The non‐ribosomal peptide synthetase _C mediates abiotic stress tolerance and modulates DNA damage responses in Metarhizium anisopliae

BACKGROUND: Abiotic stresses are a major limitation to the efficacy of entomopathogenic fungi in natural ecosystems and in biocontrol applications, yet the mechanisms that confer stress tolerance in Metarhizium anisopliae remain poorly understood. Non-ribosomal peptide synthetases (NRPSs) are key enzymes involved in fungal secondary metabolism and stress responses. RESULTS: We examined the function of the non-ribosomal peptide synthetase condensation domain in M. anisopliae (MaNRPS_C) by constructing a deletion mutant (ΔMaNRPS_C), an overexpression strain (OE), and compared them with the wild type (WT). Deletion of MaNRPS_C did not affect pathogenicity toward Sogatella furcifera or Locusta migratoria manilensis, but it markedly reduced conidial germination, sporulation, and tolerance to ultraviolet-B (UV-B) radiation, heat stress, and several chemical stressors. Conversely, the OE strain displayed faster germination, higher conidial yields, and enhanced resistance to these abiotic challenges. Furthermore, MaNRPS_C positively regulated the expression of melanin-biosynthesis genes, resulting in increased pigment accumulation that protected conidia from UV-B-induced damage. In addition, MaNRPS_C upregulated key DNA repair genes (e.g., rad3, rad10) and heat-shock protein genes (e.g., hsp40, hsp70), suggesting enhanced DNA repair capacity and protein homeostasis under stress conditions. CONCLUSION: These results identify MaNRPS_C as a key regulator of abiotic stress tolerance, particularly under UV-B and heat stress in M. anisopliae. Targeted manipulation of this gene may facilitate the development of more robust fungal biopesticides with improved field performance. © 2026 Society of Chemical Industry.

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Journal
Pest Management Science
Published
2026-09-21
DOI
https://doi.org/10.1002/ps.71334
Primary Topic
Entomopathogenic Microorganisms in Pest Control
Type
article
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article

The non‐ribosomal peptide synthetase _C mediates abiotic stress tolerance and modulates DNA damage responses in Metarhizium anisopliae

Jiaqin Xie, Yuxian Xia, Yingchun Cao, Zhongwei Chen et al.
Pest Management Science
Entomopathogenic Microorganisms in Pest Control
article

The non‐ribosomal peptide synthetase _C mediates abiotic stress tolerance and modulates DNA damage responses in Metarhizium anisopliae

Jiaqin Xie, Yuxian Xia, Yingchun Cao, Zhongwei Chen, Yujia Jiang
article en

Abstract

BACKGROUND: Abiotic stresses are a major limitation to the efficacy of entomopathogenic fungi in natural ecosystems and in biocontrol applications, yet the mechanisms that confer stress tolerance in Metarhizium anisopliae remain poorly understood. Non-ribosomal peptide synthetases (NRPSs) are key enzymes involved in fungal secondary metabolism and stress responses. RESULTS: We examined the function of the non-ribosomal peptide synthetase condensation domain in M. anisopliae (MaNRPS_C) by constructing a deletion mutant (ΔMaNRPS_C), an overexpression strain (OE), and compared them with the wild type (WT). Deletion of MaNRPS_C did not affect pathogenicity toward Sogatella furcifera or Locusta migratoria manilensis, but it markedly reduced conidial germination, sporulation, and tolerance to ultraviolet-B (UV-B) radiation, heat stress, and several chemical stressors. Conversely, the OE strain displayed faster germination, higher conidial yields, and enhanced resistance to these abiotic challenges. Furthermore, MaNRPS_C positively regulated the expression of melanin-biosynthesis genes, resulting in increased pigment accumulation that protected conidia from UV-B-induced damage. In addition, MaNRPS_C upregulated key DNA repair genes (e.g., rad3, rad10) and heat-shock protein genes (e.g., hsp40, hsp70), suggesting enhanced DNA repair capacity and protein homeostasis under stress conditions. CONCLUSION: These results identify MaNRPS_C as a key regulator of abiotic stress tolerance, particularly under UV-B and heat stress in M. anisopliae. Targeted manipulation of this gene may facilitate the development of more robust fungal biopesticides with improved field performance. © 2026 Society of Chemical Industry.

Pest Management Science
Chongqing University (CN), Chongqing Science and Technology Commission (CN)
Industry, innovation and infrastructure
Openalex Percentile: Top 12%
Entomopathogenic Microorganisms in Pest Control
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