Effect of the Nanoparticle Exposures on the Tomato Bacterial Wilt Disease Control by Modulating the Rhizosphere Bacterial Community.

Int J Mol Sci

State Key Laboratory of Rice Biology, Ministry of Agriculture Key Laboratory of Molecular Biology of Crop Pathogens and Insects, Key Laboratory of Biology of Crop Pathogens and Insects of Zhejiang Province, Institute of Biotechnology, Zhejiang University, Hangzhou 310058, China.

Published: December 2021

AI Article Synopsis

  • This study investigates the use of metal nanoparticles (CuO, ZnO, FeO) as potential solutions for combating tomato bacterial wilt (TBW), a serious plant disease caused by a soil-borne pathogen.
  • The application of these nanoparticles was found to reduce the incidence of TBW and positively alter the structure of the rhizosphere bacterial community by increasing beneficial bacteria and decreasing pathogens.
  • The results highlight that CuO nanoparticles, in particular, showed the most significant effects, enhancing tomato plant health and suggesting new strategies for disease management in agriculture.

Article Abstract

is one of the most infectious soil-borne bacterial plant pathogens, causing tomato bacterial wilt (TBW). Nanotechnology is an emerging area of research, particularly the application of nanoparticles (NPs) as nanopesticides to manage plant disease is gaining attention nowadays. However, the interaction between NPs and rhizosphere bacterial communities remains largely elusive. This study indicated that metal NPs (CuO, ZnO, and FeO) reduced the incidence of bacterial wilt to varying degrees and affected the composition and structure of the rhizosphere bacterial community. The results revealed that the application of metal oxide NPs can improve the morphological and physiological parameters of TBW infected tomato plants. Among all, CuONPs amendments significantly increase the Chao1 and Shannon index. In the early stage (the second week), it significantly reduces the relative abundance of pathogens. However, the relative abundance of beneficial bacteria increased significantly, negatively correlated with the relative abundance of pathogenic bacteria. In addition, the nano-treatment group will enrich some potential beneficial bacteria such as species from , , etc. In general, our research provides evidence and strategies for preventing and controlling soil-borne disease tomato bacterial wilt with metal oxide NPs.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8745216PMC
http://dx.doi.org/10.3390/ijms23010414DOI Listing

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