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Romero, F. M.

Publications and source records attributed to Romero, F. M..

3 recordsLinked to original sources

Biocontrol potential of endophytic bacteria against a collection of Leptosphaeria maculans isolates causing blackleg in oilseed rape

BACKGROUNDBlackleg, caused by Leptosphaeria maculans, is a major disease limiting oilseed rape production worldwide, and its management increasingly requires sustainable alternatives to chemical fungicides. In this study, we evaluated the antagonistic activity and plant growth-promoting potential of three endophytic bacteria, Bacillus velezensis Bro5, Bacillus subtilis Bro11, and Pantoea agglomerans Bru13, against a geographically diverse collection of 139 L. maculans isolates from five oilseed rape-producing regions of Argentina. RESULTSDual culture assays revealed strong inhibitory activity by Bro5 and Bro11, with mean inhibition rates of [~]80% across isolates, while Bru13 showed variable inhibition (<75% for most isolates). Greenhouse and growth chamber assays confirmed the protective potential of these strains. At the cotyledon stage, Bro11 and Bro5 reduced lesion size by 47% and 28%, respectively, while their combination achieved a 51% reduction. In greenhouse trials, combined application of Bro5 and Bro11 reduced stem base necrosis by 45% and increased the proportion of plants with [&le;]50% damage to 98%, compared to only 70% in controls. Key disease metrics, including disease index, incidence, and severity, decreased by 60%, 23%, and 26%, respectively. Beyond pathogen suppression, inoculation with the Bro5-Bro11 consortium enhanced plant growth, increasing shoot biomass by 89% at early stages, and improving stem dry weight and diameter by 10% and 35%, respectively, at maturity. CONCLUSIONThese findings highlight the robustness of Bacillus endophytes as biocontrol agents, their capacity to suppress diverse pathogen isolates, and their dual role in plant growth promotion, supporting their potential integration into sustainable blackleg management programs.

microbiology↗

Sensitivity of Argentinean isolates of Leptosphaeria maculans to Azoxystrobin, Boscalid and Prothioconazole

Blackleg, caused by Leptosphaeria maculans, is a major disease affecting oilseed rape (Brassica napus) worldwide. The use of fungicides is an essential tool for disease management; however, limited information is available regarding L. maculans sensitivity to fungicides in Argentina. In this study, the sensitivity of L. maculans isolates collected from five oilseed rape-growing regions in Argentina was evaluated against three fungicides with different modes of action: prothioconazole (DMI), azoxystrobin (QoI), and boscalid (SDHI). The effective concentration required to inhibit mycelial growth by 50% (EC50) was determined using in vitro assays. Mean EC50 values for prothioconazole, azoxystrobin, and boscalid were 0.1545 {micro}g mL-1, 0.0349 {micro}g mL-1, and 0.1557 {micro}g mL-1, respectively. A wider variability in sensitivity was observed for azoxystrobin and boscalid compared to prothioconazole. Additionally, discriminatory dose assays revealed significant differences in growth inhibition among isolates, with some showing reduced sensitivity. Spearman correlation analysis indicated a significant positive association between azoxystrobin and boscalid sensitivity at both low and high doses, suggesting potential cross-resistance. However, no significant correlations were found between prothioconazole and the other fungicides. Furthermore, isolates with reduced sensitivity (RSI < 1) did not exhibit a consistent cross-resistance pattern between QoI and SDHI fungicides, indicating that the observed correlations may be influenced by the overall distribution of sensitive isolates rather than a shared resistance mechanism. These findings provide the first insights into L. maculans fungicide sensitivity in Argentina, highlighting the need for continued monitoring to prevent resistance development and ensure effective blackleg management.

microbiology↗

Unveiling the Virulence Mechanism of Leptosphaeria maculans in the Brassica napus Interaction: The Key Role of Sirodesmin PL in Cell Death Induction

Leptosphaeria maculans is the causal agent of blackleg disease in Brassica napus, leading to substantial yield losses. Sirodesmin PL, the principal toxin produced by L. maculans, has been implicated in the infective process in plants. However, the precise molecular and physiological mechanisms governing its effects remain elusive. This study investigates the changes induced by Sirodesmin PL at the transcriptomic, physiological, and morphological levels in B. napus cotyledons. Sirodesmin PL treatment upregulates genes associated with plant defense processes, including response to chitin, sulfur compound biosynthesis, toxin metabolism, oxidative stress response, and jasmonic acid/ethylene synthesis and signaling. Validation of these transcriptomic changes is evidenced by several typical defense response processes, such as the accumulation of reactive oxygen species (ROS) and callose deposition. Concomitantly, oxidized Sirodesmin PL induces concentration- and exposure duration-dependent cell death. This cellular death is likely attributed to diminished activity of photosystem II and a reduction in the number of chloroplasts per cell. In agreement, a down-regulation of genes associated with the photosynthesis process is observed following Sirodesmin PL treatment. Thus, it is plausible that L. maculans exploits Sirodesmin PL as a virulence factor to instigate cell death in B. napus during its necrotrophic stage, favoring the infective process. HighlightSirodesmin PL, the principal toxin produced by Leptosphaeria maculans, induces cell death and defense mechanisms in Brassica napus, disrupting photosynthesis and facilitating the infective process

plant biology↗