4.8 Article

Next generation miRNA inhibition using short anti-seed PNAs encapsulated in PLGA nanoparticles

Journal

JOURNAL OF CONTROLLED RELEASE
Volume 327, Issue -, Pages 406-419

Publisher

ELSEVIER
DOI: 10.1016/j.jconrel.2020.08.026

Keywords

PNA; PLGA; AntimiR; miR-155; Nanoparticles

Funding

  1. University of Connecticut
  2. St. Baldrick Foundation Jack's Pack - We Still Have His Back
  3. St. Baldrick's Hero Fund
  4. UConn START PPOC award
  5. V Foundation award
  6. NIH [R35CA232105]
  7. NIH R01 grant [1R01CA241194-01A1]

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Selective inhibition of microRNAs (miRNAs) offers a new avenue for cancer therapeutics. While most of the current anti-miRNA (antimiR) reagents target full length miRNAs, here we investigate novel nanoparticle-delivered short PNA probes containing cationic domains targeting the seed region of the miRNA for effective antimiR therapy. For proof of concept, we tested PNAs targeting miRNA-155 and employed poly(lactic-co-glycolic acid) (PLGA)-based nanoparticle formulation for delivery. A comprehensive evaluation of PLGA nanoparticles (NPs) containing short PNA probes showed significantly superior loading, release profile, and uniform size distribution, compared to conventional non-cationic PNA probes. Confocal microscopy and flow cytometry analyses showed efficient transfection efficiency and uniform distribution of PLGA NPs containing short PNA probes in the cytoplasm. Functional analysis also confirmed efficient miRNA-155 inhibition including an effect on its downstream target proteins. Further, reduced tumor growth was observed after systemic delivery of PLGA nanoparticles containing short PNA probes in vivo in a xenograft mouse model following inhibition of miR-155. There was no evidence of acute or chronic toxicity associated with systemic delivery of PLGA NPs containing short PNA probes in the mice. Overall, in this paper we present a novel antimiR strategy based on PLGA nanoparticle delivered short PNA probes for potential cancer therapy.

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