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Biomedical subjects

M Leduc

Publications and source records attributed to M Leduc.

At least 19 recordsLinked to original sources

Interactions of Escherichia coli membrane lipoproteins with the murein sacculus.

Bifunctional cross-linking reagents were used to identify cell envelope proteins that interacted with the murein sacculus. This revealed that a number of [3H]leucine-labeled proteins and [3H]palmitate-labeled lipoproteins were reproducibly cross-linked to the sacculus in plasmolyzed cells. The results suggested that most of the cell envelope lipoproteins, and not only the murein lipoprotein, mediate interactions between the murein sacculus and the inner and/or outer membrane of the cell.

Cross-Linking Reagents

Characterization of adhesion zones in E. coli cells.

After plasmolysis of Escherichia coli cells, the adhesion zones were characterized using the cytochemical PTA and SP procedures which stain peptidoglycan and lipopolysaccharides (LPS) respectively. A PTA-stained layer was detected at the adhesion sites. This layer was visualized irrespective of the electron microscopy procedure used. Also, using SP staining an outer membrane in which LPS molecules were asymmetrically distributed, was observed.

Bacterial Adhesion

[Ovarian tumor and Peutz-Jeghers syndrome. A case report].

A case of Peutz-Jeghers syndrome associated with ovarian mucinous cystadenoma and ovarian sex cord tumor with annular tubules is presented. The sec cord tumor with annular tubules was described in 1970 by Scully, who recognized its striking association with the Peutz-Jeghers syndrome. This tumor is an almost constant finding in patients' ovaries with this disorder. Three cases of ovarian mucinous cystadenoma and sex cord tumor with annular tubules associated with Peutz-Jeghers syndrome were found in the literature. Our observation confirms that gynecologic abnormalities are an important manifestation of the syndrome and require careful surveillance.

Child

Interactions of membrane lipoproteins with the murein sacculus of Escherichia coli as shown by chemical crosslinking studies of intact cells.

Proteins that were closely associated with murein in intact cells of Escherichia coli were studied by treating [3H]leucine and [3H]palmitate-labeled cells with the chemical crosslinking reagent dithiobis(succinimidylpropionate). Murein was purified and crosslinked peptides were released from the murein by treatment with beta-mercaptoethanol. Nine murein-associated [3H]leucine-labeled peptides were identified. Five of the nine peptides were lipoproteins, based on labeling with [3H]palmitate, protease sensitivity and gel electrophoretic correspondence to membrane lipoproteins present in uncrosslinked cell envelope preparations. The results suggest that these membrane lipoproteins may play a significant role in the structural integration of the murein and membrane layers of the cell envelope.

Bacterial Outer Membrane Proteins

Multilayered distribution of peptidoglycan in the periplasmic space of Escherichia coli.

When a staining technique using phosphotungstic acid (PTA) in 10% (w/v) chromic acid was applied to cells of Escherichia coli, the periplasmic space was seen as a dark 15-nm-thick layer of uniform appearance and constant width. Our observations are consistent with peptidoglycan being the main material stained. Isolated sacculi as well as purified peptidoglycan (protein free) were also stained by the same procedure, the thickness of the peptidoglycan being 8.8 +/- 1.8 and 6.6 +/- 1.5 nm, respectively. The increased thickness of the PTA-stained layer in stationary phase cells correlated well with the increased thickness of isolated sacculi or purified peptidoglycan and with the increased amount of peptidoglycan in such cells. Thickness measurements on isolated peptidoglycan were compatible with a two to three layer structure for material from exponential phase cells and with a four to five layer structure for that from stationary phase cells. Furthermore, the results indicated an uneven distribution of peptidoglycan material in the periplasmic space, the peptidoglycan spanning the space from the inner to the outer membrane.

Chromates

Why do old people stoop?

Measurements of balance and of stooping were made in 38 healthy and active volunteers of various ages, and in 16 patients who had suffered falls and subsequent limitations of mobility. All subjects were able to stand unsupported for 30 seconds. Balance function as measured sensitively on a Kistler force plate showed a tendency to progressive impairment with increasing age. No difference was detected in balance between those who had fallen and between normal subjects of the same age. No relationship was observed between the measurements of stooping and age or the occurrence of a fall. Stooping does not occur as an adaptation to the minor degrees of balance impairment demonstrated in these subjects.

Accidental Falls

Effects of moenomycin on Escherichia coli.

The antibiotic moenomycin is a valuable biochemical tool for studying the metabolism of peptidoglycan and the autolytic system in Escherichia coli, since as a specific inhibitor of peptidoglycan polymerases it can efficiently promote cell lysis. In liquid media the bacteriolytic effect on E. coli K12 was dependent on the concentration of moenomycin, on growth phase and on growth rate. Before lysis cells underwent major morphological alterations. In sucrose-containing medium complete transformation to osmotically sensitive spheroplasts was easily achieved by addition of moenomycin. The minimum inhibitory concentration of the antibiotic varied with the strain of E. coli and was highly dependent on the growth medium. A tritiated derivative of moenomycin, [3H]decahydromoenomycin A, was prepared and found to have the same inhibiting efficiency. Its binding to E. coli membranes and membrane proteins was investigated. The absence of irreversible binding suggested that moenomycin might be a competitive inhibitor of the peptidoglycan polymerases. Spontaneous moenomycin resistant variants were isolated at a frequency of about 10(-9).

Aminoglycosides

Cytochemical localization of lipopolysaccharides during peptidoglycan degradation of Escherichia coli cells.

