KDM6B 介导的 HADHA 去甲基化/乳化调控骨水泥生成

Z Yang, H Wang, J Xiao, Q Yang, J Sun, H Liu, L Ma, X Huang, C Wang, X Wang, Z Cao
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FAO levels were analyzed by assay kit. <i>In vivo</i>, injection of GSK-J4 into mice detected the influence of KDM6B on cementum formation. Chromatin immunoprecipitation sequencing, transcriptomic RNA sequencing, subsequent chromatin immunoprecipitation-quantitative polymerase chain reaction and overexpression of HADHA (hydroxyacyl-coA dehydrogenase trifunctional multienzyme complex subunit alpha) elucidated the KDM6B-<i>Hadha</i> axis. Global lactylation was detected by Western blot. Lactylation proteomics clarified the modified sites of HADHA. Mutating these sites and applying coimmunoprecipitation confirmed their significance. Knockdown of <i>Kdm6b</i> was utilized to assess its regulation on the lactylation of HADHA, FAO, and mineralization levels. FAO and KDM6B expression was elevated during cementoblast mineralization. KDM6B targeted <i>Hadha</i> and activated its transcription, thereby increasing FAO levels and promoting mineralization. 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引用次数: 0

摘要

牙骨质是一种骨样组织,是牙周的重要组成部分,牙周炎会导致牙骨质发生退行性变化,最终导致牙齿脱落。晚期牙周炎的治疗策略是实现牙周再生,而牙骨质再生是其中的关键标准。骨水泥母细胞负责骨水泥的生成,其矿化在骨水泥再生中起着重要作用。然而,这方面的研究仍然有限。因此,需要新的治疗目标。本研究通过定量聚合酶链式反应、Western 印迹、免疫荧光和免疫组化检测了赖氨酸(K)特异性去甲基化酶 6B (KDM6B)、脂肪酸氧化(FAO)和骨水泥生成标志物的表达水平。FAO水平通过检测试剂盒进行分析。在体内,向小鼠注射 GSK-J4 可检测 KDM6B 对骨水泥形成的影响。染色质免疫共沉淀测序、转录组RNA测序、随后的染色质免疫共沉淀-定量聚合酶链反应和过表达HADHA(羟基乙酰辅酶脱氢酶三功能多酶复合物亚基α)阐明了KDM6B-HADHA轴。通过 Western 印迹检测了全乳化作用。乳化蛋白质组学明确了 HADHA 的修饰位点。突变这些位点并应用免疫共沉淀证实了它们的重要性。通过敲除 Kdm6b 来评估其对 HADHA 乳化、FAO 和矿化水平的调控。在水泥母细胞矿化过程中,FAO和KDM6B的表达升高。KDM6B 靶向 Hadha 并激活其转录,从而提高 FAO 水平并促进矿化。矿化过程中会发生乳化作用,KDM6B可以调节HADHA的乳化作用,从而促进FAO和矿化。过量表达Hadha和添加乳酸钠可以挽救Kdm6b敲除对矿化的抑制。综上所述,在水泥母细胞矿化过程中,KDM6B通过介导组蛋白去甲基化和乳酸化来调节HADHA,从而上调FAO,进而促进矿化。
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KDM6B-Mediated HADHA Demethylation/Lactylation Regulates Cementogenesis.

Cementum, a bone-like tissue, is an essential component of periodontium, and periodontitis can lead to degenerative changes in the cementum, eventually resulting in tooth loss. The therapeutic strategy for advanced periodontitis is to achieve periodontal regeneration, of which cementum regeneration is a key criterion. Cementoblasts are responsible for cementogenesis, and their mineralization counts in cementum regeneration. However, research is still limited. Thus, novel treatment targets are required. The expression levels of lysine (K)-specific demethylase 6B (KDM6B), fatty acid oxidation (FAO), and cementogenic markers were detected by quantitative polymerase chain reaction, Western blot, immunofluorescence, and immunohistochemical assays. FAO levels were analyzed by assay kit. In vivo, injection of GSK-J4 into mice detected the influence of KDM6B on cementum formation. Chromatin immunoprecipitation sequencing, transcriptomic RNA sequencing, subsequent chromatin immunoprecipitation-quantitative polymerase chain reaction and overexpression of HADHA (hydroxyacyl-coA dehydrogenase trifunctional multienzyme complex subunit alpha) elucidated the KDM6B-Hadha axis. Global lactylation was detected by Western blot. Lactylation proteomics clarified the modified sites of HADHA. Mutating these sites and applying coimmunoprecipitation confirmed their significance. Knockdown of Kdm6b was utilized to assess its regulation on the lactylation of HADHA, FAO, and mineralization levels. FAO and KDM6B expression was elevated during cementoblast mineralization. KDM6B targeted Hadha and activated its transcription, thereby increasing FAO levels and promoting mineralization. Lactylation occurred in the process of mineralization, and KDM6B could regulate the lactylation of HADHA to promote FAO and mineralization. Overexpression of Hadha and the addition of lactate sodium could rescue the inhibition of mineralization by knockdown of Kdm6b. In summary, during cementoblast mineralization, KDM6B regulates HADHA by mediating histone demethylation and lactylation, thereby upregulating FAO and thus promoting mineralization.

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KDM6B-Mediated HADHA Demethylation/Lactylation Regulates Cementogenesis. System Dynamics Modeling of Caries Severity States in Long-Term Care. Terahertz Imaging Detects Oral Cariogenic Microbial Domains Characteristics. Explainable Deep Learning Approaches for Risk Screening of Periodontitis. Geo-Net: Geometry-Guided Pretraining for Tooth Point Cloud Segmentation.
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