4.7 Article

Nitric Oxide-Releasing Nanoparticles Prevent Propionibacterium acnes-Induced Inflammation by Both Clearing the Organism and Inhibiting Microbial Stimulation of the Innate Immune Response

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JOURNAL OF INVESTIGATIVE DERMATOLOGY
卷 135, 期 11, 页码 2723-2731

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ELSEVIER SCIENCE INC
DOI: 10.1038/jid.2015.277

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资金

  1. NIH [ES017552-01A2, ES016896-01, P30 ES03850, T32 ES0007060, AFRL FA8650-05-1-5041]
  2. National Institutes of Health/National Institute of Allergy and Infectious Diseases [1RC2A1087612-01]
  3. NIAMS [R01 AR053542]

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Propionibacterium acnes induction of IL-1 cytokines through the NLRP3 (NLR, nucleotide oligomerization domain-like receptor) inflammasome was recently highlighted as a dominant etiological factor for acne vulgaris. Therefore, therapeutics targeting both the stimulus and the cascade would be ideal. Nitric oxide (NO), a potent biological messenger, has documented broad-spectrum antimicrobial and immunomodulatory properties. To harness these characteristics to target acne, we used an established nanotechnology capable of generating/ releasing NO over time (NO-np). P. acnes was found to be highly sensitive to all concentrations of NO-np tested, although human keratinocyte, monocyte, and embryonic zebra fish assays revealed no cytotoxicity. NO-np significantly suppressed IL-18, tumor necrosis factor-alpha (TNF-alpha), IL-8, and IL-6 from human monocytes, and IL-8 and IL-6 from human keratinocytes, respectively. Importantly, silencing of NLRP3 expression by small interfering RNA did not limit NO-np inhibition of IL-1 beta secretion from monocytes, and neither TNF-a nor IL-6 secretion, nor inhibition by NO-np was found to be dependent on this pathway. The observed mechanism by which NO-np impacts IL-1 beta secretion was through inhibition of caspase-1 and IL-113 gene expression. Together, these data suggest that NO-np can effectively prevent P. acnes-induced inflammation by both clearing the organism and inhibiting microbial stimulation of the innate immune response.

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