ACS Nano· 2026Q1
Oral Insulin Enhanced by Dual-Ligand-Modified Nanoparticles via Trans-Golgi Network-Mediated Transport
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- Q1SCImago
- 2026year
Short summary
Dual-ligand modified PLGA nanoparticles (PLGA-Tf/BAC-NPs) achieved 16.62% oral bioavailability and sustained euglycemia for 6 hours in diabetic rats by exploiting Trans-Golgi Network (TGN) mediated transport to evade lysosomal degradation.
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Abstract
Abstract Oral insulin delivery is challenged by a cascade of gastrointestinal barriers, including mucus entrapment, poor apical endocytosis, extensive lysosomal degradation, and insufficient basolateral exocytosis. To overcome these obstacles in a coordinated fashion, we engineered a dual-ligand PLGA nanoparticle (PLGA-Tf/BAC-NPs) decorated with transferrin (Tf) and the sorting peptide BAC (ADDIDLLK). Tf facilitates efficient apical endocytosis via transferrin receptor (TfR) recognition, whereas BAC not only participates in AP-2-mediated internalization but, more critically, reroutes intracellular trafficking to evade lysosomal destruction. Mechanistically, BAC sequentially recognizes GGA-1 and AP-1, directing nanoparticles from endosomes to the trans-Golgi network (TGN) and subsequently to the basolateral membrane. This synergistic ligand pairing also endows the nanoparticles with rapid mucus-penetrating capability, as corroborated by nanoparticle tracking and mucin interaction assays. In a type 1 diabetic rat model, PLGA-Tf/BAC-NPs yielded a relative oral bioavailability of 16.62% and a pharmacological bioavailability of 7.58%, sustaining euglycemia for approximately 6 h. Collectively, our findings establish a clinically relevant PLGA-based platform that integrates a “mucus penetration-cellular uptake-intracellular trafficking” strategy, substantially advancing oral insulin delivery efficacy.
The authors' abstract, as published at the source. ACS Nano, 2026 · DOI ↗
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