机械生物学
机械敏感通道
机械反应
机械转化
基质(化学分析)
细胞外基质
基质骨
材料科学
纳米技术
静水压力
接口
骨细胞
计算机科学
功能(生物学)
纳米医学
组织工程
纳米力学
细胞生物学
生物医学工程
神经科学
骨单位
体内
自愈水凝胶
刚度
微图形化
等级制度
作者
Ramya Dhandapani,Kadambari Sathyanarayanan,Shantanu Pradhan
出处
期刊:Small
[Wiley]
日期:2025-12-31
卷期号:22 (7): e09536-e09536
标识
DOI:10.1002/smll.202509536
摘要
The bone exhibits a complex scale-spanning hierarchical structure with integrated mechanical cues that provide structural integrity, regulate cellular signaling, and maintain tissue homeostasis, thereby preserving the overall form and function of the human body. The structured arrangement of multiple cellular and acellular components enables the mechanobiological regulation of various osteologic processes. At the nanoscale, collagen fibrils and crystalline hydroxyapatite (HA) govern force propagation necessary for high mechanical stiffness and toughness. At the microscale, the pericellular matrix acts as a mechanosensitive force transducer that influences interstitial fluid flow, pressure gradients, matrix deformation, and response to external physical loads. Concurrently, shear-sensitive endothelial and neural cells in the neurovascular microenvironment also adapt to mechanical loading. In cancer, homeostasis is disrupted by altered matrix stiffness, elevated interstitial pressures, and tumor-associated biochemical gradients, leading to impaired mechanotransduction, aberrant remodeling, and invasive growth. This review provides a perspective on spatially and mechanically distinct but connected interfaces involved in mechanobiological crosstalk. Recapitulation of in vivo mechanical stimuli, microenvironmental cues, and disease-specific mechanobiological signaling in microfluidics-based bone-on-chip platforms is described, along with opportunities for pharmacological intervention. These platforms will have wider applications in drug screening and complement animal models by providing predictive pre-clinical information related to cancer and other bone pathologies.
科研通智能强力驱动
Strongly Powered by AbleSci AI