Impact of the antibiotic-cargo from MSNs on Gram-positive and Gram-negative bacterial biofilms

Anna Aguilar-Colomer1,2, Montserrat Colilla1,2, Isabel Izquierdo-Barba1,2

  • 1Dpto. Química en Ciencias Farmacéuticas, U.D Química Inorgánica y Bioinorgánica. Universidad Complutense de Madrid. Instituto de Investigación Sanitaria Hospital 12 de Octubre i+12. Plaza Ramón y Cajal s/n, 28040 Madrid, Spain.

Microporous and Mesoporous Materials : the Official Journal of the International Zeolite Association
|November 2, 2020
PubMed

Insights

Mesoporous silica nanoparticles effectively delivered antibiotics, demonstrating sustained release and biofilm eradication. This research paves the way for personalized nanotherapies against chronic bone infections.

Area of Science:

  • Biomaterials Science
  • Nanotechnology
  • Infectious Diseases

Background:

  • Mesoporous silica nanoparticles (MSNs) are explored as drug delivery systems for antibiotics.
  • Controlled antibiotic release from MSNs is crucial for effective infection treatment.
  • Limited data exists on the effective doses of released antibiotics against bacterial biofilms over time.

Purpose of the Study:

  • To quantitatively assess the efficacy of antibiotics released from MSNs against bacterial biofilms.
  • To determine the active antibiotic doses required for biofilm eradication throughout the release period.
  • To evaluate the in vitro biocompatibility of MSN-antibiotic systems.

Main Methods:

  • Loading of Levofloxacin (LVX), Gentamicin (GM), and Rifampin (RIF) into pure-silica and amino-modified MSNs.
  • Determination of biological activity curves for released antibiotics against Gram-positive and Gram-negative biofilms.
  • In vitro biocompatibility assays using osteoblast-like cells at various time points.

Main Results:

  • LVX and RIF released from MSNs demonstrated sustained activity above the Minimum Inhibitory Concentration (MIC) for up to 96 hours, reducing biofilms by 99.9% without resistance.
  • Gentamicin (GM) showed sustained release patterns but insufficient doses (2-6 microg/mL) for complete biofilm eradication up to 100 hours.
  • MSNs exhibited good biocompatibility, with cell viability recovering after an initial decrease due to burst release.

Conclusions:

  • MSNs can be versatile nanocarriers for diverse antibiotics, enabling sustained release.
  • LVX and RIF delivered via MSNs show significant potential for treating chronic bone infections by eradicating biofilms.
  • This study provides a foundation for developing personalized MSN-based nanotherapies for challenging infections.

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