选择性多聚腺苷化调节因子CFIm25促进巨噬细胞分化并激活NF-κB通路。

IF 8.2 2区 生物学 Q1 CELL BIOLOGY
Srimoyee Mukherjee, Atish Barua, Luyang Wang, Bin Tian, Claire L Moore
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引用次数: 0

摘要

背景:巨噬细胞是发育和组织修复以及保护免受微生物攻击所必需的。为了响应外部信号,单核细胞分化为巨噬细胞,但我们对mRNA加工水平上促进这种转变的变化的了解,特别是mRNA聚腺苷化,如果要为新的疾病治疗提供信息,需要进一步发展。在这里,我们确定了CFIm25,一个有充分证据的多聚(a)位点选择调节剂,作为巨噬细胞分化的新介质。方法:分析CFIm25在人原代单核细胞和单核细胞系分化中的表达。通过过表达和缺失实验来评估CFIm25在分化、NF-κB信号传导和选择性多聚腺苷化(APA)中的作用。通过mRNA 3'端聚焦测序,鉴定巨噬细胞分化和功能相关基因poly(A)位点使用的变化。检测细胞周期标志物、NF-κB通路组分及其靶点。cim25在NF-κB信号传导中的作用通过化学抑制和敲低通路调节因子进一步评估。结果:CFIm25在巨噬细胞分化过程中显著升高,提示其促进了巨噬细胞分化。事实上,在分化过程中,CFIm25的过表达放大了巨噬细胞特征的获取,并导致细胞周期的早期减慢,这是这种转变的标志,同时伴随着apa介导的cyclin D1的下调。NF-κB信号通路在单核细胞向巨噬细胞的成熟过程中起主要作用,NF-κB信号通路的阳性调节因子null、TBL1XR1、NFKB1 mrna均发生3'UTR缩短,同时相应蛋白增加。CFIm25过表达还会升高NF-κB-p65转录激活因子的磷酸化水平,使NF-κB靶点p21、Bcl-XL、ICAM1和TNF-α的表达提前升高,并导致对NF-κB化学抑制的更强抗性。在cfim25过表达的细胞中,敲低表2和TBL1XR1会减弱这些作用,从而加强了cfim25调节的APA与NF-κB激活之间的机制联系。相反,CFIm25的缺失阻碍了分化并导致NFKB1、TAB2和TBL1XR1 3' utr的延长。结论:我们的研究表明,cim25是巨噬细胞分化的关键介质,通过协调控制细胞周期进程和NF-κB信号传导发挥作用。这种mRNA加工和免疫细胞功能的联系也扩大了我们对选择性聚腺苷酸化在调节细胞信号传导中的作用的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The alternative polyadenylation regulator CFIm25 promotes macrophage differentiation and activates the NF-κB pathway.

Background: Macrophages are required for development and tissue repair and protect against microbial attacks. In response to external signals, monocytes differentiate into macrophages, but our knowledge of changes that promote this transition at the level of mRNA processing, in particular mRNA polyadenylation, needs advancement if it is to inform new disease treatments. Here, we identify CFIm25, a well-documented regulator of poly(A) site choice, as a novel mediator of macrophage differentiation.

Methods: CFIm25 expression was analyzed in differentiating primary human monocytes and monocytic cell lines. Overexpression and depletion experiments were performed to assess CFIm25's role in differentiation, NF-κB signaling, and alternative polyadenylation (APA). mRNA 3' end-focused sequencing was conducted to identify changes in poly(A) site use of genes involved in macrophage differentiation and function. Cell cycle markers, NF-κB pathway components, and their targets were examined. The role of CFIm25 in NF-κB signaling was further evaluated through chemical inhibition and knockdown of pathway regulators.

Results: CFIm25 showed a striking increase upon macrophage differentiation, suggesting it promotes this process. Indeed, CFIm25 overexpression during differentiation amplified the acquisition of macrophage characteristics and caused an earlier slowing of the cell cycle, a hallmark of this transition, along with APA-mediated downregulation of cyclin D1. The NF-κB signaling pathway plays a major role in maturation of monocytes to macrophages, and the mRNAs of null, TBL1XR1, and NFKB1, all positive regulators of NF-κB signaling, underwent 3'UTR shortening, coupled with an increase in the corresponding proteins. CFIm25 overexpression also elevated phosphorylation of the NF-κB-p65 transcription activator, produced an earlier increase in the NF-κB targets p21, Bcl-XL, ICAM1 and TNF-α, and resulted in greater resistance to NF-κB chemical inhibition. Knockdown of Tables 2 and TBL1XR1 in CFIm25-overexpressing cells attenuated these effects, reinforcing the mechanistic link between CFIm25-regulated APA and NF-κB activation. Conversely, depletion of CFIm25 hindered differentiation and led to lengthening of NFKB1, TAB2, and TBL1XR1 3' UTRs.

Conclusions: Our study establishes CFIm25 as a key mediator of macrophage differentiation that operates through a coordinated control of cell cycle progression and NF-κB signaling. This linkage of mRNA processing and immune cell function also expands our understanding of the role of alternative polyadenylation in regulating cell signaling.

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来源期刊
CiteScore
11.00
自引率
0.00%
发文量
180
期刊介绍: Cell Communication and Signaling (CCS) is a peer-reviewed, open-access scientific journal that focuses on cellular signaling pathways in both normal and pathological conditions. It publishes original research, reviews, and commentaries, welcoming studies that utilize molecular, morphological, biochemical, structural, and cell biology approaches. CCS also encourages interdisciplinary work and innovative models, including in silico, in vitro, and in vivo approaches, to facilitate investigations of cell signaling pathways, networks, and behavior. Starting from January 2019, CCS is proud to announce its affiliation with the International Cell Death Society. The journal now encourages submissions covering all aspects of cell death, including apoptotic and non-apoptotic mechanisms, cell death in model systems, autophagy, clearance of dying cells, and the immunological and pathological consequences of dying cells in the tissue microenvironment.
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