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August 13, 2025Nature Communications13 citationsOpen Access

In vivo antimicrobial activity of engineered mesoporous silica nanoparticles targeting intracellular mycobacteria

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JAJohn Jairo Aguilera-CorreaYTYara TasriniMGMiguel Gisbert-Garzarán

Key Points

  • Doxycycline-loaded nanoparticles significantly decrease bacterial burden in a zebrafish infection model, enhancing embryo survival.
  • Antimicrobial activity was demonstrated against planktonic cultures and biofilms of mycobacterium marinum.
  • Functionalization of mesoporous silica nanoparticles increased their affinity towards M. marinum surfaces.
  • The study highlights the potential of nanosystems to treat cutaneous infections from mycobacterial species.

Abstract

Treatments of Mycobacterium marinum, a common non-tuberculous mycobacterium associated with cutaneous infections are very challenging, emphasizing the development of new therapeutic approaches. Here we report the functionalization of mesoporous silica nanoparticles (MSN) with a series of triphenylphosphonium (TPP) substituents, which endowed them with affinity towards the surface of M. marinum in vitro, as well as within infected THP-1 cells. The presence of these nanoparticles at the bacterial surface prevents their uptake by human macrophages and dendritic cells. When loaded with doxycycline, the nanosystem exerts a potent anti-bacterial effect in planktonic cultures, biofilms, and in M. marinum-infected macrophages. Strikingly, in the M. marinum/zebrafish infection model, the doxycycline-loaded nanoparticles are associated with a pronounced decrease in the bacterial burden and a high embryo survival rate. These results disclose the proposed MSN nanosystems as a promising alternative for the treatment of M. marinum infection and, presumably, against a broader range of mycobacterial infections.

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Cite This Study

Aguilera-Correa et al. (2025) studied this question.

synapsesocial.com/papers/68a363490a429f797332a11dhttps://doi.org/10.1038/s41467-025-62623-y
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