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Biomedical subjects

W Lubitz

Publications and source records attributed to W Lubitz.

At least 127 records · Page 7Linked to original sources

ENDOR studies of the intermediate electron acceptor radical anion I-. in Photosystem II reaction centers.

The EPR and ENDOR characteristics of the intermediate electron acceptor radical anion I-. in Photosystem II (PS II) are shown to be identical in membrane particles and in the D1D2 cytochrome b-559 complex (Nanba, O. and Satoh, K. (1987) Proc. Natl. Acad. Sci. USA 84, 109-112). These findings provide further evidence that the D1D2 complex is the reaction center of PS II and show that the pheophytin binding site is intact. A hydrogen bond between I-. and the protein (GLU D1-130) is postulated on the basis of D2O exchange experiments. The ENDOR data of I-. and of the pheophytin a radical anion in different organic solvents are compared and the observed differences are related to structural changes of the molecule on the basis of molecular orbital calculations (RHF-INDO/SP). The importance of the orientation of the vinyl group (attached to ring I) on electron transfer is discussed.

Anions↗

Biochemical characterization of phi X174-protein-E-mediated lysis of Escherichia coli.

Energetic and permeability properties of Escherichia coli cells were determined prior to and during lysis caused by expression of the cloned gene E of bacteriophage phi X174. Before onset of cell lysis the transmembrane gradients for K+, Na+ or Mg2+/ions, the level of ATP and the membrane potential, were unaffected. All these parameters changed simultaneously at the time of lysis onset, as monitored by measurements of culture turbidity as well as by determining the various specifications over a period of 1 min. During cell lysis chromosomal DNA was fragmented whereas plasmid DNA was liberated in its intact supercoiled form. Cytoplasmic constituents were released almost entirely, as indicated by the activity of beta-galactosidase in the supernatant fraction of protein-E-lysed cells. Periplasmic enzymes were only found in limited amounts in the cell supernatant and most remained associated with the cell ghosts. Such ghosts exhibited no gross cell damage or morphological alterations when compared with intact E. coli by light microscopy. All parameters investigated indicated that protein-E-mediated lysis of E. coli is caused by the formation of a transmembrane tunnel structure through the envelope complex of the bacterium.

Bacteriophage phi X 174↗

Evidence for membrane-bound oligomerization of bacteriophage phi X174 lysis protein-E.

The expression of cloned bacteriophage phi X174 lysis gene E was analyzed in minicells of Escherichia coli using two-dimensional gel electrophoresis. Beside the 10-11-kDa protein-E, at least two additional protein bands were detected, associated with the inner membrane, which showed the same isoelectric point as E. To clarify whether these proteins were E-specific, two different antibodies directed against a beta-galactosidase-E' hybrid protein and a synthetic oligopeptide corresponding to the C-terminal end of protein-E were raised. Immunoadsorption studies with anti-peptide-specific antibodies resulted in the detection of protein-E as well as in the detection of proteins of higher molecular weight. Two of these protein bands were positively recognized by anti beta-galactosidase-E' antibodies. The latter protein bands had the same molecular weight as the putative protein-E bands detected by two-dimensional gel electrophoresis indicating that these bands represent protein-E-specific oligomers. These data support the idea that an E-specific oligomeric structure penetrating the inner and outer membrane of E. coli is formed during the lytic action of protein-E.

Antibodies↗

Direct determination of molecular ratios of peptides coupled via N-succinimidyl 3-(2-pyridyldithio)propionate to carrier proteins using high performance liquid chromatography.

A simple, rapid and reproducible method is presented for direct determination of the substitution ratio of a carrier protein with a synthetic nonradioactively labeled peptide. The peptide was covalently linked by a thiol group of a cysteine residue to the immunogenic carrier protein using the heterobifunctional reagent N-succinimidyl 3-(2-pyridyldithio)propionate. The substitution ratio was determined after reductive cleavage of the intermolecular disulfide bond between peptide and carrier and the amount of carrier and peptide quantitated directly by calibrated HPLC analysis within 15 min.

