Werner syndrome RECQ helicase participates in and directs maintenance of the protein complexes of constitutive heterochromatin in proliferating human cells.

IF 3.9 3区 医学 Q2 CELL BIOLOGY Aging-Us Pub Date : 2024-10-17 DOI:10.18632/aging.206132
Pavlo Lazarchuk, Matthew Manh Nguyen, Crina M Curca, Maria N Pavlova, Junko Oshima, Julia M Sidorova
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Abstract

Werner syndrome of premature aging is caused by mutations in the WRN RECQ helicase/exonuclease, which functions in DNA replication, repair, transcription, and telomere maintenance. How the loss of WRN accelerates aging is not understood in full. Here we show that WRN is necessary for optimal constitutive heterochromatin levels in proliferating human fibroblasts. Locally, WRN deficiency derepresses SATII pericentromeric satellite repeats but does not reduce replication fork progression on SATII repeats. Globally, WRN loss reduces a subset of protein-protein interactions responsible for the organization of constitutive heterochromatin in the nucleus, namely, the interactions involving Lamin B1 and Lamin B receptor, LBR. Both the mRNA level and subcellular distribution of LBR are affected by WRN deficiency, and unlike the former, the latter phenotype does not require WRN catalytic activities. The phenotypes of heterochromatin disruption seen in WRN-deficient proliferating fibroblasts are also observed in WRN-proficient fibroblasts undergoing replicative or oncogene-induced senescence. WRN interacts with histone deacetylase 2, HDAC2; WRN/HDAC2 association is mediated by heterochromatin protein alpha, HP1α, and WRN complexes with HP1α and HDAC2 are downregulated in senescing cells. The data suggest that the effect of WRN loss on heterochromatin is separable from senescence program, but mimics at least some of the heterochromatin changes associated with it.

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Werner 综合征 RECQ 螺旋酶参与并指导增殖的人类细胞中构成异染色质的蛋白质复合物的维持。
Werner 早衰综合征是由 WRN RECQ 螺旋酶/核酸外切酶的突变引起的,该酶在 DNA 复制、修复、转录和端粒维护方面发挥着作用。目前还不完全清楚 WRN 的缺失是如何加速衰老的。在这里,我们发现在增殖的人类成纤维细胞中,WRN 是达到最佳组成型异染色质水平所必需的。从局部来看,WRN的缺乏会抑制SATII周室卫星重复序列,但不会减少SATII重复序列上的复制叉进程。从整体上看,WRN缺失会减少构成细胞核异染色质的蛋白质-蛋白质相互作用的一个子集,即涉及Lamin B1和Lamin B受体(LBR)的相互作用。LBR 的 mRNA 水平和亚细胞分布都受到 WRN 缺乏的影响,与前者不同的是,后者的表型不需要 WRN 的催化活性。在WRN缺陷的增殖成纤维细胞中出现的异染色质破坏表型,在WRN缺陷的成纤维细胞中也能观察到,这些成纤维细胞正在经历复制衰老或癌基因诱导的衰老。WRN与组蛋白去乙酰化酶2(HDAC2)相互作用;WRN/HDAC2的结合由异染色质蛋白α(HP1α)介导,衰老细胞中WRN与HP1α和HDAC2的复合物下调。这些数据表明,WRN缺失对异染色质的影响可与衰老程序分开,但至少模拟了与衰老程序相关的一些异染色质变化。
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来源期刊
Aging-Us
Aging-Us CELL BIOLOGY-
CiteScore
10.00
自引率
0.00%
发文量
595
审稿时长
6-12 weeks
期刊介绍: Information not localized
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