The cytochemical reaction of Thiery [J. P. Thiery, J. Microsc. (Paris) 6:987-1018, 1976] was applied to several Escherichia coli strains having different lipopolysaccharide molecular structures. The granular deposit obtained strongly suggested that part of the R core exposed on the outer membrane was responsible for the staining. As this procedure specifically stains the outer membrane, it was possible to demonstrate that, in E. coli K-12, changes in lipopolysaccharide distribution occurred during autolysis and lysozyme treatment.

Autolysis

Correlation between degradation and ultrastructure of peptidoglycan during autolysis of Escherichia coli.

The kinetics of peptidoglycan degradation were examined under different conditions of autolysis of Escherichia coli. With cephaloridine- or moenomycin-induced autolysis, degradation did not exceed 25 to 35%, whereas in EDTA-induced autolysis it rapidly reached 65 to 70%. When nonautolyzing cells were fixed overnight with glutaraldehyde, followed by an osmium fixation, and thin sections were stained by the phosphotungstic acid method, a dark, 15-nm-thick layer of uniform appearance and constant width occupied the whole area between the inner and outer membranes of the envelope. The stained material was tentatively identified with peptidoglycan. Ultrastructural changes in this phosphotungstic acid-stained periplasmic space were investigated at different time intervals after induction of autolysis. In all cases, breakdown proceeded over the whole cell surface. During antibiotic-induced autolysis a progressive thinning down limited to the inner side of the layer was observed. During EDTA-induced autolysis, the rapid decrease in thickness correlated well with the important loss of material labeled with [3H]diaminopimelic acid. Considering these changes and the insufficient amounts of peptidoglycan (1.3 U/nm2) necessary to account for a regularly structured polymer occupying the whole 15-nm layer, it was speculated that peptidoglycan might be unevenly distributed throughout the periplasmic space.

Anti-Bacterial Agents

Aberrations of the synaptonemal complexes in a male 46,XY,-14,+der(14)t(Y;14).

An unbalanced translocation 46,XY,-14,+der(14)t(Y;14)(q11;p11) was observed in an azoospermic male, with reduced spermatogenesis and absent spermiogenesis. At the pachytene stage of spermatocyte 1, the segments of the 2 Y chromosomes, fluorescent with quinacrine mustard, were always found close together. This proximity was also demonstrated by the study of synaptonemal complexes, which showed, in addition, an unusual hypercondensation of the proximal segment of bivalent 14, adjacent to the translocated Y chromosome. This allows us to propose that this hypercondensation might correspond to an inactivation of the translocated autosome, which could be responsible of the degeneration of the germ cells.

Adult

N-acetylmuramoyl-L-alanine amidase of Escherichia coli K12. Possible physiological functions.

Various experiments were carried out in an attempt to determine the possible physiological function of the N-acetylmuramoyl-L-alanine amidase purified from Escherichia coli K12 on the basis of its activity on N-acetylmuramoyl-L-alanyl-D-gamma-glutamyl-meso-diaminopimelic acid [MurNAc-LAla-DGlu(msA2pm)]. A Km value of 0.04 mM was determined with this substrate. Specificity studies revealed that compounds with a MurNAc-LAla linkage are the most probable substrates of this enzyme in vivo. Purified amidase had no effect on purified peptidoglycan and only low levels (1-2.5%) of cleaved MurNAc-LAla linkages were detected in peptidoglycan isolated from normally growing cells. However, the action of the amidase in vivo on peptidoglycan was clearly detectable during autolysis. The amidase activity of cells treated by osmotic shock, ether or toluene, as well as that of mutants with altered outer membrane composition was investigated. Attempts to reveal a transfer reaction catalysed by amidase were unsuccessful. Furthermore, by its location and specificity, amidase was clearly not involved in the formation of UDP-MurNAc. The possibility that it might be functioning in vivo as a hydrolase degrading exogeneous peptidoglycan fragments in the periplasma was substantiated by the fact that MurNAc itself and MurNAc-peptides could sustain growth of E. coli as sole carbon and nitrogen sources. Finally, out of 200 thermosensitive mutants examined for altered amidase activity, only two strains had less than 50% of the normal level of activity, whereas ten strains were found to possess more than 50%. In fact, two of the overproducers encountered presented a 4-5-fold increase in activity.

Amidohydrolases

Structure of the cell wall of Bacillus species C.I.P. 76-111.

An unusual type of bacterial cell wall was encountered in a Bacillus strain referred to as Bacillus sp. C.I.P. 76-111. The major constituent of this cell wall is a high-molecular-weight anionic protein non-covalently associated to a peptidoglycan-polysaccharide complex. The cell wall appeared as a multilayered structure when sections of whole cells or of isolated cell walls fixed with glutaraldehyde and postfixed with osmium tetroxide were examined by electron microscopy. The correlation between the observed morphological features and the biochemical data suggested that a thin central electron-dense layer identifiable with the peptidoglycan-polysaccharide complex is located between two similar thick layers of protein. Furthermore, negative staining of isolated cell walls revealed that the outer protein layer has a regular surface array of subunits with hexagonal symmetry. Several structural properties of the cell wall peptidoglycan were investigated and were found to resemble those of other bacilli. Further characterization of the autolytic system showed that an N-acetylmuramyl-L-alanine amidase and a glycosidase, presumably a N-acetylmuramidase, were associated with the peptidoglycan-polysaccharide complex. It was also established that this strain is devoid of membrane teichoic acid.

Bacillus