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Biology subjects

Abdallah, B.

Publications and source records attributed to Abdallah, B..

3 recordsLinked to original sources

Bioimaging with fluorescent nucleic-acid aptamers for the specific detection and quantification of Pseudomonas aeruginosa alone and in heterogeneous bacterial populations

The rising prevalence of bacterial infections, antibiotic resistance, and emerging pathogens underscores the urgent need for innovative diagnostic approaches. Aptamers, short nucleic acid sequences with high specificity and affinity for their targets, are promising candidates for diagnostic applications due to their ability to detect a wide range of pathogens. In this study, we present a fluorescent aptamer-based bioimaging approach for detecting Pseudomonas aeruginosa, a multidrug-resistant pathogen of significant clinical concern. Conjugated with fluorescent dye, the detection efficacy of the F23 aptamer was evaluated on 15 different Gram-negative and Gram-positive bacteria, including fixed and lived cells, as well as homogeneous and heterogeneous population. To quantify microscopy images, we developed an automated, open-access identification software using ImageJ. Its high sensitivity provides a robust platform for accurately quantifying bacteria labeled with aptamers and potentially other fluorescent ligands. For instance, it successfully detected 1122 P. aeruginosa cells labeled with aptamer F23 out of a total of 1123 P. aeruginosa cells in a single image. With almost 200,000 analyzed bacteria and an exceptionally clear signal-to-noise ratio, we demonstrated that the F23 aptamer effectively detects various reference and clinical strains of Pseudomonas aeruginosa, while failing to detect Gram-positive Staphylococcus aureus, Staphylococcus haemolyticus, Staphylococcus epidermidis and Corynebacterium striatum, as well as Gram-negative Klebsiella pneumonia, Acinetobacter baumannii, and Escherichia coli. The F23 aptamer is therefore a promising tool to distinguish Pseudomonas aeruginosa from different strains of the skin microbiota. However, our quantitative method also revealed partial labeling to other bacterial cells, highlighting the issue of refining aptamer selection to improve selectivity.

microbiology↗

Simulation of Karyotype Evolution and Biodiversity in Asexual and Sexual Reproduction

Whether sexual reproduction increases biodiversity remains controversial. Traditionally, sex within a species has been thought to increase genetic diversity, inferring an acceleration of macro-evolution, promoting biodiversity. Recently, it was suggested that the main function of sex is to maintain genome integrity, rather than increase genetic diversity or purify deleterious genes within populations, as the karyotype encodes/safeguards the genomic blueprint. As such, the contribution of sex to biodiversity needs to be re-examined. Since many simulation studies focus only on gene-level selection, it is important to investigate how sexual and asexual reproduction differentially impact patterns of genome-level evolution and biodiversity. Based on the key difference between sexual and asexual reproduction, that sexual individuals are required to mate with a partner of the same genome for successful reproduction, we have performed a simulation to illustrate how such differences impact genome-mediated biodiversity. Asexual populations displayed high genome-level diversity whereas sexual populations evidenced low genome-level diversity. Further analysis demonstrated that the requirement of finding a partner possessing a compatible genome prevents new sexual species from emerging, which may explain why geographic isolation can promote speciation: by increasing mating and survival-domination opportunities. This study challenges the traditional concepts of speciation and the function of sex.

evolutionary biology↗

Synthesis And Modification Of A Mesoporous Material Type MCM-41 By An Amine For The Adsorption Of Organic Pollutants: Anionic And Cationic Dyes.

The main objective of this work was to synthesize the MCM-41 material from optimized protocols. In the second step, the pore size and the specific surface area of the parent material was increased by the incorporation of swelling agents (long chain carbon amines N-N, Dimethyl-dodecylamine << DMDDA >>) in post-synthesis. Then the selective extraction of the amine and the calcination allowed us to obtain materials with pore sizes and even larger surfaces than those of the starting materials (parent materials). The adsorbents, identified as MCM-41 (P), DMDDA-41 (A), DMDDA-41 (B), DMDDA-41 (C) and MCM-41 (P/C), were characterized regarding their texture, mesoscopic ordering and chemical surface and finally their adsorption capacity was evaluated using two diffrent dyes (anionic: Orange II sodium and cationic: Janus Green B). The results obtained during the adsorption study show the efficiency of these materials, in particular the \"amine and calcined\" materials for decolorizing aqueous media contaminated with organic dyes. The kinetic studies and the adsorption isotherms were carried out to clarify the method of fixing each of the two dyes on the two materials tested. The experiments showed that the amine material had a maximum capacity for fixing Orange II (221.06 mg / g) (anionic dye), whereas for a maximum adsorption capacity (455.23 mg / g) Of the Janus GB (cationic dye), the calcined material is more efficient.

biochemistry↗