Mammalian MutY Homolog (MYH or MUTYH) is Critical for Telomere Integrity under Oxidative Stress.

Aditi Gupta, Bor-Jang Hwang, Daniel Benyamien-Roufaeil, Sara Jain, Sophie Liu, Rex Gonzales, Robert A Brown, Michal Zalzman, A-Lien Lu
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Abstract

Telomeres consist of special features and proteins to protect the ends of each chromosome from deterioration and fusion. The telomeric DNA repeats are highly susceptible to oxidative damage that can accelerate telomere shortening and affect telomere integrity. Several DNA repair factors including MYH/MUTYH DNA glycosylase, its interacting partners Rad9/Rad1/Hus1 checkpoint clamp, and SIRT6 aging regulator, are associated with the telomeres. MYH prevents C:G to A:T mutation by removing adenine mispaired with a frequent oxidative DNA lesion, 8-oxoguanine. Here, we show that hMYH knockout (KO) human HEK-293T cells are more sensitive to H2O2 treatment, have higher levels of DNA strand breaks and shorter telomeres than the control hMYH +/+ cells. SIRT6 foci increase at both the global genome and at telomeric regions in H2O2-treated hMYH +/+ cells. However, in untreated hMYH KO HEK-293T cells, SIRT6 foci only increase at the global genome, but not at the telomeric regions. In addition, the hMYH KO HEK-293T cells have increased extra-chromosomal and intra-chromosomal telomeres compared to the control cells, even in the absence of H2O2 treatment. After H2O2 treatment, the frequency of extra-chromosomal telomeres increased in control HEK-293T cells. Remarkably, in H2O2-treated hMYH KO cells, the frequencies of extra-chromosomal telomeres, intra-chromosomal telomeres, and telomere fusions are further increased. We further found that the sensitivity to H2O2 and shortened telomeres of hMYH KO cells, are restored by expressing wild-type hMYH, and partially rescued by expressing hMYHQ324H mutant (defective in Hus1 interaction only), but not by expressing hMYHV315A mutant (defective in both SIRT6 and Hus1 interactions). Thus, MYH interactions with SIRT6 and Hus1 are critical for maintaining cell viability and telomeric stability. Therefore, the failure to coordinate 8-oxoG repair is detrimental to telomere integrity.

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哺乳动物MutY同源物(MYH或MUTYH)对氧化应激下端粒完整性至关重要。
端粒由特殊的特征和蛋白质组成,以保护每条染色体的末端免受退化和融合。端粒DNA重复是高度敏感的氧化损伤,可以加速端粒缩短和影响端粒完整性。一些DNA修复因子,包括MYH/MUTYH DNA糖基化酶,它的相互作用伙伴Rad9/Rad1/Hus1检查点钳和SIRT6衰老调节因子,与端粒有关。MYH通过去除与常见的氧化DNA损伤错配的腺嘌呤(8-氧鸟嘌呤)来防止C:G到A:T突变。在这里,我们发现hMYH敲除(KO)的人HEK-293T细胞对H2O2处理更敏感,DNA链断裂水平更高,端粒比对照hMYH +/+细胞更短。在h2o2处理的hMYH +/+细胞中,SIRT6病灶在全球基因组和端粒区域均有所增加。然而,在未经治疗的hMYH KO HEK-293T细胞中,SIRT6病灶仅在全球基因组增加,而在端粒区域没有增加。此外,即使在没有H2O2处理的情况下,hMYH KO HEK-293T细胞也比对照细胞增加了染色体外和染色体内端粒。H2O2处理后,对照组HEK-293T细胞染色体外端粒频率增加。值得注意的是,在h2o2处理的hMYH KO细胞中,染色体外端粒、染色体内端粒和端粒融合的频率进一步增加。我们进一步发现,hMYH KO细胞对H2O2的敏感性和端粒缩短可以通过表达野生型hMYH来恢复,并通过表达hMYHQ324H突变体(仅在Hus1相互作用中存在缺陷)来部分恢复,但不能通过表达hMYHV315A突变体(在SIRT6和Hus1相互作用中都存在缺陷)来恢复。因此,MYH与SIRT6和Hus1的相互作用对于维持细胞活力和端粒稳定性至关重要。因此,协调8-oxoG修复的失败不利于端粒的完整性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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