4.8 Article

Therapeutic Delivery of Nanoscale Sulfur to Suppress Disease in Tomatoes: In Vitro Imaging and Orthogonal Mechanistic Investigation

Journal

ACS NANO
Volume 16, Issue 7, Pages 11204-11217

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c04073

Keywords

sulfur-nanoparticles; fusarium disease; nanoimaging; nanomaterials bioassimilation; plants

Funding

  1. USDA-NIFA-AFRI [2020-6702232416]
  2. US FDA [5U19FD007094-02]

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Nanoscale sulfur is a multifunctional agricultural amendment that enhances crop nutrition and suppresses disease. This study demonstrates that stearic acid coated sulfur nanoparticles can significantly reduce disease severity in tomatoes, increase plant immunity, and stimulate specific molecular pathways for sulfur assimilation.
Nanoscale sulfur can be a multifunctional agricultural amendment to enhance crop nutrition and suppress disease. Pristine (nS) and stearic acid coated (cS) sulfur nanoparticles were added to soil planted with tomatoes (Solanum lycopersicum) at 200 mg/L soil and infested with Fusarium oxysporum. Bulk sulfur, ionic sulfate, and healthy controls were included. Orthogonal end points were measured in two greenhouse experiments, including agronomic and photosynthetic parameters, disease severity/suppression, mechanistic biochemical and molecular end points including the time-dependent expression of 13 genes related to two S bioassimilation and pathogenesis-response, and metabolomic profiles. Disease reduced the plant biomass by up to 87%, but nS and cS amendment significantly reduced disease as determined by area-under-the-disease-progress curve by 54 and 56%, respectively. An increase in planta S accumulation was evident, with size-specific translocation ratios suggesting different uptake mechanisms. In vivo two-photon microscopy and time-dependent gene expression revealed a nanoscale-specific elemental S bioassimilation pathway within the plant that is separate from traditional sulfate accumulation. These findings correlate well with time-dependent metabolomic profiling, which exhibited increased disease resistance and plant immunity related metabolites only with nanoscale treatment. The linked gene expression and metabolomics data demonstrate a time-sensitive physiological window where nanoscale stimulation of plant immunity will be effective. These findings provide mechanistic understandings of nonmetal nanomaterial-based suppression of plant disease and significantly advance sustainable nanoenabled agricultural strategies to increase food production.

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