Dual-engineered small extracellular vesicles targeted delivery miR-126 for reducing age-related bone loss

  • Biomed Mater. 2026 Jul 13;21(4). doi: 10.1088/1748-605X/ae7ee3.
Junming Tao  1 Ruiyu Du  1 Yi Zhang  1 Mengru Hong  1 Shaochen Duan  1 Datian Fu  1 Yue Chen  2 Chao Liang  3 Wei Jing  1
Affiliations
  • 1. State Key Laboratory of Oral Diseases & National Center for Stomatology & National Clinical Research Center for Oral Diseases & Department of Oral and Maxillofacial Surgery, West China Hospital of Stomatology, Sichuan University, Chengdu 610041 Sichuan, People's Republic of China.
  • 2. Shenzhen Traditional Chinese Medicine Hospital, Shenzhen 518033, People's Republic of China.
  • 3. Applied Oral Sciences and Community Dental Care, Faculty of Dentistry, The University of Hong Kong, Hong Kong Special Administrative Region of China, People's Republic of China.
Abstract

MiRNA based nucleic acid therapeutics have been extensively investigated for the treatment of age-related diseases. However, efficient delivery of miRNA and effective therapy for age-related bone loss remain major challenges. In this study, we devised an engineered small extracellular vesicle (sEV) platform to address the dysregulation of bone homeostasis in the elderly. Initially, miR-126 was encapsulated into sEV to generate miR-126 loaded small extracellular vesicles (m-sEV), whose capacity to enhance vascularized bone regeneration was validatedin vitroand in a mandibular defect model of aged rats. To further optimize systemic therapeutic efficacy, we functionalized m-sEV with a bone-targeting peptide:(DSS)6, thereby constructing bone-targeting engineered vesicles (Bm-sEV). Systemic administration of Bm-sEV enabled precise miR-126 targeted delivery to bone tissue, resulting in increased abundance of type H vessels in the femur, improved bone microarchitecture, and attenuation of age-related bone loss. Mechanistic analyses demonstrated that the angiogenesis-osteogenesis coupling effect was mediated by upregulation of endothelial Integrinβ3 (ITGB3), which subsequently activated the ITGB3/ERK2 signaling cascade. Notably, Bm-sEV also restored the profoundly impaired osteoclastic activity in aged femurs, thereby re-establishing skeletal homeostasis. Collectively, Our study provides a promising approach for the treatment of age-related bone loss by combining biological macromolecules such as (DSS)6and miR-126 with sEV.

Keywords
angiogenesis-osteogenesis coupling; engineered small extracellular vesicles; targeting drug delivery.
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