Yu Jiaze, Ji Luli, Liu Yongxian, Wang Xiaogang, Wang Jing, Liu Changsheng
The State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, Shanghai, 200237, PR China.
Engineering Research Center for Biomedical Materials of the Ministry of Education, East China University of Science and Technology, Shanghai, 200237, PR China.
Bone Res. 2025 Mar 17;13(1):38. doi: 10.1038/s41413-025-00404-5.
Following the discovery of bone as an endocrine organ with systemic influence, bone-brain interaction has emerged as a research hotspot, unveiling complex bidirectional communication between bone and brain. Studies indicate that bone and brain can influence each other's homeostasis via multiple pathways, yet there is a dearth of systematic reviews in this area. This review comprehensively examines interactions across three key areas: the influence of bone-derived factors on brain function, the effects of brain-related diseases or injuries (BRDI) on bone health, and the concept of skeletal interoception. Additionally, the review discusses innovative approaches in biomaterial design inspired by bone-brain interaction mechanisms, aiming to facilitate bone-brain interactions through materiobiological effects to aid in the treatment of neurodegenerative and bone-related diseases. Notably, the integration of artificial intelligence (AI) in biomaterial design is highlighted, showcasing AI's role in expediting the formulation of effective and targeted treatment strategies. In conclusion, this review offers vital insights into the mechanisms of bone-brain interaction and suggests advanced approaches to harness these interactions in clinical practice. These insights offer promising avenues for preventing and treating complex diseases impacting the skeleton and brain, underscoring the potential of interdisciplinary approaches in enhancing human health.
随着骨骼作为一个具有全身影响的内分泌器官被发现,骨-脑相互作用已成为一个研究热点,揭示了骨骼与大脑之间复杂的双向交流。研究表明,骨骼和大脑可通过多种途径相互影响对方的内环境稳态,但该领域缺乏系统性综述。本综述全面审视了三个关键领域的相互作用:骨源性因子对脑功能的影响、脑相关疾病或损伤(BRDI)对骨骼健康的影响以及骨骼内感受的概念。此外,本综述还讨论了受骨-脑相互作用机制启发的生物材料设计创新方法,旨在通过材料生物学效应促进骨-脑相互作用,以辅助治疗神经退行性疾病和骨骼相关疾病。值得注意的是,强调了人工智能(AI)在生物材料设计中的整合,展示了AI在加速制定有效和靶向治疗策略方面的作用。总之,本综述为骨-脑相互作用机制提供了重要见解,并提出了在临床实践中利用这些相互作用的先进方法。这些见解为预防和治疗影响骨骼和大脑的复杂疾病提供了有前景的途径,强调了跨学科方法在促进人类健康方面的潜力。