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X Soberon

Publications and source records attributed to X Soberon.

11 recordsLinked to original sources

Escherichia coli TEM1 beta-lactamase in CTAB reverse micelles: exchange/diffusion-limited catalysis.

We report kinetic data of penicillin hydrolysis catalyzed by beta-lactamase entrapped in reverse micelles formed with cetyl trimethylammonium bromide (CTAB), n-octane, hexanol and aqueous buffer. The K(cat) of this diffusion-limited reaction can be improved in aqueous buffer by a factor of 1.1-1.2 just by increasing the phosphate buffer concentration from 50 to 100 mM. In reverse micelles, increasing the buffer concentration has little effect on K(cat) when the size of the empty micelle is below the size of the protein. However, in larger micelles, the effect is enhanced and the K(cat) improves several fold, changing the form of the curve of K(cat) versus Wo from bell-shaped to almost hyperbolic. The results indicate that micellar exchange and internal diffusion may limit the reaction in reverse micelles and provide further evidence that the form of the curve depends on other factors besides the relationship between the size of the enzyme and that of the empty reverse micelle.

Catalysis↗

Temperature-sensitive mutants of the EcoRI endonuclease.

The EcoRI endonuclease is an important recombinant DNA tool and a paradigm of sequence-specific DNA-protein interactions. We have isolated temperature-sensitive (TS) EcoRI endonuclease mutants (R56Q, G78D, P90S, V97I, R105K, M157I, C218Y, A235E, M255I, T261I and L263F) and characterized activity in vivo and in vitro. Although the majority were TS for function in vivo, all of the mutant enzymes were stably expressed and largely soluble at both 30 degrees C and 42 degrees C in vivo and none of the mutants was found to be TS in vitro. These findings suggest that these mutations may affect folding of the enzyme at elevated temperature in vivo. Both non-conservative and conservative substitutions occurred but were not correlated with severity of the mutation. Of the 12 residues identified, 11 are conserved between EcoRI and the isoschizomer RsrI (which shares 50% identity), a further indication that these residues are critical for EcoRI structure and function. Inspection of the 2.8 A resolution X-ray crystal structure of the wild-type EcoRI endonuclease-DNA complex revealed that: (1) the TS mutations cluster in one half of the globular enzyme; (2) several of the substituted residues interact with each other; (3) most mutations would be predicted to disrupt local structures; (4) two mutations may affect the dimer interface (G78D and A235E); (5) one mutation (P90S) occurred in a residue that is part of, or immediately adjacent to, the EcoRI active site and which is conserved in the distantly related EcoRV endonuclease. Finally, one class of mutants restricted phage in vivo and was active in vitro, whereas a second class did not restrict and was inactive in vitro. The two classes of mutants may differ in kinetic properties or cleavage mechanism. In summary, these mutations provide insights into EcoRI structure and function, and complement previous genetic, biochemical, and structural analyses.

Bacteriophage lambda↗

Did cyclodextrin glycosyltransferases evolve from alpha-amylases?

The hydrolytic enzymes, alpha-amylases, and the cyclodextrin glycosyltransferases (CGTases) are key enzymes in the depolymerization of starch. These two groups of enzymes are evolutionarily related. We propose that the transferase activity is likely to have evolved from an ancestral hydrolase. Sequence analysis provides support for this hypothesis. Consequently, we have conducted an experimental study to test the possible adaptive value for evolving a CGTase. We found that when an alpha-amylase and a CGTase are combined more glucose is generated from starch than would be expected from the independent action of either of these enzymes. Thus, we propose that the biological role of CGTases is to work in concert with alpha-amylases for the efficient saccharification of starch. This observation can be useful in industrial processes aimed at producing syrups with high contents of glucose or maltose.

Bacteria↗

The disulfide bridges of toxin 2 from the scorpion Centruroides noxius Hoffmann and its three-dimensional structure calculated using the coordinates of variant 3 from Centruroides sculpturatus.

The disulfide bridges of toxin 2 from the venom of the scorpion Centruroides noxius Hoffmann were found by amino acid sequence determination of fragments of native toxin, produced by enzymatic cleavage and separated by high-performance liquid chromatography (HPLC). They are: Cys12-Cys65, Cys16-Cys41, Cys25-Cys46 and Cys29-Cys48. The coordinates of the X-ray diffraction structure of toxin variant 3 of C. sculpturatus [(1980) Proc. Natl. Acad. Sci. USA 77, 6496-6500] were used to construct a three-dimensional model of toxin 2. All the amino acid replacements were easily accommodated, and the modeled structure reveals a clustered pattern of sequence variation, which may help to identify residues responsible for functional differences among toxins of mammals and insects.

Amino Acid Sequence↗

Biological expression of an Escherichia coli consensus sequence promoter and some mutant derivatives.