Animals↗

Evaluation of the interaction of phi X174 gene products E and K in E-mediated lysis of Escherichia coli.

Gene K of bacteriophage phi X174 was cloned, and its gene product was localized in the cell envelope of Escherichia coli. Compared with the sole expression of the phi X174 lysis gene E, the simultaneous expression of the K and E genes had no effect on scheduling of cell lysis. Therefore, a direct interaction of proteins E and K could be excluded. In contrast, phi X174 infection of a host carrying a plasmid expressing gene K resulted in a delayed lysis and an apparent increase in phage titer.

Bacteriophage phi X 174↗

Proton-motive-force-dependent step in the pathway to lysis of Escherichia coli induced by bacteriophage phi X174 gene E product.

We examined the cellular effects after the expression of the cloned lysis gene E of bacteriophage phi X174. Chloramphenicol prevented lysis only when added within the first minute of derepression of E synthesis, indicating that a time lag of several minutes exists between the synthesis of the E protein and the onset of cell lysis. Experiments with protonophores showed the existence of a subsequent step dependent on proton motive force at about 3 to 5 min before lysis.

Adenosine Triphosphate↗

Differential induction of Escherichia coli autolysis by penicillin and the bacteriophage phi X174 gene E product.

The behavior of the temperature-sensitive, penicillin-tolerant Escherichia coli mutant VC44 to endogenously induced autolysis by the bacteriophage phi X174 gene E product (gpE) was investigated. Expression of the cloned phi X174 lysis gene showed that cultures of strain VC44 grown at the restricted temperature were fully sensitive to endogenously induced autolysis. The results revealed that the modes of E. coli lysis induction by gpE and by penicillin differ and that the trigger mechanisms for autolysis depend greatly on the specific inducer used.

Autolysis↗

Electron nuclear double resonance of semiquinones in reaction centers of Rhodopseudomonas sphaeroides.

Replacement of Fe2+ by Zn2+ in reaction centers of Rhodopseudomonas sphaeroides enabled us to perform ENDOR (electron nuclear double resonance) experiments on the anion radicals of the primary and secondary ubiquinone acceptors (QA- and QB-. Differences between the QA and QB sites, hydrogen bonding to the oxygens, interactions with the protons of the proteins and some symmetry properties of the binding sites were deduced from an analysis of the ENDOR spectra.

Bacterial Proteins↗

Deletion of C-terminal amino acid codons of PhiX174 gene E: effect on its lysis inducing properties.

The lysis gene E of bacteriophage PhiX174 has been subjected to deletion and fusion analysis. Deletions of 11 to 90% of gene E specific nucleotides coding for to C-terminal region of the gene product were cloned under transcriptional control of lambda pL. For this purpose plasmid pSU1 was constructed which carries an extended polylinker region downstream of pL. Depending on the number of nucleotides after the last gene E specific codon, various C-terminal segments of protein E were replaced by 4, 5, 53 or 314 unrelated amino acids. Functional analysis for lysis inducing properties of the various gene E mutants revealed that the final 9 codons of the gene could be deleted without loss of function. However, replacements of 19 or more C-terminal codons eliminated gene E activity. Although the functional site of the gene E product is located within the N-terminal half of the polypeptide, the C-terminal part of the protein appears to exhibit severe influence on conformation and/or regulation of the functional site.

Amino Acid Sequence↗

Influence of C-terminal modifications of phi X174 lysis gene E on its lysis-inducing properties.

