Integrated Clay-Azoxystrobin and Trichoderma -Based Treatments for Managing Magnaporthiopsis maydis Maize Late Wilt Disease

Magnaporthiopsis maydis, the causal agent of maize late wilt disease (LWD), is a destructive soil-borne pathogen for which effective and sustainable control remains challenging. We evaluated an integrated management strategy combining clay-based azoxystrobin formulations with Trichoderma-based seed coating in two maize hybrids differing in susceptibility to LWD: the highly susceptible sweet maize hybrid Prelude and the moderately susceptible fodder hybrid Colossus. Bentonite- and sepiolite-based azoxystrobin formulations were applied alone or with two Trichoderma mixtures under net-house conditions. Based on an in vitro assay, T. asperellum, T. longibrachiatum, and T. virens, which inhibited pathogen growth by 37 to 53%, were selected and combined. At the latent mid-season stage, treatment effects on plant growth were limited, but qPCR showed that pathogen DNA levels in infected, untreated Prelude plants were up to 24-fold higher than in Colossus. In Prelude, several treatments reduced pathogen DNA to 2–9% of the infected control. By the end of the season, treatment efficacy became more pronounced. In Colossus, bentonite-azoxystrobin alone or combined with Trichoderma-based seed coating performed best, increasing shoot weight by 62 to 67%, cob weight by 85 to 90%, and health indices by 52 to 67% relative to the infected control. In Prelude, Trichoderma-based seed coating combined with sepiolite-azoxystrobin produced the strongest response, increasing shoot and cob weight by 116 and 145%, respectively. Across both cultivars, clay-based formulations, alone or combined with biological treatment, reduced pathogen DNA to near zero. These findings support this integrated approach for LWD management under net-house conditions, pending field validation.

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Publication Details

Journal
Plant Disease
Published
2026-09-10
DOI
https://doi.org/10.1094/pdis-03-26-0587-re
Primary Topic
Plant-Microbe Interactions and Immunity
Type
article
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article

Integrated Clay-Azoxystrobin and Trichoderma -Based Treatments for Managing Magnaporthiopsis maydis Maize Late Wilt Disease

Ofir Degani, Elhanan Dimant, Peleg Hadari
Plant Disease
Plant-Microbe Interactions and Immunity
article

Integrated Clay-Azoxystrobin and Trichoderma -Based Treatments for Managing Magnaporthiopsis maydis Maize Late Wilt Disease

Ofir Degani, Elhanan Dimant, Peleg Hadari
article en

Abstract

Magnaporthiopsis maydis, the causal agent of maize late wilt disease (LWD), is a destructive soil-borne pathogen for which effective and sustainable control remains challenging. We evaluated an integrated management strategy combining clay-based azoxystrobin formulations with Trichoderma-based seed coating in two maize hybrids differing in susceptibility to LWD: the highly susceptible sweet maize hybrid Prelude and the moderately susceptible fodder hybrid Colossus. Bentonite- and sepiolite-based azoxystrobin formulations were applied alone or with two Trichoderma mixtures under net-house conditions. Based on an in vitro assay, T. asperellum, T. longibrachiatum, and T. virens, which inhibited pathogen growth by 37 to 53%, were selected and combined. At the latent mid-season stage, treatment effects on plant growth were limited, but qPCR showed that pathogen DNA levels in infected, untreated Prelude plants were up to 24-fold higher than in Colossus. In Prelude, several treatments reduced pathogen DNA to 2–9% of the infected control. By the end of the season, treatment efficacy became more pronounced. In Colossus, bentonite-azoxystrobin alone or combined with Trichoderma-based seed coating performed best, increasing shoot weight by 62 to 67%, cob weight by 85 to 90%, and health indices by 52 to 67% relative to the infected control. In Prelude, Trichoderma-based seed coating combined with sepiolite-azoxystrobin produced the strongest response, increasing shoot and cob weight by 116 and 145%, respectively. Across both cultivars, clay-based formulations, alone or combined with biological treatment, reduced pathogen DNA to near zero. These findings support this integrated approach for LWD management under net-house conditions, pending field validation.

Plant Disease
Migal - Galilee Technology Center (IL), Tel Hai Academic College (IL)
Openalex Percentile: Top 12%
Plant-Microbe Interactions and Immunity
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