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Reingold, V.

Publications and source records attributed to Reingold, V..

2 recordsLinked to original sources

Entomopathogenic fungi as dual-function biocontrol agents: persistence and microbiome modulation in date palm soils

The effects of entomopathogenic fungi (EPF) on native soil microbiota are poorly understood. Here, we investigated the persistence of the EPF Metarhizium brunneum and Beauveria bassiana as preventive treatments for date palms against the red palm weevil, Rhynchophorus ferrugineus, and monitored the microbial community within the palms. We assessed the changes in the soil microbiota of the palms following application by fungal soil isolation techniques, high-throughput metagenomics, EPF persistence assays, and accompanied that with a continuous monitoring of date palm health. EPF preemptive treatments significantly improved palm protection against the weevil. While both EPF species persisted for 180 days post-application, their effectiveness diverged, with B. bassiana providing longer palm protection. Overall microbial community composition showed no major changes following EPF applications; however, transient alterations increased the relative abundance of local EPF genera, with dominant taxa being more likely to persist. Both EPF treatments enhanced the relative abundance of nitrogen-fixing bacteria, organic matter decomposers, and ammonia-oxidizing archaea, suggesting potential implications for nutrient cycling that require further validation through direct functional measurements. B. bassiana induced the strongest temporal effects on diversity indices, while M. brunneum was more persistent but showed no significant changes in diversity indices compared to the control. These results highlight EPF as a multifunctional biocontrol agent - moderately shaping soil microbiomes for beneficial ecosystem functions.

microbiology↗

Deciphering the Survival Strategies of the Entomopathogenic Nematode Steinernema carpocapsae Using Rapid Desiccation Assisted by Nanoparticle-Based Emulsion

Water retention is essential for survival under desiccating conditions, especially for entomopathogenic nematodes (EPNs) used as biocontrol agents. Foliar application of EPNs causes rapid desiccation (RD), severely reducing their survival and efficacy. We investigated the physiological and molecular responses of Steinernema carpocapsae to RD, delivered in a novel nanoparticle-stabilized emulsion to improve tolerance under variable humidity. We hypothesized that the formulation would enhance EPNs survival, by promoting early stress-responsive pathways and water-retention mechanisms. Formulated nematodes exhibited delayed water loss and increased survival under low humidity compared with non-formulated controls. The emulsion mitigated RD by enhanced hydration retention and reduced water loss, effects that were strongly associated with differential trehalose accumulation. In addition, maintenance of basement membrane integrity and cytoskeletal organization, emerged as a critical component of desiccation. These findings advance understanding of RD tolerance in EPNs and demonstrate how tailored formulation strategies can protect biocontrol agents under desiccation stress.

developmental biology↗