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SALL1通过与RUNX2相互作用来重塑开放染色质区域,从而调控成牙本质细胞谱系的定向分化。

SALL1 regulates commitment of odontoblast lineages by interacting with RUNX2 to remodel open chromatin regions.

作者信息

Lin Yuxiu, Xiao Yao, Lin ChuJiao, Zhang Qian, Zhang Shu, Pei Fei, Liu Huan, Chen Zhi

机构信息

State Key Laboratory Breeding Base of Basic Science of Stomatology (Hubei-MOST) and Key Laboratory for Oral Biomedicine of Ministry of Education (KLOBM), School and Hospital of Stomatology, Wuhan University, Wuhan, People's Republic of China.

Department of Periodontology, School and Hospital of Stomatology, Wuhan University, Wuhan, People's Republic of China.

出版信息

Stem Cells. 2021 Feb;39(2):196-209. doi: 10.1002/stem.3298. Epub 2020 Nov 11.

Abstract

Mouse dental papilla cells (mDPCs) derive from cranial neural crest cells and maintain mesenchymal stem cell characteristics. The differentiation of neural crest cells into odontoblasts is orchestrated by transcription factors regulating the expression of genes whose enhancers are initially inaccessible. However, the identity of the transcription factors driving the emergence of odontoblast lineages remains elusive. In this study, we identified SALL1, a transcription factor that was particularly expressed in preodontoblasts, polarizing odontoblasts, and secretory odontoblasts in vivo. Knockdown of Sall1 in mDPCs inhibited their odontoblastic differentiation. In order to identify the regulatory network of Sall1, RNA sequencing and an assay for transposase-accessible chromatin with high-throughput sequencing were performed to analyze the genome-wide direct regulatory targets of SALL1. We found that inhibition of Sall1 expression could decrease the accessibility of some chromatin regions associated with odontoblast lineages at embryonic day 16.5, whereas these regions remained unaffected at postnatal day 0.5, suggesting that SALL1 regulates the fate of mDPCs by remodeling open chromatin regions at the early bell stage. Specifically, we found that SALL1 could directly increase the accessibility of cis-regulatory elements near Tgf-β2 and within the Runx2 locus. Moreover, coimmunoprecipitation and proximal ligation assays showed that SALL1 could establish functional interactions with RUNX2. Taken together, our results demonstrated that SALL1 positively regulates the commitment of odontoblast lineages by interacting with RUNX2 and directly activating Tgf-β2 at an early stage.

摘要

小鼠牙乳头细胞(mDPCs)起源于颅神经嵴细胞,并保持间充质干细胞特性。神经嵴细胞向成牙本质细胞的分化由转录因子调控,这些转录因子调节其增强子最初不可及的基因的表达。然而,驱动成牙本质细胞谱系出现的转录因子的身份仍然难以捉摸。在本研究中,我们鉴定出SALL1,一种在体内前成牙本质细胞、极化的成牙本质细胞和分泌型成牙本质细胞中特异性表达的转录因子。在mDPCs中敲低Sall1会抑制它们向成牙本质细胞的分化。为了鉴定Sall1的调控网络,我们进行了RNA测序和转座酶可及染色质高通量测序分析,以分析SALL1在全基因组范围内的直接调控靶点。我们发现,抑制Sall1表达会降低胚胎第16.5天与成牙本质细胞谱系相关的一些染色质区域的可及性,而在出生后第0.5天这些区域不受影响,这表明SALL1通过在早期钟状期重塑开放染色质区域来调节mDPCs的命运。具体而言,我们发现SALL1可以直接增加Tgf-β2附近和顺式调控元件在Runx2基因座内的可及性。此外,免疫共沉淀和邻近连接分析表明,SALL1可以与RUNX2建立功能相互作用。综上所述,我们的结果表明,SALL1通过与RUNX2相互作用并在早期直接激活Tgf-β2,正向调节成牙本质细胞谱系的定向分化。

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