KDF1 通过抑制 IKK/IκB/NF-κB 轴促进成骨细胞分化。

IF 4.5 2区 生物学 Q2 CELL BIOLOGY Journal of Cellular Physiology Pub Date : 2024-09-19 DOI:10.1002/jcp.31437
Hangbo Liu, Miao Yu, Kai Sun, Jinglei Zheng, Jiayu Wang, Haochen Liu, Hailan Feng, Yang Liu, Dong Han
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引用次数: 0

摘要

珐琅质保护牙齿免受外界刺激,它的形成涉及牙釉质上皮细胞(ameloblasts)的连续分化。角质细胞分化因子 1(KDF1)在上皮组织和器官的发育过程中非常重要。然而,KDF1在釉质形成中的具体作用及相应的调控机制尚不清楚。本研究通过 RNAscope 原位杂交证实,KDF1 在釉母细胞分化的各个阶段都有持续表达。通过免疫荧光检测证明了KDF1在小鼠成釉细胞系LS8中的表达。利用 CRISPR/Cas-9 系统在 LS8 细胞中敲除 KDF1,或通过慢病毒感染在 LS8 细胞中过表达 KDF1。体外成髓细胞分化诱导、定量反转录 PCR、Western 印迹分析和碱性磷酸酶(ALP)检测表明,在 LS8 细胞中敲除或过表达 KDF1 会降低或提高几个关键成髓标志物的 mRNA 和蛋白水平以及 ALP 活性。此外,液相色谱-质谱法和共免疫沉淀分析表明,KDF1能与IKK复合物相互作用,从而抑制NF-κB通路。抑制NF-κB活性可部分恢复KDF1基因敲除诱导的LS8细胞成髓细胞分化的下降。这项研究表明,KDF1可通过抑制IKK/IκB/NF-κB轴促进LS8细胞的成釉细胞分化,是功能性釉质再生的潜在靶点。
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KDF1 promotes ameloblast differentiation by inhibiting the IKK/IκB/NF-κB axis.

Enamel protects teeth from external irritation and its formation involves sequential differentiation of ameloblasts, a dental epithelial cell. Keratinocyte differentiation factor 1 (KDF1) is important in the development of epithelial tissues and organs. However, the specific role of KDF1 in enamel formation and corresponding regulatory mechanisms are unclear. This study demonstrated that KDF1 was persistently expressed in all stages of ameloblast differentiation, through RNAscope in situ hybridization. KDF1 expression in the mouse ameloblast cell line LS8 was demonstrated via immunofluorescence assay. KDF1 was knocked out in LS8 cells using the CRISPR/Cas-9 system or overexpressed in LS8 cells through lentiviral infection. In vitro ameloblast differentiation induction, quantitative reverse transcription PCR, western blot analysis, and alkaline phosphatase (ALP) assay indicated that knockout or overexpression of KDF1 in LS8 cells decreased or increased the mRNA and protein levels of several key amelogenesis markers, as well as ALP activity. Furthermore, liquid chromatography-mass spectrometry and co-immunoprecipitation analyses revealed that KDF1 can interact with the IKK complex, thereby inhibiting the NF-κB pathway. Suppressing NF-κB activity partially recovered the decreased ameloblast differentiation in LS8 cells induced by KDF1-knockout. This study demonstrated that KDF1 can promote ameloblast differentiation of LS8 cells by inhibiting the IKK/IκB/NF-κB axis, and is a potential target for functional enamel regeneration.

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来源期刊
CiteScore
14.70
自引率
0.00%
发文量
256
审稿时长
1 months
期刊介绍: The Journal of Cellular Physiology publishes reports of high biological significance in areas of eukaryotic cell biology and physiology, focusing on those articles that adopt a molecular mechanistic approach to investigate cell structure and function. There is appreciation for the application of cellular, biochemical, molecular and in vivo genetic approaches, as well as the power of genomics, proteomics, bioinformatics and systems biology. In particular, the Journal encourages submission of high-interest papers investigating the genetic and epigenetic regulation of proliferation and phenotype as well as cell fate and lineage commitment by growth factors, cytokines and their cognate receptors and signal transduction pathways that influence the expression, integration and activities of these physiological mediators. Similarly, the Journal encourages submission of manuscripts exploring the regulation of growth and differentiation by cell adhesion molecules in addition to the interplay between these processes and those induced by growth factors and cytokines. Studies on the genes and processes that regulate cell cycle progression and phase transition in eukaryotic cells, and the mechanisms that determine whether cells enter quiescence, proliferate or undergo apoptosis are also welcomed. Submission of papers that address contributions of the extracellular matrix to cellular phenotypes and physiological control as well as regulatory mechanisms governing fertilization, embryogenesis, gametogenesis, cell fate, lineage commitment, differentiation, development and dynamic parameters of cell motility are encouraged. Finally, the investigation of stem cells and changes that differentiate cancer cells from normal cells including studies on the properties and functions of oncogenes and tumor suppressor genes will remain as one of the major interests of the Journal.
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