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Updated: Jun 9, 2026

A Lab-On-A-Chip Platform for Stimulating Osteocyte Mechanotransduction and Analyzing Functional Outcomes of Bone Remodeling
Published on: May 21, 2020
The mechano-immune-vesicle regulatory circuit: a systems framework for bone homeostasis and regeneration
Ting Yang1, Zhili Dong1, Lili Chen1
1Hospital of Stomatology, Guanghua School of Stomatology, Guangdong Provincial Key Laboratory of Stomatology, Sun Yat-Sen University, Guangzhou, 510055, People's Republic of China.
Abstract:
Bone remodeling is a mechanically adaptive process that integrates physical loading with immune regulation during homeostasis, repair, and disease. However, the traditional view fails to fully explain how mechanical and immune signals are coordinated across cellular compartments. Emerging evidence indicates that mechanical forces, immune responses, and extracellular vesicles (EVs) function as an integrated communication system rather than independent regulators. Here, we propose a systems-level framework termed the "mechano-immune-vesicle regulatory circuit". In this framework, biophysical cues regulate EV biogenesis and selective cargo sorting through mechanotransduction pathways. These mechanically primed EVs then serve as communication vectors that reprogram osteoimmune responses, specifically by directing macrophage polarization, adaptive immunity, and bone-resident cell differentiation. The resulting immune output feeds back to reshape EV signaling and mechanosensitivity, suggesting a closed regulatory circuit that governs bone remodeling. By synthesizing advances in mechanobiology, osteoimmunology and EV biology, this review reframes bone remodeling as a mechano-immune-vesicle regulatory circuit rather than as a collection of parallel pathways. We further discuss how this framework may guide the design of mechano-responsive biomaterials and engineered EV-based therapies with spatiotemporal control over inflammation and bone regeneration. This conceptual integration provides a mechanistic basis for understanding bone diseases and for developing next-generation regenerative strategies.
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