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February 14, 2026Advanced Functional Materials0 citations

Immuno‐Training Remodeled Vascular Microenvironment via Peptide‐Functionalized Hydrogel Microspheres for Neural Repair

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LGLin GanTXTongtong XuDZDandan Zheng

Key Points

  • To explore the impact of peptide-functionalized hydrogel microspheres on neural repair through immune training and vascular remodeling.
  • Engineered a hyperinflammatory regulatory peptide and conjugated it to hyaluronic acid microspheres.
  • Utilized photo-click chemistry and microfluidic technology for microsphere creation.
  • Conducted in vitro and in vivo investigations to assess effects on immune cells and vascular health.
  • mND13@HAMA microspheres decreased endothelial cell apoptosis and pro-inflammatory markers.
  • Co-delivery of VEGF liposomes enhanced vascular growth in conjunction with peptide microspheres.
  • The combined treatment reduced brain atrophy volume and improved neurobehavioral functions post-stroke.

Abstract

ABSTRACT The vascular hyperinflammatory microenvironment significantly influences the regeneration and repair of central nervous system (CNS) following injury. Training immune behavior of immune cells under stress conditions is crucial for maintaining vascular microenvironment homeostasis and restoring vascular function. In this study, we engineer a novel hyperinflammatory regulatory peptide (mND13) by rational grafting of a DJ‐1‐derived peptide with an MMP‐2 responsive peptide motif. This modified peptide is further conjugated onto hyaluronic acid methacrylate (HAMA) microspheres via photo‐click chemistry and microfluidic technology, generating mND13@HAMA microspheres. This platform induces microglia immuno‐training, inhibits their pro‐inflammatory polarization, thus orchestrating neurovascular niche remodeling and promoting neural recovery through immune‐vascular crosstalk. Both in vitro and in vivo investigations show that these immune‐functionalized peptide microspheres mND13@HAMA drastically decrease endothelial cell apoptosis and the expression of pro‐inflammatory molecules like iNOS, CD86 and IL‐1β in microglia. To further enhance post‐stroke angiogenesis, we co‐deliver VEGF liposomes with mND13@HAMA, which is proven to promote vascular sprouting and growth while inhibiting vascular apoptosis. This combined system markedly reduces brain atrophy volume in stroke mouse, improves neurobehavioral functions, and enhances angiogenesis. In conclusion, this immunomodulatory microsphere, capable of training immune cell behavior, holds significant therapeutic value for treating stroke along with other CNS injuries.

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Cite This Study

Gan et al. (2026) studied this question.

synapsesocial.com/papers/699011812ccff479cfe5831ehttps://doi.org/10.1002/adfm.202519806
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