Abstract
The formation of a hardened fibrous membrane through in situ degradation of polycaprolactone (PCL) in soft tissues has emerged as a promising alternative to conventional rigid bone implants for chest wall reconstruction. However, strategies to enhance the mechanical integrity and biological performance of such fibrous constructs remain limited. While nano-hydroxyapatite (nHA) is known to promote osteoblast proliferation and mineralization, its role in regulating fibroblast behavior remains unclear, particularly within a dynamically strained environment mimicking respiratory motion. In this study, we developed PCL scaffolds incorporating various concentrations of nHA using fused deposition modeling (FDM). The PCL/10 wt% nHA scaffold exhibited optimal mechanical properties and significantly enhanced fibroblast proliferation, adhesion, and extracellular matrix deposition in vitro. Notably, higher nHA content led to excessive Piezo1 activation, resulting in Ca2+ overload and increased fibroblast apoptosis. Under dynamic mechanical stimulation, the PCL/10 wt% nHA scaffold markedly promoted fibroblast functionality and tissue fibrosis, facilitating robust soft tissue hardening in vivo. Mechanistic investigations revealed that the Piezo1/TGF-β1 signaling axis plays a central role in mediating fibroblast responses to cyclic shear stress. These findings demonstrate that the PCL/10 wt% nHA scaffold effectively supports tissue-engineered structural reinforcement through fibroblast-driven fibrosis, presenting a biodegradable and mechanically adaptive approach with potential for future chest wall repair applications.
| Original language | English |
|---|---|
| Pages (from-to) | 846-861 |
| Number of pages | 16 |
| Journal | Bioactive Materials |
| Volume | 62 |
| DOIs | |
| State | Published - Aug 2026 |
Keywords
- Chest wall reconstruction
- PCL/nHA scaffold
- Piezo1/Ca2+signaling axis
- Respiratory dynamic environment
- Soft tissue fibrosis
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