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Glycometabolic reprogramming in cementoblasts: A vital target for enhancing cell mineralization

成牙骨质细胞 牙骨质 细胞生物学 糖酵解 化学 生物能学 牙骨质 厌氧糖酵解 生物化学 生物 新陈代谢 线粒体 病理 医学 牙本质
作者
Huiyi Wang,Peng Yan,Xin Huang,Junhong Xiao,Li Ma,Heyu Liu,Hantao Huang,Zhengkun Yang,Chuan Wang,Xiaoxuan Wang,Zhengguo Cao
出处
期刊:The FASEB Journal [Wiley]
卷期号:37 (11) 被引量:3
标识
DOI:10.1096/fj.202300870rr
摘要

Cementum, a constituent part of periodontal tissues, has important adaptive and reparative functions. It serves to attach the tooth to alveolar bone and acts as a barrier delimit epithelial growth and bacteria evasion. A dynamic and highly responsive cementum is essential for maintaining occlusal relationships and the integrity of the root surface. It is a thin layer of mineralized tissue mainly produced by cementoblasts. Cementoblasts are osteoblast-like cells essential for the restoration of periodontal tissues. In recent years, glucose metabolism has been found to be critical in bone remodeling and osteoblast differentiation. However, the glucose metabolism of cementoblasts remains incompletely understood. First, immunohistochemistry staining and in vivo tracing with 18 F-fluorodeoxyglucose (18 F-FDG) revealed significantly higher glucose metabolism in cementum formation. To test the bioenergetic pathways of cementoblast differentiation, we compared the bioenergetic profiles of mineralized and unmineralized cementoblasts. As a result, we observed a significant increase in the consumption of glucose and production of lactate, coupled with the higher expression of glycolysis-related genes. However, the expression of oxidative phosphorylation-related genes was downregulated. The verified results were consistent with the RNA sequencing results. Likewise, targeted energy metabolomics shows that the levels of glycolytic metabolites were significantly higher in the mineralized cementoblasts. Seahorse assays identified an increase in glycolytic flux and reduced oxygen consumption during cementoblast mineralization. Apart from that, we also found that lactate dehydrogenase A (LDHA), a key glycolysis enzyme, positively regulates the mineralization of cementoblasts. In summary, cementoblasts mainly utilized glycolysis rather than oxidative phosphorylation during the mineralization process.
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