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Ait Si Mhand, K.

Publications and source records attributed to Ait Si Mhand, K..

3 recordsLinked to original sources

Compartment-Specific Assembly and Functional Potential of the Bacteriome of Citrullus colocynthis in a Semi-Arid Ecosystem

Plants inhabitng in arid and semi-arid ecosystems, such as Citrullus colocynthis (L.) Schrad., are adapted to drought, heat, salinity, and nutrient limitation. Their associated microbial communities may further support plant persistence under these harsh conditions. Here, we characterized the bacterial communities associated with leaf endosphere, rhizosphere and roots of C. colocynthis growing in a semi-arid region of Moroccan using 16S rRNA gene amplicon sequencing, culture-dependent isolation, and genome-informed functional profiling of selected isolates. The results revealed a structured microbiome, with rhizosphere harboring the highest bacterial diversity, roots representing an intermediate selective habitat, and the leaf endosphere containing a more restricted assemblage. Communities were dominated by members of the phyla Pseudomonadota, Actinomycetota, Bacillota, and Bacteroidota. Several families associated to plant colonization, nutrient mobilization, and stress tolerance, including Pseudomonadaceae, Microbacteriaceae, Rhizobiaceae, Devosiaceae, and Xanthomonadaceae, showed compartment-specific enrichment. Although soil physicochemical properties influenced bacterial community structure, they explained only part of the variation observed, suggesting that bacteriome assembly is shaped by both environmental conditions and host filtering processes. Culture-bdependant analyses recovered diverse endophytic genera, mainly Achromobacter, Pseudomonas, and Glutamicibacter, most of which were also detected in the amplicon sequencing dataset. Genome-based profiling identified traits related to stress response, osmoprotection, nutrient-related metabolism, colonization, and plant-microbe interactions. Together, these findings highlight C. colocynthis as a reservoir for functionally relevant bacterial diversity with ecological and biotechnological potential in semi-arid environments. ImportanceUnderstanding how plants survive in arid and semi-arid ecosystems is increasingly important in the context of climate change and land degradation. This study demonstrates that Citrullus colocynthis hosts a structured and functionally diverse bacteriome across the leaf endosphere, rhizosphere, and root compartments. By combining amplicon sequencing, cultivation, and genome-informed functional analyses, we identified bacterial taxa and traits associated with stress tolerance, nutrient acquisition, and plant colonization. The recovery of cultivable endophytes with adaptive genomic features highlights the potential of desert plant-associated microbiota as a source of beneficial microorganisms for sustainable agriculture and biotechnological applications in water-limited environments.

microbiology↗

Rational Design of an Arid Plant-Derived Endophytic Consortium Improves Crop Performance under Controlled Conditions

Endophytic bacteria from arid medicinal plants represent a promising source of stress-adapted, plant growth-promoting (PGP) microorganisms. Here, we investigated the cultivable endophytic microbiota of Peganum harmala using both nutrient-rich and diluted media to maximize taxonomic recovery. Isolates were dominated by Bacillota and Gammaproteobacteria, with higher diversity in roots than in shoots. Venn analysis revealed a shared core fraction between compartments, forming the basis for consortium assembly. Nine representative strains belonging to Phyllobacterium, Bacillus, Brevibacillus, Burkholderia, Ralstonia, and Amycolatopsis were selected for functional screening. Pairwise antagonism assays showed high compatibility among Bacillus-related strains, whereas certain taxa exhibited inhibitory interactions, guiding rational consortium design. Functional characterization demonstrated complementary PGP traits, including nitrogen-related activity, phosphate, potassium, and silicate solubilization, siderophore and indole-3-acetic acid production, and ammonia production. No single isolate performed optimally across all traits, supporting a consortium-based strategy. A synthetic bacterial consortium (C2), reconstructed from the core endophytic microbiota using compatibility-guided selection, was evaluated in two crop systems. In vitro flax germination assays showed accelerated radicle emergence and improved vigor index, particularly with C2. Under greenhouse conditions, C2 significantly enhanced flax shoot and root biomass, root architecture, leaf area expansion, and photosystem II performance in sterile soil. In faba bean under natural soil, C2 increased leaf number (p = 0.02) relative to the control. These results indicate that consortia derived from core endophytes of arid medicinal plants can promote plant growth across diverse crops and soil contexts, although effects remain context-dependent and require rigorous field validation. IMPORTANCEEndophytic bacteria can serve as sustainable bioinoculants to enhance crop performance under stress conditions. This study demonstrates that the core microbiota of the arid medicinal plant Peganum harmala can be rationally assembled into a functionally complementary consortium that improves germination, nutrient acquisition, and whole-plant physiological performance in flax and faba bean. By combining compatibility-guided assembly with functional screening, we show that consortium-based strategies may outperform single-strain inoculants. These findings provide insight into the development of scalable, plant growth-promoting microbial consortia and highlight the importance of testing microbial inoculants under multiple environmental contexts to ensure consistent benefits.

microbiology↗

Rhizobium moroccans sp. nov.: a plant-growth-promoting endophyte from Peganum harmala in an arid environment

The diversity and ecological roles of Rhizobium species beyond legume symbiosis remain insufficiently characterized, particularly in arid ecosystems. Here, we report the isolation and comprehensive characterization of strain AGC32, an endophytic bacterium recovered from surface-sterilized roots of the medicinal xerophyte Peganum harmala growing in Moroccan drylands. The isolate is a non-halophilic, aerobic, Gram-negative bacterium with optimal growth at 30-35{degrees}C, pH 5.0, and 1% NaCl. Phylogenomic analysis placed AGC32 within the genus Rhizobium. However, average nucleotide identity values below 96%, digital DNA-DNA hybridization values below 70%, and the absence of assignment to any validly published type strain supported its classification as a novel species, for which the name Rhizobium moroccans sp. nov. is proposed. Comparative genomics revealed substantial genome rearrangements relative to its closest relative, Rhizobium deserti, indicating distinct evolutionary trajectories. The high-quality draft genome encodes pathways associated with nitrogen limitation (including complete allantoin utilization), polyphosphate metabolism, oxidative and osmotic stress tolerance, and organic acid utilization. Phenotypic assays corroborated genomic predictions, demonstrating preferential metabolism of organic acids, utilization of carbohydrates, and plant growth-promoting traits including nitrogen fixation and solubilization of phosphorus, potassium, and silicon. These findings expand the ecological knowledge of Rhizobium and reveal adaptation to a non-legume host in an arid environment. IMPORTANCEBacteria of the genus Rhizobium are widely known for forming nitrogen-fixing symbioses with legumes. However, their roles in non-leguminous desert plants remain poorly understood. We isolated and characterized a new species, Rhizobium moroccans, from the roots of the medicinal plant Peganum harmala growing in Moroccan drylands. This bacterium shows genetic and physiological traits that support survival under drought and nutrient limitation and displays multiple plant-beneficial properties. Our results demonstrate that Rhizobium species are not restricted to legumes but can form intimate associations with medicinal plants in extreme environments. The discovery of this novel species highlights desert plants as reservoirs of previously unrecognized microbial diversity and suggests potential applications for sustainable agriculture in arid regions.

microbiology↗