The phi X174 gene E product (gpE) causes lysis of Escherichia coli by inducing the host autolytic system. Experiments were carried out to ascertain which part of the 91 amino acid polypeptide carries the functional site for this process. For this purpose fusion genes were created comprising the first 51 codons of gene E and unrelated sequences coding for 102 or 33 amino acids respectively. The chimeric protein of 153 amino acids consisting of the N-terminal part of gpE and a fragment of beta-galactosidase, was neither able to lyse E. coli nor to restore beta-galactosidase activity by alpha-complementation. Expression of the 84 amino acid polypeptide, however, was able to induce lysis of E. coli. It is therefore concluded that the functional lysis-inducing site of gpE is located within the cloned N-terminal part of gene E. In the shorter chimeric protein the sequence following the functional site was tolerated or necessary for stabilization, but in the longer chimeric protein, the C-terminal sequence disturbed the lysis-inducing conformation.

Amino Acid Sequence↗

Lysis of Escherichia coli by cloned phi X174 gene E depends on its expression.

The lysis gene E of bacteriophage phi X174 was cloned under transcriptional control of the lefthanded lambda promoter, giving rise to plasmid pSB12. Plasmid pSB22, identical to pSB12 except for an amber mutation in gene E, was constructed in the same way. Induction of the cloned wild-type gene by heat inactivation of the thermosensitive lambda cI857 repressor resulted in lysis of the host bacteria. With plasmid pSB22 only amber suppressor strains of Escherichia coli lysed after heat inactivation of lambda cI857. Lysis of E. coli was shown to depend on the rate of gene E translation and on the growth phase of the bacteria. Stationary cells could not be lysed by the gene E product (gpE), even if present in sufficient amounts to lyse growing cells. By isotopic labelling gpE could be detected among the proteins synthesized in normal E. coli as well as in minicells. Determination of gene E expression suggested that gpE synthesis is translationally regulated.

Bacteriophage phi X 174↗

15N electron nuclear double resonance of the primary donor cation radical P+.865 in reaction centers of Rhodopseudomonas sphaeroides: additional evidence for the dimer model.

Four 15N hyperfine coupling constants, including signs, have been measured by electron nuclear double resonance (ENDOR) and electron nuclear nuclear triple resonance (TRIPLE) for the bacteriochlorophyll a radical cation, BChla+., in vitro and for the light-induced primary donor radical cation, P+.865, in reaction centers of Rhodopseudomonas sphaeroides R-26. A comparison of the data shows that the hyperfine coupling constants have the same sign in both radicals and are, on the average, smaller by a factor of 2 in P+.865. These results provide additional evidence that P+.865 is a bacteriochlorophyll dimer and are in contradiction with the monomer structure of P+.865 recently proposed by O'Malley and Babcock. The reduction factors of the individual 15N couplings, together with the evidence from proton ENDOR data and molecular orbital calculations, indicate a dimer structure in which only two rings (either I and I or III and III) of the bacteriochlorophyll macrocycles overlap.

Bacterial Proteins↗

Structural studies of the primary donor cation radical P(870) in reaction centers of Rhodospirillum rubrum by electron-nuclear double resonance in solution.

The light-induced cation radical of the primary electron donor, P(870) (+.), in photosynthetic reaction centers from Rhodospirillum rubrum G-9, has been investigated by electron-nuclear double resonance (ENDOR) in liquid aqueous solution. The measured hyperfine coupling constants are assigned to specific molecular positions by partial deuteration. Comparison with the bacteriochlorophyll a cation radical shows different reduction factors of the individual coupling constants deviating from the value 2.0 reported in earlier investigations in frozen solutions. The average of the coupling constants is, however, reduced by a factor very close to 2.0. EPR simulations using the ENDOR coupling constants support a dimer model for P(870) (+.) with C(2) symmetry, where the two macrocycles are close enough to form a supermolecular orbital resulting in a different distribution of the unpaired electron, compared with the monomeric bacteriochlorophyll a cation radical. Molecular orbital calculations were used to obtain structural information about this dimer.

Journal Article↗

Lysis of Escherichia coli after infection with phiX174 depends on the regulation of the cellular autolytic system.

