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April 16, 2026Journal of Nanobiotechnology0 citationsOpen Access

Exosome-mediated Piezo1 activation in 3D-printed titanium scaffolds promotes repair of femoral head osteonecrosis

YYYang YuZJZhongyin JiHXHongjun Xu

Key Points

  • This research aims to investigate the role of Piezo1-engineered exosomes in enhancing bone repair and angiogenesis in osteonecrosis.
  • Developed a 3D-printed titanium scaffold coated with hyaluronic acid hydrogel retaining P-Exos.
  • Conducted in vitro studies to assess BMSC viability, migration, and osteogenic differentiation.
  • Utilized RNA-seq for mechanistic validation of signaling pathways in response to P-Exos in hybrid constructs.
  • Applied a rat model of ONFH to evaluate the scaffold's effects on bone architecture and function.
  • P-Exos enhanced BMSC viability, migration, and differentiation towards bone formation.
  • Increased expression of osteogenic and angiogenic markers, including Runx2 and VEGFA.
  • In vivo, the scaffold restored trabecular architecture and improved micro-CT measurements of bone volume and structure.
  • Observed superior locomotor recovery in rats treated with the hybrid scaffold compared to control.

Abstract

Osteonecrosis of the femoral head (ONFH) is a debilitating bone disorder characterized by ischemic degeneration with limited therapeutic options. Piezo1, a mechanosensitive ion channel, transduces physical stimuli into intracellular signals regulating osteogenesis and angiogenesis. Here, we developed a 3D-printed Ti6Al4V scaffold conformally coated with photocrosslinked hyaluronic acid hydrogel that retains and releases Piezo1-engineered exosomes (P-Exos), forming a hybrid construct (P-Exos@HAMA/Ti) with cancellous-bone-like stiffness and sustained bioactivity. In vitro studies demonstrated that P-Exos enhanced BMSC viability, migration, and osteogenic differentiation (ALP/ARS; Runx2, Osterix, OCN) while promoting endothelial proliferation and network formation (CD31, VEGFA). RNA-seq and mechanistic validation revealed Ca2+-responsive YAP1/β-catenin signaling, characterized by elevated intracellular Ca2+ levels, upregulated YAP1/β-catenin expression, and nuclear localization, underpinning the scaffold’s osteo-angiogenic synergy. In a rat ONFH model, P-Exos@HAMA/Ti restored trabecular architecture and bone volume, improved micro-CT indices (increased BV/TV, Tb.N, Tb.Th; decreased Tb.Sp), and enhanced osteogenic/angiogenic marker expression, alongside superior locomotor recovery. This multifunctional platform couples mechanical stabilization with Piezo1-mediated mechanotransduction, establishing a pro-regenerative niche integrating biomechanical support with sustained exosomal signaling for effective repair of ischemic bone defects.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/69e07dc72f7e8953b7cbeb6fhttps://doi.org/10.1186/s12951-026-04424-z
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