4.7 Article

Acid-responsive PEGylated branching PLGA nanoparticles integrated into dissolving microneedles enhance local treatment of arthritis

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 431, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.134196

Keywords

Transdermal; Acid responsive; Microneedles; Nanomedicine; Nanocarrier; Rheumatoid arthritis

Funding

  1. National Natural Science Foundation of China [81673612, 82074031]
  2. Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutions of Higher Learning [TP2020054]
  3. Shanghai Talent Development Fund [2018099]
  4. National training program for innovative talents of Traditional Chinese Medicine [T20194828003]

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By designing PEGylated star-shaped PLGA nanoparticles with immune stealth and acid-responsive properties, the drug-loading ability and release efficiency of tetrandrine (Tet) were significantly improved. Furthermore, the integration of these nanoparticles into dissolving microneedles resulted in enhanced transdermal delivery and potential therapeutic efficacy for anti-inflammation treatment.
The low drug-loading and permeation enhancement abilities of PLGA nanoparticles limit their use as transdermal delivery vehicles. We recently designed PEGylated star-shaped PLGA, which hybridized with calcium carbonate to form nanoparticles [6 s-NPs (CaCO3)] with immune stealth and acid-responsive properties, which increased the loading of tetrandrine (Tet), a poorly soluble antiarthritis active ingredient, by 3.26-fold compared with that of single-chain PLGA nanoparticles. The 6 s-NPs (CaCO3) resulted in acid-responsive release of more cargo in both in vitro release medium (pH 5.5) and fibroblast-like synoviocytes (FLSs) (p < 0.0001), thereby inducing stronger cytotoxic effects of the loaded Tet on the TNF-alpha-induced abnormal proliferation of FLSs than Tet-loaded 6 s-NPs (no CaCO3) and Tet aqueous dispersion (Free Tet) (p < 0.0001). However, the number of 6 s-NPs (CaCO3) incorporated by RAW264.7 cells was significantly lower than that of PLGA nanoparticles without PEGylation-endowed immune escape function. Furthermore, the nanoparticles were integrated into peach gum-fabricated dissolving microneedles with higher mechanical hardness and better physical stability than hyaluronic acid-formed microneedles. This integrated delivery strategy dramatically increased synovial uptake of Tet via the transdermal route and was further enhanced by the cofunctionalization with stealth escape from phagocytes and inflammatory acidity-triggered release. The observed improvement in adjuvant-induced arthritis involved stronger regulation of the VEGF, JAK2/p-JAK2, and STAT3/p-STAT3 pathways, which was superior to deleting certain currently designed delivery capacities. This newly fabricated multifunctional transdermal vehicle is therefore a promising therapeutic approach for protecting against local inflammation.

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