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Fusiform nanoparticle boosts efficient genetic transformation in Sclerotinia sclerotiorum. | LitMetric

Fusiform nanoparticle boosts efficient genetic transformation in Sclerotinia sclerotiorum.

J Nanobiotechnology

Integrative Science Center of Germplasm Creation in Western China (Chongqing) Science City, Chongqing and Southwest University, College of Agronomy and Biotechnology, Southwest University, Beibei, Chongqing, 400715, China.

Published: August 2024

AI Article Synopsis

  • Sclerotinia sclerotiorum is a damaging fungus threatening crops, and current genetic manipulation methods are limited, hindering research and control efforts.
  • A new genetic transformation system using fusiform nanoparticles allows for efficient DNA delivery into the fungus's mycelial cells, simplifying the transformation process and enabling stable gene expression without complex preparation steps.
  • This nanoparticle approach shows promise for advancing genetic research in S. sclerotiorum, potentially improving our understanding of its pathogenicity and opening up new strategies for disease management.

Article Abstract

Background: Sclerotinia sclerotiorum is a highly destructive phytopathogenic fungus that poses a significant threat to a wide array of crops. The current constraints in genetic manipulation techniques impede a thorough comprehension of its pathogenic mechanisms and the development of effective control strategies.

Results: Herein, we present a highly efficient genetic transformation system for S. sclerotiorum, leveraging the use of fusiform nanoparticles, which are synthesized with FeCl and 2,6-diaminopyrimidine (DAP). These nanoparticles, with an average longitude length of 59.00 nm and a positively charged surface, facilitate the direct delivery of exogenous DNA into the mycelial cells of S. sclerotiorum, as well as successful integration with stable expression. Notably, this system circumvents fungal protoplast preparation and tedious recovery processes, streamlining the transformation process considerably. Furthermore, we successfully employed this system to generate S. sclerotiorum strains with silenced oxaloacetate acetylhydrolase-encoding gene Ss-oah1.

Conclusions: Our findings demonstrate the feasibility of using nanoparticle-mediated delivery as a rapid and reliable tool for genetic modification in S. sclerotiorum. Given its simplicity and high efficiency, it has the potential to significantly propel genetic research in filamentous fungi, offering new avenues for elucidating the intricacies of pathogenicity and developing innovative disease management strategies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11334516PMC
http://dx.doi.org/10.1186/s12951-024-02736-6DOI Listing

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