Shaping nanoparticles with hydrophilic compositions and hydrophobic properties as nanocarriers for antibiotic delivery

  • Yusilawati Ahmad Nor
  • , Yuting Niu
  • , Surajit Karmakar
  • , Liang Zhou
  • , Chun Xu
  • , Jun Zhang
  • , Hongwei Zhang
  • , Meihua Yu
  • , Donna Mahony
  • , Neena Mitter
  • , Matthew A. Cooper
  • , Chengzhong Yu*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

71 Scopus citations

Abstract

Inspired by the lotus effect in nature, surface roughness engineering has led to novel materials and applications in many fields. Despite the rapid progress in superhydrophobic and superoleophobic materials, this concept of Mother Nature's choice is yet to be applied in the design of advanced nanocarriers for drug delivery. Pioneering work has emerged in the development of nanoparticles with rough surfaces for gene delivery; however, the preparation of nanoparticles with hydrophilic compositions but with enhanced hydrophobic property at the nanoscale level employing surface topology engineering remains a challenge. Herein we report for the first time the unique properties of mesoporous hollow silica (MHS) nanospheres with controlled surface roughness. Compared to MHS with a smooth surface, rough mesoporous hollow silica (RMHS) nanoparticles with the same hydrophilic composition show unusual hydrophobicity, leading to higher adsorption of a range of hydrophobic molecules and controlled release of hydrophilic molecules. RMHS loaded with vancomycin exhibits an enhanced antibacterial effect. Our strategy provides a new pathway in the design of novel nanocarriers for diverse bioapplications.

Original languageEnglish
Pages (from-to)328-334
Number of pages7
JournalACS Central Science
Volume1
Issue number6
DOIs
StatePublished - 23 Sep 2015
Externally publishedYes

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