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How Nanoparticles Open the Paracellular Route of Biological Barriers: Mechanisms, Applications, and Prospects

  • Junrong Wu
  • , Zhenjun Zhu
  • , Wenjing Liu
  • , Yanli Zhang
  • , Yiyuan Kang
  • , Jia Liu
  • , Chen Hu
  • , Ruolan Wang
  • , Manjin Zhang
  • , Lili Chen
  • , Longquan Shao

Research output: Contribution to journalReview articlepeer-review

96 Scopus citations

Abstract

Biological barriers are essential physiological protective systems and obstacles to drug delivery. Nanoparticles (NPs) can access the paracellular route of biological barriers, either causing adverse health impacts on humans or producing therapeutic opportunities. This Review introduces the structural and functional influences of NPs on the key components that govern the paracellular route, mainly tight junctions, adherens junctions, and cytoskeletons. Furthermore, we evaluate their interaction mechanisms and address the influencing factors that determine the ability of NPs to open the paracellular route, which provides a better knowledge of how NPs can open the paracellular route in a safer and more controllable way. Finally, we summarize limitations in the research models and methodologies of the existing research in the field and provide future research direction. This Review demonstrates the in-depth causes for the reversible opening or destruction of the integrity of barriers generated by NPs; more importantly, it contributes insights into the design of NP-based medications to boost paracellular drug delivery efficiency.

Original languageEnglish
Pages (from-to)15627-15652
Number of pages26
JournalACS Nano
Volume16
Issue number10
DOIs
StatePublished - 25 Oct 2022
Externally publishedYes

Keywords

  • Nanomedicine
  • adherens junction
  • biological barrier
  • cytoskeleton
  • drug delivery
  • paracellular transportation
  • reversible opening
  • tight junction

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