The relationship between the rate of lysis of Escherichia coli infected with bacteriophage phiX174 and the physiological state of the host bacteria was determined. The lysis rate was comparable to the growth rate only in cells grown in rich media, whereas in minimal medium it was much slower than the growth rate. Lysis of starved cells grown in minimal medium could not be induced by phiX174 although progeny phages were produced. Lysis of E. coli provoked by expression of the cloned phiX174 lysis gene could be prevented by MgSO4 concentrations which also prevented lysis by induced autolysins whereas prevention of lysis of phage-infected E. coli needed much higher concentrations of MgSO4. Prevention of lysis in the latter case did not reestablish viability of the infected cells whereas induction of the cloned phiX174 lysis gene allowed continued multiplication in the presence of MgSO4. Lysis of E. coli by expression of the cloned phiX174 lysis gene was suppressed at pH 6.0 and could be turned on immediately upon upshift to pH 6.8. Phage-infected cells lysed at pH 6.0. At pH 8.0, lysis of E. coli by phage infection or by the cloned lysis gene product was suppressed. pH downshifts in both cases were not followed by lysis. The results suggest that the phiX174 lysis gene product interacts in a reversible manner with the regulation of the autolytic system of E. coli.

Anti-Bacterial Agents↗

Requirement for a functional host cell autolytic enzyme system for lysis of Escherichia coli by bacteriophage phi X174.

Escherichia coli VC30 is a temperature-sensitive mutant which is defective in autolysis. Strain VC30 lyses at 30 degrees C when treated with beta-lactam antibiotics or D-cycloserine or when deprived of diaminiopimelic acid. The same treatments inhibit growth of the mutant at 42 degrees C but do not cause lysis. Strain VC30 was used here to investigate the mechanism of host cell lysis induced by bacteriophage phi X 174. Strain VC30 was transformed with plasmid pUH12, which carries the cloned lysis gene (gene E) of phage phi X174 under the control of the lac operator-promoter, and with plasmid pMC7, which encodes the lac repressor to keep the E gene silent. Infection of strain VC30(pUH12)(pMC7) with phage phi X174 culminated in lysis at 30 degrees C. At 42 degrees C, intracellular phage development was normal, but lysis did not occur unless a temperature downshift to 30 degrees C was imposed. Similarly, induction of the cloned phi X174 gene E with isopropyl-beta-D-thiogalactoside resulted in lysis at 30 degrees C but not at 42 degrees C. Temperature downshift of the induced culture to 30 degrees C resulted in lysis even in the presence of chloramphenicol. These results indicate that host cell lysis by phage phi X174 is dependent on a functional cellular autolytic enzyme system.

Bacteriophage phi X 174↗

Lysis of Escherichia coli by induction of cloned phi X174 genes.

The largest of the fragments produced by AluI digestion of phi X174 RFI DNA comprises genes E and J as well as parts of genes D and F. This DNA fragment (1007 bp) was cloned into the lac z' gene of plasmid pUR222. In the recombinant plasmid pUH12, transcription of the phi X174 genes is controlled by the lac p-o region. Induction of the cloned genes by addition of the lac inducer, IPTG, resulted in lysis of the bacteria. Cloning of the corresponding AluI-fragment from phi X174am3 DNA, carrying an amber mutation in gene E, showed that the expression of this gene alone is sufficient to trigger cell lysis. The time interval between the addition of IPTG and the onset of lysis depended on the concentration of the inducer, however, the rate of lysis was similar at all IPTG concentrations used.

Bacteriophage phi X 174↗

Establishment of attached and non-attached cell lines from an uncommon human glioma.

A New cell line, U-706, established from an uncommon human glioma (possibly giant-cell glioblastoma) is reported in this communication. The tumor gave rise to two permanent sublines, one attached (U-706M) and one non-attached (U-706S) cell line. The growth characteristics, chromosome banding pattern, electronmicroscopic picture and cell surface characteristics of the two sublines are described.

Brain Neoplasms↗