Metformin accelerates bone fracture healing by promoting type H vessel formation through inhibition of YAP1/TAZ expression.
Zhe RuanHao YinTeng-Fei WanZhi-Rou LinShu-Shan ZhaoHai-Tao LongCheng LongZhao-Hui LiYu-Qi LiuHao LuoLiang ChengCan ChenMin ZengZhang-Yuan LinRui-Bo ZhaoChun-Yuan ChenZhen-Xing WangZheng-Zhao LiuJia CaoYi-Yi WangLing JinYi-Wei LiuGuo-Qiang ZhuJing-Tao ZouJiang-Shan GongYi LuoYin HuYong ZhuHui XiePublished in: Bone research (2023)
Due to increasing morbidity worldwide, fractures are becoming an emerging public health concern. This study aimed to investigate the effect of metformin on the healing of osteoporotic as well as normal fractures. Type H vessels have recently been identified as a bone-specific vascular subtype that supports osteogenesis. Here, we show that metformin accelerated fracture healing in both osteoporotic and normal mice. Moreover, metformin promoted angiogenesis in vitro under hypoxia as well as type H vessel formation throughout fracture healing. Mechanistically, metformin increased the expression of HIF-1α, an important positive regulator of type H vessel formation, by inhibiting the expression of YAP1/TAZ in calluses and hypoxia-cultured human microvascular endothelial cells (HMECs). The results of HIF-1α or YAP1/TAZ interference in hypoxia-cultured HMECs using siRNA further suggested that the enhancement of HIF-1α and its target genes by metformin is primarily through YAP1/TAZ inhibition. Finally, overexpression of YAP1/TAZ partially counteracted the effect of metformin in promoting type H vessel-induced angiogenesis-osteogenesis coupling during fracture repair. In summary, our findings suggest that metformin has the potential to be a therapeutic agent for fractures by promoting type H vessel formation through YAP1/TAZ inhibition.
Keyphrases
- endothelial cells
- high glucose
- public health
- poor prognosis
- bone mineral density
- vascular endothelial growth factor
- signaling pathway
- transcription factor
- type diabetes
- hip fracture
- drug delivery
- gene expression
- soft tissue
- body composition
- risk assessment
- bone loss
- bone regeneration
- cancer therapy
- genome wide
- diabetic rats
- human health
- pluripotent stem cells