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在 FSHD 肌细胞中,散发性 DUX4 表达与 PRC2 复合物的不完全抑制以及收缩的 D4Z4 等位基因上 H3K9 乙酰化的获得有关。

Sporadic DUX4 expression in FSHD myocytes is associated with incomplete repression by the PRC2 complex and gain of H3K9 acetylation on the contracted D4Z4 allele.

机构信息

Departments of Pediatrics and Genome Sciences, University of Washington, Seattle, WA, USA.

Department of Medicine, University of Washington, Seattle, WA, USA.

出版信息

Epigenetics Chromatin. 2018 Aug 20;11(1):47. doi: 10.1186/s13072-018-0215-z.

Abstract

BACKGROUND

Facioscapulohumeral muscular dystrophy 1 (FSHD1) has an autosomal dominant pattern of inheritance and primarily affects skeletal muscle. The genetic cause of FSHD1 is contraction of the D4Z4 macrosatellite array on chromosome 4 alleles associated with a permissive haplotype causing infrequent sporadic expression of the DUX4 gene. Epigenetically, the contracted D4Z4 array has decreased cytosine methylation and an open chromatin structure. Despite these genetic and epigenetic changes, the majority of FSHD myoblasts are able to repress DUX4 transcription. In this study we hypothesized that histone modifications distinguish DUX4 expressing and non-expressing cells from the same individuals.

RESULTS

FSHD myocytes containing the permissive 4qA haplotype with a long terminal D4Z4 unit were sorted into DUX4 expressing and non-expressing groups. We found similar CpG hypomethylation between the groups of FSHD-affected cells suggesting that CpG hypomethylation is not sufficient to trigger DUX4 expression. A survey of histone modifications present at the D4Z4 region during cell lineage commitment revealed that this region is bivalent in FSHD iPS cells with both H3K4me3 activating and H3K27me3 repressive marks present, making D4Z4 poised for DUX4 activation in pluripotent cells. After lineage commitment, the D4Z4 region becomes univalent with H3K27me3 in FSHD and non-FSHD control myoblasts and a concomitant increase in H3K4me3 in a small fraction of cells. Chromatin immunoprecipitation (ChIP) for histone modifications, chromatin modifier proteins and chromatin structural proteins on sorted FSHD myocytes revealed that activating H3K9Ac modifications were ~ fourfold higher in DUX4 expressing FSHD myocytes, while the repressive H3K27me3 modification was ~ fourfold higher at the permissive allele in DUX4 non-expressing FSHD myocytes from the same cultures. Similarly, we identified EZH2, a member of the polycomb repressive complex involved in H3K27 methylation, to be present more frequently on the permissive allele in DUX4 non-expressing FSHD myocytes.

CONCLUSIONS

These results implicate PRC2 as the complex primarily responsible for DUX4 repression in the setting of FSHD and H3K9 acetylation along with reciprocal loss of H3K27me3 as key epigenetic events that result in DUX4 expression. Future studies focused on events that trigger H3K9Ac or augment PRC2 complex activity in a small fraction of nuclei may expose additional drug targets worthy of study.

摘要

背景

面肩肱型肌营养不良症 1 型(FSHD1)呈常染色体显性遗传模式,主要影响骨骼肌。FSHD1 的遗传原因是 4 号染色体等位基因上的 D4Z4 大片段重复收缩,与允许的单倍型相关,导致 DUX4 基因的罕见散发性表达。表观遗传学上,收缩的 D4Z4 大片段表现为胞嘧啶去甲基化和开放染色质结构。尽管存在这些遗传和表观遗传变化,但大多数 FSHD 成肌细胞能够抑制 DUX4 转录。在这项研究中,我们假设组蛋白修饰可以区分来自同一个体的 DUX4 表达和非表达细胞。

结果

含有允许的 4qA 单倍型和长末端 D4Z4 单位的 FSHD 肌细胞被分为 DUX4 表达和非表达组。我们发现 FSHD 受累细胞组之间的 CpG 低甲基化相似,这表明 CpG 低甲基化不足以触发 DUX4 表达。在细胞谱系分化过程中对 D4Z4 区域存在的组蛋白修饰进行调查显示,FSHD iPS 细胞中的该区域呈双价状态,同时存在 H3K4me3 激活和 H3K27me3 抑制标记,使 D4Z4 在多能细胞中为 DUX4 激活做好准备。谱系分化后,FSHD 和非 FSHD 对照成肌细胞中的 D4Z4 区域变为单价,同时一小部分细胞中的 H3K4me3 增加。对分选的 FSHD 成肌细胞进行组蛋白修饰、染色质修饰蛋白和染色质结构蛋白的染色质免疫沉淀(ChIP)显示,在 DUX4 表达的 FSHD 成肌细胞中,激活的 H3K9Ac 修饰增加了约 4 倍,而在同一培养物中 DUX4 非表达的 FSHD 成肌细胞中,允许的等位基因上的抑制性 H3K27me3 修饰增加了约 4 倍。同样,我们发现参与 H3K27 甲基化的多梳抑制复合物(PRC2)成员 EZH2 更多地存在于 DUX4 非表达的 FSHD 成肌细胞的允许等位基因上。

结论

这些结果表明,PRC2 是 FSHD 中主要负责 DUX4 抑制的复合物,H3K9 乙酰化以及 H3K27me3 的相反缺失是导致 DUX4 表达的关键表观遗传事件。未来专注于触发 H3K9Ac 或增加一小部分核中 PRC2 复合物活性的研究可能会发现其他值得研究的药物靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4991/6100714/6b57726df8a6/13072_2018_215_Fig1_HTML.jpg

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