Enhanced Auricular Cartilage Regeneration via 3D-Printed Hydrogel With miR-92a-3p-Enriched Platelet-Rich Plasma-Derived Extracellular Vesicles

  • Adv Healthc Mater. 2026 Jun;15(24):e05389. doi: 10.1002/adhm.202505389.
Shan Hua  1  2 Hongyi Zhang  1  2 Jiawei Gu  1  2 Ming Yin  3 Shengming Wu  4 Chenlong He  3 Huawei Liu  3 Han Zhou  3 Rong Guo  1 Yingshen Shi  1 Hua Jiang  1 Yilong Wang  3 Yuxin Qian  1
Affiliations
  • 1. Department of Plastic Surgery School of Medicine, Shanghai East Hospital, School of Medicine, Tongji University, Shanghai, China.
  • 2. School of Medicine, Tongji University, Shanghai, China.
  • 3. Department of Plastic Surgery State Key Laboratory of Cardiology and Medical Innovation Center, The Institute for Biomedical Engineering & Nano Science, Shanghai East Hospital, School of Medicine, Tongji University, Shanghai, P. R. China.
  • 4. State Key Laboratory of Cardiology and Medical Innovation Center the Institute for Biomedical Engineering & Nano Science, Shanghai East Hospital, School of Medicine, Tongji University, Shanghai, P. R. China.
Abstract

Auricular cartilage reconstruction in microtia remains a formidable challenge in regenerative medicine. Although cartilage tissue engineering holds substantial promise, achieving reliable and efficient chondrogenesis remains a pressing challenge owing to the intrinsically quiescent phenotype of chondrocytes. We present engineered platelet-derived extracellular vesicles (PEVs) that enhance auricular chondrocyte chondrogenesis in a 3D-printed hydrogel, enabling safe and efficient ear regeneration. Initially, we demonstrated PEVs activated auricular chondrocytes, and Sequencing identified miR-92a-3p as the key effector. Then we employed 3D bioprinting to fabricate a biomimetic ElaMA/GelMA double-network hydrogel auricular scaffold incorporating PEVs that were engineered to carry miRNA-92a-3p (miR@PEVs). In vivo, miR@PEV-laden scaffolds exhibited the most robust chondrogenesis compared with PEVs and control groups; after one month of subcutaneous implantation, their Young's modulus approached that of native human auricular cartilage. The scaffolds also preserved satisfactory auricular morphology and displayed excellent biocompatibility. In vitro, miR@PEVs enhanced chondrocyte proliferation and migration, chiefly through miR-92a-3p-mediated suppression of SMAD7 and subsequent activation of TGFβ/Smad signaling. Moreover, miR@PEVs promoted macrophage polarization toward the M2 phenotype, creating an immunological milieu conducive to cartilage formation. Altogether, integrating miR-92a-3p-enriched miR@PEVs into the 3D-printed ElaMA/GelMA scaffold overcomes the key hurdles of auricular reconstruction and represents a promising strategy for total ear reconstruction.

Keywords
auricular cartilage regeneration; digital light processing bioprinting; extracellular vesicles; microRNA; platelet‐rich plasma.
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