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Cisse, A.

Publications and source records attributed to Cisse, A..

4 recordsLinked to original sources

Molecular characterization of extended-spectrum beta-lactamase-producing extra-intestinal pathogenic Escherichia coli isolated in a university teaching hospital Dakar-Senegal

Extra-intestinal pathogenic Escherichia coli (ExPEC), a predominant Gram-negative bacterial pathogen, express a wide range of virulence factors and is responsible of several diseases including urinary tract infections (UTI), nosocomial pneumonia, bacteremia, and neonatal meningitis. ExPEC isolates are often multidrug resistant (MDR) and clones producing extended-spectrum beta-lactamases (ESBL) are increasingly reported all over the world. Seventy-eight clinical ExPEC strains were selected for this study. The majority was from UTIs (n=51), while the rest (n=27) was from pus, sputum, bronchial fluid and vaginal samples (non-uropathogenic ExPEC). Interestingly, 49 out of the 78 ExPEC isolates where considered as community-acquired (CA) and 29 hospital-acquired (HA) bacteria. Antibiotic susceptibility testing was performed using the Kirby-Bauer disc diffusion method. Standard polymerase chain reaction (PCR) was used to screen major ESBL genes (blaCTX-M, blaOXA-1, blaTEM, blaSHV) and blaCTX-M variants (blaCTX-M-1, blaCTX-M-9, blaCTX-M-15, blaCTX-M-25). All the ExPEC strains were resistant to ampicillin, ticarcillin, amoxicillin/clavulanic acid combination, cefalotin, cefotaxime, ceftazidime, cefepime and aztreonam, but showed a high susceptibity to fosfomycin (98.7%, n = 77), ertapenem (96.2%, n = 75), and imipenem (100%). Moreover, isolates harbored at least one ESBL gene, including blaCTX-M (98.7%), blaOXA-1 (78.2%), blaTEM (44.9%) and blaSHV (3.8%). The CTX-M variants were also found with the predominance of blaCTX-M-1 (90.9%) and blaCTX-M-15 (90.9%) followed by blaCTX-M-9 (11.7%), while blaCTX-M-25 was not detected. Despite the resistance to most of the tested antibiotics, ExPEC isolates showed fortunately a good susceptibility to fosfomycin and carbapenems. blaCTX-M (blaCTX-M1, blaCTX-M15) and blaOXA-1 seem to be E. coli major ESBL genes circulating in Senegal. No significant difference was noted when comparing prevalence of ESBL genes detected from CA and HA strains, and from UPEC and non-uropathogenic ExPEC. The high level of resistance to antimicrobials observed stresses the need of establishing an epidemiological surveillance of antimicrobial resistance in both community and hospital settings.

microbiology↗

The dynamical Matryoshka model: 3. Diffusive nature of the atomic motions contained in a new dynamical model for deciphering local lipid dynamics

In accompanying papers [Bicout et al., BBA - Biomembr. Submitted; Cisse et al., BBA - Biomembr. Submitted], a new model called Matryoshka model has been proposed to describe the geometry of atomic motions in phospholipid molecules in bilayers and multilamellar vesicles based on their quasielastic neutron scattering (QENS) spectra. Here, in order to characterize the relaxational aspects of this model, the energy widths of the QENS spectra of the samples were analyzed first in a model-free way. The spectra were decomposed into three Lorentzian functions, which are classified as slow, intermediate, and fast motions depending on their widths. The analysis provides the diffusion coefficients, residence times, and geometrical parameters for the three classes of motions. The results corroborate the parameter values such as the amplitudes and the mobile fractions of atomic motions obtained by the application of the Matryoshka model to the same samples. Since the current analysis was carried out independently of the development of the Matryoshka model, the present results enhance the validity of the model. The model will serve as a powerful tool to decipher the dynamics of lipid molecules not only in model systems, but also in more complex systems such as mixtures of different kinds of lipids or natural cell membranes.

biophysics↗

The dynamical Matryoshka model: 2. Modeling of local lipid dynamics at the sub-nanosecond timescale in phospholipid membranes

Biological membranes are generally formed by lipids and proteins. Often, the membrane properties are studied through model membranes formed by phospholipids only. They are molecules composed by a hydrophilic head group and hydrophobic tails, which can present a panoply of various motions, including small localized movements of a few atoms up to the diffusion of the whole lipid or collective motions of many of them. In the past, efforts were made to measure these motions experimentally by incoherent neutron scattering and to quantify them, but with upcoming modern neutron sources and instruments, such models can now be improved. In the present work, we expose a quantitative and exhaustive study of lipid dynamics on DMPC and DMPG membranes, using the Matryoshka model recently developed by our group. The model is confronted here to experimental data collected on two different membrane samples, at three temperatures and two instruments. Despite such complexity, the model describes reliably the data and permits to extract a series of parameters. The results compare also very well to other values found in the literature. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=81 SRC="FIGDIR/small/486370v1_fig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@374f9corg.highwire.dtl.DTLVardef@14ba37eorg.highwire.dtl.DTLVardef@dae67corg.highwire.dtl.DTLVardef@151f721_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOFigure 1:C_FLOATNO Graphical abstract. C_FIG Highlights- The Matryoshka model brings a new general description of local lipid dynamics. - Phospholipid membranes on various conditions are compared in this novel framework. - Effects of main phase transition, membrane geometry or motion direction are probed. - Despite high number of parameters, overfitting is avoided by a global fit strategy.

biophysics↗

The dynamical Matryoshka model: 1. Incoherent neutron scattering functions for lipid dynamics in bilayers

Fluid lipid bilayers are the building blocks of biological membranes. Although there is a large amount of experimental data using inconsistent quasi-elastic neutron scattering (QENS) techniques to study membranes, very little theoretical works have been developed to study the local dynamics of membranes. The main objective of this work is to build a theoretical framework to study and describe the local dynamics of lipids and derive analytical expressions of inconsistent diffusion functions (ISF) for QENS. As results, we developed the dynamical Matryoshka model which describes the local dynamics of lipid molecules in membrane layers as a nested hierarchical convolution of three motional processes: (i) individual motions described by the vibrational motions of H-atoms; (ii) internal motions including movements of the lipid backbone, head groups and tails, and (iii) molecule movements of the lipid molecule as a whole. The analytical expressions of the ISF associated with these movements are all derived. For use in analyzing the QENS experimental data, we also derived an analytical expression for the aggregate ISF of the Matryoshka model which involves an elastic term plus three inelastic terms of well-separated time scales and whose amplitudes and rates are functions of the lipid motions. And as an illustrative application, we used the aggregated ISF to analyze the experimental QENS data on a lipid sample of multilamellar bilayers of DMPC (1,2-dimyristoyl-sn-glycero-3-phosphocholine). It is clear from this analysis that the dynamical Matryoshka model describes very well the experimental data and allow extracting the dynamical parameters of the studied system.

biophysics↗