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Molecules· 2026Q1

Cross-and-Capture: A Dual-Ligand PAMAM Nanocarrier for Sequential BBB Penetration and Ischemic Lesion Retention of Breviscapine

Haoran Guo, Dandan Han, Xin Liu

Short summary

A dual-ligand PAMAM nanocarrier (L57&PGP-PEG-PAMAM) sequentially crosses the blood-brain barrier (BBB) via LRP1 receptors and retains within ischemic lesions by targeting CXCR2 receptors, significantly improving breviscapine delivery and efficacy in a rat stroke model.

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Key points

  • A dual-ligand nanocarrier (L57&PGP-PEG-PAMAM) was developed to sequentially target the BBB and ischemic lesions.
  • L57 peptide mediates BBB transcytosis via LRP1 receptors, while PGP peptide targets CXCR2 receptors on neutrophils at the lesion.
  • The nanocarrier (140.2 ± 0.6 nm) encapsulated breviscapine with 71.78% efficiency and showed sustained release.
  • In vivo studies showed superior brain accumulation, reduced infarct volume (21.7 ± 6.4%), improved neurological scores (1.52 ± 0.28), and suppressed inflammation in a rat MCAO model.

AI-generated from the title and abstract; the full text is not read.

Abstract

The clinical management of ischemic stroke is severely constrained by the blood–brain barrier (BBB), which restricts therapeutic drug access to the brain parenchyma, and the rapid systemic clearance of neuroprotective agents such as breviscapine (Bre). To overcome this dual challenge, we engineered a dual-targeting nanocarrier, L57&PGP-PEG-PAMAM, designed to sequentially traverse the BBB and anchor within the ischemic inflammatory microenvironment. This construct employs a PEGylated fifth-generation polyamidoamine (PAMAM) dendrimer scaffold functionalized with two distinct peptides: L57, which mediates transcytosis via LRP1 receptors on the BBB, and PGP, which targets CXCR2 receptors overexpressed on infiltrating neutrophils at the lesion. The resulting nano particles exhibited a hydrodynamic diameter of 140.2 ± 0.6 nm (zeta potential: 9.32 mV) and encapsulated Bre with a loading capacity of 20.12% and encapsulation efficiency of 71.78%, displaying sustained release (54.6% over 72 h). Crucially, in vivo fluorescence imaging confirmed markedly superior brain accumulation relative to non-targeted and PEGylated-only controls, while in a rat MCAO model, the formulation reduced infarct volume to 21.7 ± 6.4%, improved neurological scores to 1.52 ± 0.28, and suppressed pro-inflammatory IL-15/IL-27 levels—collectively outperforming free Bre. This work establishes a robust “cross-and-capture” strategy that effectively decouples BBB penetration from lesion-specific retention for ischemic stroke therapy.

The authors' abstract, as published at the source. Molecules, 2026 · DOI ↗

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Field: Biomaterials

BiomaterialsMaterials Science