A prokaryotic consensus sequence promoter has been chemically synthesized and cloned in bacterial plasmid vectors. This designed sequence is biologically active and promotes efficient expression of the genes to which it is fused. It is an unusually strong promoter in vitro, capable of specifying multiple rounds of transcription even when there is a large molar excess of heparin present prior to the addition of RNA polymerase. These properties make this a useful sequence for the in vitro production of RNAs. A 2-base-pair spacer mutant and a -35 region transversion mutant have been created in vitro in the synthetic promoter by synthetic-DNA-mediated, site-specific mutagenesis. The spacer mutant has a marginal in vivo effect on promoter strength but virtually abolishes the in vitro heparin resistance. The -35 region transversion changes a highly conserved nucleotide into the statistically least preferred base. This mutation has no marked effect on in vivo or in vitro promoter strength.

Base Sequence↗

Point mutagenesis of the ovalbumin gene promoter sequence and its effect on in vitro transcription.

The role of the eucaryotic T-A-T-A box (Hogness box) homology sequence located approximately 30 base pairs upstream from the RNA initiation site has been further examined by oligodeoxynucleotide-directed site-specific mutagenesis. A method was employed which allows insertion of nucleotide-specific mutations into virtually any double-stranded, recombinant plasmid DNA. A synthetic mixed oligonucleotide, bearing defined multiple nucleotide substitutions at a single site, was used both as a specific mutagen during primed DNA repair synthesis in vitro, as well as a highly sensitive hybridization probe for the identification of the mutated cloned DNA. Using this methodology, an A leads to G transition mutation was introduced into the second position of the ovalbumin gene T-[A]-T-A box, and the effect of modifying this highly conserved nucleotide on the expression of the mutant DNA was analyzed in a cell-free transcription system. Comparison of two allelic ovalbumin genes, slightly divergent upstream from the TATA box, resulted in identical in vitro transcription efficiencies. While correct initiation of ovalbumin RNA transcripts was not affected, the efficiency of gene expression using the mutant template, compared to either the corresponding wild-type sequence or the allelic gene, was markedly reduced. These results suggest that it is the T-A-T-A box sequence which plays a role in the efficient initiation of RNA transcription in vitro and further supports the implication that this region may serve a promoter-related function in eucaryotic transcription.

Animals↗

Role of positive charge on the amino-terminal region of the signal peptide in protein secretion across the membrane.

The positively charged amino-terminal region of the signal peptide has been proposed to have an important role at an initial step of protein secretion across the membrane (loop model). To test this hypothesis, the charge on the amino-terminal region of the signal peptide of the prolipoprotein of the Escherichia coli outer membrane was altered by using synthetic oligonucleotides from +2 to +1, 0, and -1 by guided site specific mutagenesis of a plasmid DNA carrying an inducible lipoprotein gene. The wild-type sequence of this sectio, Met-Lys-Ala-Thr-Lys (+2), was thus changed to Met-Lys-Asp-Thr-Lys (I-1; +1), Met-Ala-Thr-Lys (I-2; +1), Met-Asp-Thr-Lys (I-3; 0), and Met-Glu-Asp-Thr-Lys (I-4; -1). After induction of lipoprotein production, cells were pulse labeled with [35S]methionine for 10 sec. The lipoprotein of I-1, I-2, and I-3 was assembled in the membrane, although the rates of lipoprotein production progressively decreased as the charge on the signal peptide became more negative. Conversely, in the case of I-4, only a small amount of lipoprotein assembled in the membrane while a large amount of glycerol-unmodified prolipoprotein accumulated in the cytoplasm. This soluble prolipoprotein was gradually and posttranslationally secreted across the membrane to be modified and assembled in the membrane. These results indicate that the positively charged amino-terminal region of the signal peptide plays an important role in efficient protein secretion across the membrane.

Amino Acid Sequence↗

Construction and characterization of new cloning vehicles. IV. Deletion derivatives of pBR322 and pBR325.

In vitro recombinant DNA experiments involving restriction endonuclease fragments derived from the plasmids pBR322 and pBR325 resulted in the construction of two new cloning vehicles. One of these plasmids, designated pBR327, was obtained after an EcoRII partial digestion of pBR322. The plasmid pBR327 confers resistance to tetracycline and ampicillin, contains 3273 base pairs (bp) and therefore is 1089 bp smaller than pBR322. The other newly constructed vector, which has been designated pBR328, confers resistance to chloramphenicol as well as the two former antibiotics. This plasmid contains unique HindIII, BamHI and SalI sites in the tetracycline resistance gene, unique PvuI and PstI sites in the ampicillin resistance gene and unique EcoRI, PvuII and BalI sites in the chloramphenicol resistance gene. The pBR328 plasmid contains approx. 4900 bp.

Ampicillin↗