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Zgheib, R.

Publications and source records attributed to Zgheib, R..

2 recordsLinked to original sources

Adapted protocol for Saccharibacteria co-cultivation: two new members join the club of Candidate Phyla radiation

The growing application of metagenomics to different ecological and microbiome niches in recent years has enhanced our knowledge of global microbial biodiversity. Among these abundant and widespread microbes, Candidate Phyla Radiation or CPR have been recognised as representing a large proportion of the microbial kingdom (> 26%). CPR are characterised by their obligate symbiotic or exo-parasitic activity with other microbial hosts, mainly bacteria. Currently, isolating CPR is still considered challenging for microbiologists. The idea of this study was to develop an adapted protocol for the co-culture of CPR with a suitable bacterial host. Based on various sputa, we tried to purify CPR (Saccharibacteria members) and to cultivate them with pure hosts. This protocol was monitored by real-time PCR quantification using a specific system for Saccharibacteria designed in this study, as well as by electron microscopy and sequencing. We succeeded in co-culturing and sequencing a complete genome of two new Saccharibacteria species: Candidatus Minimicrobia naudis and Candidatus Minimicrobia vallesae. In addition, we noticed a decrease in the Ct number of Saccharibacteria, and a significant multiplication through their physical association with Schaalia odontolytica strains in the enriched medium that we developed. This work may help bridge gaps in the genomic database by providing new CPR members and, in the future, their currently unknown characteristics may be revealed. IMPORTANCEIn this study, the first real-time PCR system has been developed. This technique is able to quantify specifically Saccharibacteria members in any sample of interest in order to investigate their prevalence. In addition, another easy, specific and sensitive protocol has been developed to maintain the viability of Saccharibacteria cells in an enriched medium with their bacterial host. The use of this protocol subsequently facilitates studying the phenotypic characteristics of CPR and their physical interactions with bacterial species, as well as the sequencing of new genomes to improve the current database.

microbiology

Geographic microevolution of Mycobacterium ulcerans sustains Buruli ulcer extension, Australia

The reason why severe cases of Buruli ulcers caused by Mycobacterium ulcerans are emerging in some South Australia counties has not been determined. In this study, we measured the diversity of M. ulcerans complex whole genome sequences (WGS) and reported a marker of this diversity. Using this marker as a probe, we compared WGS diversity in Buruli ulcer-epidemic South Australia counties versus non-epidemic Australian counties and further refined comparisons at the level of counties where severe Buruli ulcer cases have been reported. Analyzing 218 WGS (35 complete and 183 reconstructed WGS, including 174 Australian WGS) yielded 15 M. ulcerans complex genotypes, including three genotypes specific to Australia and one genotype specific to South Australia. A 1,068-bp PPE family protein gene exhibiting genotype-specific sequence variations was employed to further probe 13 minority clones hidden in sequence reads. The repartition of these clones significantly differed between South Australia and the rest of Australia. In addition, a significantly higher prevalence of 3/13 clones was observed in South Australia counties of the Mornington Peninsula, Melbourne and Bellarine Peninsula than in other South Australia counties. The data presented in this report suggest that the microevolution of three M. ulcerans complex clones drove the emergence of severe Buruli ulcer cases in some South Australia counties. Sequencing one specific PPE gene served to efficiently probe M. ulcerans complex clones. Further functional studies may balance the environmental adaptation and virulence of these clones.

evolutionary biology