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Impact of osmotic stress on production, morphology, and fitness of Beauveria bassiana blastospores. | LitMetric

Impact of osmotic stress on production, morphology, and fitness of Beauveria bassiana blastospores.

Appl Microbiol Biotechnol

United States Department of Agriculture, Agriculture Research Service, Crop Bioprotection Research Unit, National Center for Agricultural Utilization Research, 1815 N. University St, Peoria, IL, 61604, USA.

Published: August 2023

AI Article Synopsis

  • Beauveria bassiana is a fungus that can infect over 1000 insect species and is used in biopesticides because of its blastospores, produced easily through fermentation.
  • The study found that hyperosmotic environments, created by adding substances like polyethylene glycol (PEG200) or salts (NaCl and KCl), influenced the size and yield of blastospores, with PEG200 increasing yield but producing smaller spores.
  • The findings indicate that both ionic and non-ionic osmolytes can enhance the growth and effectiveness of B. bassiana, which is crucial for developing effective commercial fungal biopesticides.

Article Abstract

Beauveria bassiana is a cosmopolitan entomopathogenic fungus that can infect over 1000 insect species. During growth inside the host, B. bassiana transitions from hyphal to yeast-like unicellular growth as blastospores. Blastospores are well suited as an active ingredient in biopesticides due to their ease of production by liquid fermentation. Herein, we investigated the impact of hyperosmotic growth environments mediated by ionic and non-ionic osmolytes on two strains of B. bassiana (ESALQ1432 and GHA) relevant to growth morphology, blastospore production, desiccation tolerance, and insecticidal activity. Polyethylene glycol (PEG200) increased osmotic pressure in submerged cultures leading to decreased blastospore size but higher blastospore yields for one strain. Morphologically, decreased blastospore size was linked to increased osmotic pressure. However, smaller blastospores from PEG200 supplemented cultures after air-drying exhibited delayed germination. Ionic osmolytes (NaCl and KCl) generated the same osmotic pressure (2.5-2.7 MPa) as 20% glucose and boosted blastospore yields (> 2.0 × 10 blastospores mL). Fermentation performed in a bench-scale bioreactor consistently promoted high blastospore yields when using NaCl (2.5 MPa) amended media within 3 days. Mealworm larvae (Tenebrio molitor) were similarly susceptible to NaCl-grown blastospores and aerial conidia in a dose-time-dependent manner. Collectively, these results demonstrate the use of hyperosmotic liquid culture media in triggering enhanced yeast-like growth by B. bassiana. Understanding the role of osmotic pressure on blastospore formation and fitness will hasten the development of viable commercial fungal biopesticides. KEY POINTS: • Osmotic pressure plays a critical role in submerged fermentation of B. bassiana. • Ionic/non-ionic osmolytes greatly impact blastospore morphology, fitness, and yield. • Desiccation tolerance and bioefficacy of blastospores are affected by the osmolyte.

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Source
http://dx.doi.org/10.1007/s00253-023-12631-zDOI Listing

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