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Biomedical subjects

C Romond

Publications and source records attributed to C Romond.

At least 55 records · Page 3Linked to original sources

[In vitro sensitivity of strict anaerobic Gram-negative bacilli to thienamycin NF and various cephalosporins].

Minimal inhibitory concentrations of 105 anaerobic Gram negative bacilli were determined by two-fold dilution in Wilkins - Chalgren agar following the reference method proposed by Sutter et al. No resistance was observed with thienamycin, which is especially active against the Bacteroides fragilis group (MIC 50 = 0.125 mg/l). Among the beta-lactams investigated, cefoxitin and moxalactam proved more active than ceftizoxime and ceftriaxone, while cefotiam exhibited poor activity. While most Fusobacteria were susceptible to studied beta-lactams, some Fusobacterium varium demonstrated resistance to cephalosporins and cephamycins .

Cephalosporins↗

The taxonomy of the Peptococcaceae.

Current problems in the classification and identification of Peptococcaceae with special reference to clinically significant species are discussed briefly. Further research is needed to clarify most of the existing discrepancies.

Peptococcaceae↗

Influence of breast-feeding on the bifid flora of the newborn intestine.

Because of the predominance of Bifidobacterium bifidum in the intestine of the breast-fed infant, growth promoting factors were sought in human milk. In vitro, studies showed the presence of specific growth factors for B. bifidum in human milk. Other milks, including cow's milk, sheep's milk, pig's milk, and infant formulas did not promote the growth of this species, but did show activity on Bifidobacterium infantis and Bifidobacterium longum.

Actinomycetaceae↗

Sulfate-reducing anaerobic bacteria in human feces.

Human feces contain: 1) Chemotrophic anaerobic bacteria (strains XII, 57, IV) identified with D. desulfuricans ssp. faecalis (nov. ssp.) at a level approaching 10 7/g. 2) Organotrophic anaerobic gram positive rods (strains 30, 35, and 43) at between 10(5) and 10 7/g. 3) Chemo-organotrophic anaerobic gram positive rods (strains 22, 27, 47, and 66) were present at 40 5/g. Strains of these two last groups have not been described in the literature and are not found in any accepted toxonomic scheme.

Bacteria↗

Bifidobacteria and human health: regulatory effect of indigenous bifidobacteria on Escherichia coli intestinal colonization.

Bifidobacteria are assumed to exert colonization resistance to enteric pathogens. We associated C3H germfree mice with either Bifidobacterium longum or Escherichia coli or both strains and studied how they settled in the gut and the lymphoid organs as well as their effect on mucus composition. Within 24 hE. coli colonized the gut of germfree or B. longum ex-germfree mice. In contrast,B. longum was established in the intestine of E. coli ex-germfree mice only 1 month after inoculation whereas it colonized the germfree gut within 24 h. Although B. longum did not exert colonization resistance to E. coli, the establishing of bifidobacteria in the gut partly prevented changes in the E. coli cell wall. After colonization of the germfree or B. longum mono-associated mice, E. coli lipopolysaccharide exhibited a higher concentration of Kdo and the O-antigen side chain disappeared. A reduction in Kdo content was observed within 1 month in E. coli-B. longum diassociated mice whereas it remained at a high level in E. coli mono-associated mice. Association in a second step with B. longum led to Kdo reduction. Changes in E. coli LPS might be related to mucus modification. Inoculation of either bacterium led to a slow increase in mucus protein content which was however twice as high after E. coli implantation. Inoculation of B. longum in a second step led to a reduction in protein content before B. longum colonized the intestine at a high level suggesting that the protein concentration in the mucus was controlled by the host itself. A new glycoprotein of 200-230 kDa detected during the period preceeding colonization seemed to be broken down by B. longum. The resulting end product might participate in the restoration of E. coli LPS. Finally,B. longum inoculation led to the disappearance of E. coli from kidneys, liver, spleen and lung. The organs were cleared of E. coli before B. longum highly colonized the intestine suggesting that high intestinal colonization by B. longum was not required. Regulation of E. coli invasion seemed to depend on the ability of B. longum to stimulate the immune system.

Journal Article↗