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ZNF143 是染色质环的调节因子。

ZNF143 is a regulator of chromatin loop.

机构信息

Hubei Key Laboratory of Agricultural Bioinformatics, College of Informatics, Huazhong Agricultural University, Wuhan, 430070, China.

College of Life Sciences, Hebei Normal University, Shijiazhuang, 050024, China.

出版信息

Cell Biol Toxicol. 2018 Dec;34(6):471-478. doi: 10.1007/s10565-018-9443-z. Epub 2018 Aug 17.

Abstract

It is known that transcription factor ZNF143 frequently co-binds with CTCF-Cohesin complex in the anchor regions of chromatin loops. However, there is currently no genome-wide experiment to explore the functional roles of ZNF143 in chromatin loops. In this work, we used both computational and experimental analyses to investigate the regulatory effect of ZNF143 on chromatin loops. By jointly analyzing the ZNF143 and CTCF motifs underlying the isolated ZNF143-binding sites, ZNF143-CTCF co-binding sites and ZNF143-CTCF-RAD21 co-binding sites, our result shows that the ZNF143-CTCF-RAD21 co-binding sites are enriched with CTCF motifs but depleted of Znf143 motifs, implying that the CTCF but not ZNF143 may directly binds to the genome and thus ZNF143 may act as a cofactor instead of pioneer factor of ZNF143-CTCF-Cohesin complex. To explore the regulatory effect of ZNF143 on chromatin loops, we conducted siRNA experiment to knock down the expression level of ZNF143 in HEK293T cell line, and then performed in situ Hi-C on the negative control and ZNF143-silenced HEK293T cells. Comparison shows that the majority of chromatin loops are lost or at least weakened in the ZNF143-silenced HEK293T cells. However, a small proportion of chromatin loops are gained or strengthened, indicating the complicated roles of ZNF143 reduction in regulating chromatin loops. To further validate the loop analyses, we thoroughly investigated the chromatin loop changes between negative control and ZNF143-silenced cells by using aggregate peak analysis. The calculation shows that the lost and gained chromatin loops do undergo loop strength changes after ZNF143 silencing. Altogether, our work shows that ZNF143 can regulate chromatin loops by acting as a cofactor of CTCF-Cohesin complex, and knocking down ZNF143 expression level mainly eliminates or destabilizes chromatin loops.

摘要

已知转录因子 ZNF143 经常与 CTCF-Cohesin 复合物在染色质环的锚定区域共同结合。然而,目前还没有全基因组实验来探索 ZNF143 在染色质环中的功能作用。在这项工作中,我们使用计算和实验分析来研究 ZNF143 对染色质环的调节作用。通过联合分析孤立的 ZNF143 结合位点、ZNF143-CTCF 共结合位点和 ZNF143-CTCF-RAD21 共结合位点下的 ZNF143 和 CTCF 基序,我们的结果表明,ZNF143-CTCF-RAD21 共结合位点富含 CTCF 基序,但缺乏 Znf143 基序,这意味着 CTCF 而不是 ZNF143 可能直接结合基因组,因此 ZNF143 可能作为辅因子而不是 ZNF143-CTCF-Cohesin 复合物的先驱因子发挥作用。为了探索 ZNF143 对染色质环的调节作用,我们在 HEK293T 细胞系中用 siRNA 实验敲低 ZNF143 的表达水平,然后在阴性对照和 ZNF143 沉默的 HEK293T 细胞上进行原位 Hi-C。比较表明,在 ZNF143 沉默的 HEK293T 细胞中,大多数染色质环丢失或至少减弱。然而,一小部分染色质环获得或增强,表明 ZNF143 减少在调节染色质环中的作用复杂。为了进一步验证环分析,我们通过聚合峰分析彻底研究了阴性对照和 ZNF143 沉默细胞之间的染色质环变化。计算表明,在 ZNF143 沉默后,丢失和获得的染色质环确实经历了环强度的变化。总之,我们的工作表明,ZNF143 可以作为 CTCF-Cohesin 复合物的辅因子调节染色质环,敲低 ZNF143 表达水平主要消除或破坏染色质环。

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