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Ckip-1 MediatesP. gingivalis–Suppressed Cementoblast Mineralization

牙龈卟啉单胞菌 蛋白激酶B 化学 成牙骨质细胞 p38丝裂原活化蛋白激酶 细胞生物学 炎症 激酶 矿化(土壤科学) 信号转导 蛋白激酶A 牙骨质 内科学 生物 牙周炎 生物化学 医学 牙科 牙本质 氮气 有机化学
作者
Xin Huang,Li Ma,X. Wang,Xiaochen Wang,Peng Yan,Xudong Gao,Hegui Huang,Y. Chen,Yufeng Zhang,Zhengguo Cao
出处
期刊:Journal of Dental Research [SAGE Publishing]
卷期号:101 (5): 599-608 被引量:19
标识
DOI:10.1177/00220345211054744
摘要

Porphyromonas gingivalis is responsible for the destruction of cementum in patients with periodontitis and periapical periodontitis. However, research about the effects of P. gingivalis on cementoblast mineralization and the underlying mechanism is still lacking. Casein kinase 2 interacting protein 1 (Ckip-1) is a scaffold protein that interacts with various proteins and signals to regulate different cell functions, such as cell morphology, apoptosis, and differentiation. In this study, we verified the suppressive effects of P. gingivalis and lipopolysaccharide (Pg-LPS) on OCCM-30 mineralization. We also showed that Ckip-1 gradually decreased during OCCM-30 mineralization but increased with the aggravation of Pg-induced inflammation. However, it remained unchanged when cells were stimulated with Pg-LPS, regardless of the concentration and incubation time. Then, more cellular cementum and enhanced Osterix expression were observed in Ckip-1 knockout mice when compared with the wild-type mice. Meanwhile, Ckip-1 silencing significantly enhanced cementoblast mineralization with or without P. gingivalis–associated inflammation. The trend was opposite when Ckip-1 was overexpressed. Finally, we found that the p38, Akt, and Wnt pathways were activated, while the Erk1/2 pathway was inhibited when Ckip-1 was silenced. The opposite results were also observed in the Ckip-1 overexpression group. Furthermore, we proved that cell mineralization was weakened when p38, Akt inhibitors were applied and strengthened when the Erk1/2 pathway was inhibited. In summary, Ckip-1 is upregulated under P. gingivalis–induced inflammation and negatively regulates cementoblast mineralization partially through mitogen-activated protein kinases and Akt signaling pathways, which may contribute to the restoration of cementum destroyed by P. gingivalis.
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