小鼠Ets1基因的内部和上游序列在B细胞中驱动高水平表达,但不足以在T细胞中一致表达。

IF 2.6 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
PLoS ONE Pub Date : 2025-03-07 eCollection Date: 2025-01-01 DOI:10.1371/journal.pone.0308896
Alyssa Kearly, Prontip Saelee, Jonathan Bard, Satrajit Sinha, Anne Satterthwaite, Lee Ann Garrett-Sinha
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引用次数: 0

摘要

转录因子Ets1在静止的B细胞和T细胞中水平较高,但通过抗原受体和toll样受体(TLRs)信号传导下调。小鼠中Ets1的缺失导致免疫细胞过度激活和自身免疫性综合征的发展,并且在自身免疫性疾病背景下,在人类PBMCs中观察到Ets1表达减少。在B细胞中,Ets1起到防止过早激活和分化为抗体分泌细胞的作用。鉴于Ets1在免疫应答中的这些重要作用,严格控制Ets1基因表达水平是维持体内平衡所必需的。然而,控制Ets1基因表达的遗传调控元件仍然相对未知。在这里,我们在B细胞的染色质中发现了一个拓扑相关结构域(TAD),其中包括小鼠Ets1基因位点,并描述了一个向上游延伸超过100 kb并进入基因体的相互作用中心。此外,我们编辑了表观遗传数据集,通过识别高DNA可及性和活性增强子组蛋白标记富集的区域,在相互作用中心找到几个假定的调控元件。利用报告基因构建,我们确定了该相互作用中心内的DNA序列足以指导转基因小鼠淋巴组织中报告基因的表达。进一步的分析表明,在小鼠B细胞中,报告基因构建驱动报告基因的忠实表达,但在T细胞中表达多样化,这表明在该区域之外存在T细胞调节元件。为了研究Ets1转录的下调如何与受刺激B细胞表观遗传景观的改变相关,我们在静息和bcr刺激的原代B细胞中进行了ATAC-seq,并鉴定了Ets1位点内部和上游的四个区域,这些区域经历了与Ets1基因表达相关的染色质可及性变化。有趣的是,使用荧光素酶构建的几个假定的Ets1调控元件的功能分析表明具有高度的功能冗余。综上所述,我们的研究揭示了一个复杂的调控元件和转录因子网络,协调了Ets1的B细胞特异性表达。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sequences within and upstream of the mouse Ets1 gene drive high level expression in B cells, but are not sufficient for consistent expression in T cells.

Sequences within and upstream of the mouse Ets1 gene drive high level expression in B cells, but are not sufficient for consistent expression in T cells.

Sequences within and upstream of the mouse Ets1 gene drive high level expression in B cells, but are not sufficient for consistent expression in T cells.

Sequences within and upstream of the mouse Ets1 gene drive high level expression in B cells, but are not sufficient for consistent expression in T cells.

The levels of transcription factor Ets1 are high in resting B and T cells, but are downregulated by signaling through antigen receptors and Toll-like receptors (TLRs). Loss of Ets1 in mice leads to excessive immune cell activation and development of an autoimmune syndrome and reduced Ets1 expression has been observed in human PBMCs in the context of autoimmune diseases. In B cells, Ets1 serves to prevent premature activation and differentiation to antibody-secreting cells. Given these important roles for Ets1 in the immune response, stringent control of Ets1 gene expression levels is required for homeostasis. However, the genetic regulatory elements that control expression of the Ets1 gene remain relatively unknown. Here we identify a topologically-associating domain (TAD) in the chromatin of B cells that includes the mouse Ets1 gene locus and describe an interaction hub that extends over 100 kb upstream and into the gene body. Additionally, we compile epigenetic datasets to find several putative regulatory elements within the interaction hub by identifying regions of high DNA accessibility and enrichment of active enhancer histone marks. Using reporter constructs, we determine that DNA sequences within this interaction hub are sufficient to direct reporter gene expression in lymphoid tissues of transgenic mice. Further analysis indicates that the reporter construct drives faithful expression of the reporter gene in mouse B cells, but variegated expression in T cells, suggesting the existence of T cell regulatory elements outside this region. To investigate how the downregulation of Ets1 transcription is associated with alterations in the epigenetic landscape of stimulated B cells, we performed ATAC-seq in resting and BCR-stimulated primary B cells and identified four regions within and upstream of the Ets1 locus that undergo changes in chromatin accessibility that correlate to Ets1 gene expression. Interestingly, functional analysis of several putative Ets1 regulatory elements using luciferase constructs suggested a high level of functional redundancy. Taken together our studies reveal a complex network of regulatory elements and transcription factors that coordinate the B cell-specific expression of Ets1.

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来源期刊
PLoS ONE
PLoS ONE 生物-生物学
CiteScore
6.20
自引率
5.40%
发文量
14242
审稿时长
3.7 months
期刊介绍: PLOS ONE is an international, peer-reviewed, open-access, online publication. PLOS ONE welcomes reports on primary research from any scientific discipline. It provides: * Open-access—freely accessible online, authors retain copyright * Fast publication times * Peer review by expert, practicing researchers * Post-publication tools to indicate quality and impact * Community-based dialogue on articles * Worldwide media coverage
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