chemical modification and structure-activity relationships of pyripyropenes. 1. Modification at the four hydroxyl groups.

Four hydroxyl groups of pyripyropenes have been modified and evaluated for their ability to inhibit microsomal acyl-CoA:cholesterol acyltransferase (ACAT) activity in vitro and to lower cholesterol absorption in vivo in a cholesterol-fed hamster. 7-O-n-Valeryl derivative (8c) improved the in vitro ACAT inhibitory activity (IC50 = 13 nM) about 7 times better than pyripyropene A. Introduction of methanesulfonyl group at 11-hydroxyl group (17a) increased both in vitro activity (IC50 = 19 nM) and in vivo efficacy (ED50 = 10 mg/kg).

Animals↗

Post-translational modification of protein by tyrosine sulfation: active sulfate PAPS is the essential substrate for this modification.

In vitro tyrosine sulfation of recombinant proteins would be a valuable tool in converting those proteins expressed in prokaryotic vectors to their natural form. For this purpose tyrosylprotein sulfotransferase (TPST), the enzyme responsible for tyrosine sulfation of proteins, was characterized from a bovine liver Golgi preparation. TPST was active in a acidic environment with a pH optimum of 6.25, and displayed a stimulation by the Mn2+, with the optimum activity in the presence of 5mM MnCl2. TPST was able to sulfate recombinant hirudin variant 1 (rHV-1) expressed in Escherichia coli and the C-terminal hirudin fragment 54-65 but not the N-terminal hirudin fragment 1-15 by using 3'-phosphoadenosine 5'-phosphosulfate (PAPS), indicating its specificity for the naturally sulfated tyrosine 63. Comparison of the reaction kinetics on synthetic peptides showed that the bovine liver TPST has a higher affinity and reaction rates for those peptides with a aspartyl residue on the N-terminal side of the tyrosine when compared with a glutamyl residue.

Amino Acid Sequence↗

[Affinity modification of DNA-dependent RNA-polymerase from phage T7 with 5'-p-fluorosulfonylbenzoyl adenosine: the effect of modification on the interaction with substrates].

T7 RNA polymerase, covalently modified with 5'-p-fluorosulfonylbenzoyl adenosine, looses the ability of binding the promoter (pGEM-2 plasmid) and poly(dC) template as well as the initiating nucleoside triphosphate (GTP). However the enzyme retains the unspecific binding with DNA fragments of considerable length.

Adenosine↗

The fokI restriction-modification system. I. Organization and nucleotide sequences of the restriction and modification genes.

A DNA fragment that carried the genes coding for FokI endonuclease and methylase was cloned from the chromosomal DNA of Flavobacterium okeanokoites, and the coding regions were assigned to the nucleotide sequence by deletion analysis. The methylase gene was 1,941 base pairs (bp) long, corresponding to a protein of 647 amino acid residues (Mr = 75,622), and the endonuclease gene was 1,749 bp long, corresponding to a protein of 583 amino acid residues (Mr = 66,216). The assignment of the methylase gene was further confirmed by analysis of the N-terminal amino acid sequence. The endonuclease gene was downstream from the methylase gene in the same orientation, separated by 69 bp. The promoter site, which could be recognized by Escherichia coli RNA polymerase, was upstream from the methylase gene, and the sequences adhering to the ribosome-binding sequence were identified in front of the respective genes. Analysis of the gene products expressed in E. coli cells by gel filtration and sodium dodecyl sulfate-polyacrylamide gel electrophoresis indicated that the molecular weights of both enzymes coincided well with the values estimated from the nucleotide sequences, and that the monomeric forms were catalytically active. No significant similarity was found between the sequences of the two enzymes. Sequence comparison with other related enzymes indicated that FokI methylase contained two copies of a segment of tetra-amino acids which is characteristic of adenine-specific methylase.

Amino Acid Sequence↗