FAM96B negatively regulates FOSL1 to modulate the osteogenic differentiation and regeneration of periodontal ligament stem cells via ferroptosis.

IF 7.1 2区 医学 Q1 CELL & TISSUE ENGINEERING
Qianyi Qin, Haoqing Yang, Runzhi Guo, Yunfei Zheng, Yiping Huang, Luyuan Jin, Zhipeng Fan, Weiran Li
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引用次数: 0

Abstract

Background: Periodontal ligament stem cell (PDLSC)-based therapy is one of the methods to assist bone regeneration. Understanding the functional regulation of PDLSCs and the mechanisms involved is a crucial issue in bone regeneration. This study aimed to explore the roles of the family with sequence similarity 96 member B (FAM96B) in the functional regulation of PDLSCs.

Methods: To assess the osteogenic differentiation of PDLSCs, the alkaline phosphatase (ALP) activity assay, Alizarin red staining, quantitative calcium analysis, and osteogenic marker detection were conducted. Transplantation PDLSCs under the dorsum of nude mice and into the rat calvarial defects were also performed. Then, FAM96B-overexpressed PDLSCs were used for RNA-sequencing and bioinformatic analysis. To evaluate the ferroptosis of PDLSCs, cytosolic reactive oxygen species (ROS), expression of glutathione peroxidase 4 (GPX4), mitochondrial morphology and functions including the mitochondrial ROS, mitochondria membrane potential, and mitochondrial respiration were detected.

Results: The osteogenic indicators ALP activity, level of mineralization, and osteocalcin expression were decreased in PDLSCs by FAM96B, which demonstrated that FAM96B inhibited the osteogenic differentiation of PDLSCs. FAM96B knockdown promoted the new bone formation of PDLSCs subcutaneously transplanted to the dorsum of nude mice. Then, related biological functions were detected by the RNA-sequencing and the ferroptosis was focused. FAM96B enhanced the cytosolic ROS level and inhibited the expression of GPX4 and mitochondrial functions in PDLSCs. Hence, FAM96B promoted the ferroptosis of PDLSCs. Meanwhile, we found that FAM96B inhibition upregulated the target gene FOS like 1, AP-1 transcription factor subunit (FOSL1) expression and FOSL1 promoted the osteogenic differentiation of PDLSCs in vitro. FOSL1 also promoted the new bone formation of PDLSCs transplanted subcutaneously to the dorsum of nude mice and transplanted into rat calvarial defects. Then, the inhibitory effect of FOSL1 on the ferroptosis was confirmed.

Conclusions: FAM96B depletion promoted the osteogenic differentiation and suppressed the ferroptosis of PDLSCs. FAM96B negatively regulated the downstream gene FOSL1 and FOSL1 promoted the osteogenic differentiation of PDLSCs via the ferroptosis. Hence, our findings provided a foundation for understanding the FAM96B-FOSL1 axis acting as a target for MSC mediated bone regeneration.

FAM96B负向调控FOSL1,通过铁下垂调节牙周韧带干细胞的成骨分化和再生。
背景:以牙周韧带干细胞(PDLSC)为基础的治疗是辅助骨再生的方法之一。了解PDLSCs的功能调控及其机制是骨再生的关键问题。本研究旨在探讨序列相似96成员B家族(FAM96B)在PDLSCs功能调控中的作用。方法:采用碱性磷酸酶(ALP)活性测定、茜素红染色、定量钙分析、成骨标志物检测等方法评价PDLSCs的成骨分化。将PDLSCs移植到裸鼠背下和大鼠颅骨缺损内。然后,使用fam96b过表达的PDLSCs进行rna测序和生物信息学分析。为了评估PDLSCs的铁下垂,检测细胞质活性氧(ROS)、谷胱甘肽过氧化物酶4 (GPX4)的表达、线粒体形态和功能,包括线粒体ROS、线粒体膜电位和线粒体呼吸。结果:FAM96B降低了PDLSCs的成骨指标ALP活性、矿化水平和骨钙素表达,表明FAM96B抑制了PDLSCs的成骨分化。FAM96B基因敲低可促进裸鼠背皮下移植PDLSCs的新骨形成。然后通过rna测序检测相关生物学功能,重点研究铁下垂。FAM96B可提高PDLSCs的胞浆ROS水平,抑制GPX4的表达和线粒体功能。因此,FAM96B促进了PDLSCs的铁下垂。同时,我们发现FAM96B抑制上调靶基因FOS如1,AP-1转录因子亚单位(FOSL1)的表达,FOSL1促进PDLSCs体外成骨分化。FOSL1对裸鼠背部皮下移植和大鼠颅骨缺损移植的PDLSCs新生骨形成也有促进作用。进而证实FOSL1对铁下垂的抑制作用。结论:FAM96B缺失促进了PDLSCs的成骨分化,抑制了铁下沉。FAM96B负向调控下游基因FOSL1, FOSL1通过铁下垂促进PDLSCs成骨分化。因此,我们的研究结果为理解FAM96B-FOSL1轴作为MSC介导的骨再生靶标提供了基础。
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来源期刊
Stem Cell Research & Therapy
Stem Cell Research & Therapy CELL BIOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
13.20
自引率
8.00%
发文量
525
审稿时长
1 months
期刊介绍: Stem Cell Research & Therapy serves as a leading platform for translational research in stem cell therapies. This international, peer-reviewed journal publishes high-quality open-access research articles, with a focus on basic, translational, and clinical research in stem cell therapeutics and regenerative therapies. Coverage includes animal models and clinical trials. Additionally, the journal offers reviews, viewpoints, commentaries, and reports.
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