Mutations in the insulator protein Suppressor of Hairy wing induce genome instability.

IF 2.5 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Chromosoma Pub Date : 2020-12-01 Epub Date: 2020-11-02 DOI:10.1007/s00412-020-00743-8
Shih-Jui Hsu, Emily C Stow, James R Simmons, Heather A Wallace, Andrea Mancheno Lopez, Shannon Stroud, Mariano Labrador
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引用次数: 5

Abstract

Insulator proteins orchestrate the three-dimensional organization of the genome. Insulators function by facilitating communications between regulatory sequences and gene promoters, allowing accurate gene transcription regulation during embryo development and cell differentiation. However, the role of insulator proteins beyond genome organization and transcription regulation remains unclear. Suppressor of Hairy wing [Su(Hw)] is a Drosophila insulator protein that plays an important function in female oogenesis. Here we find that su(Hw) has an unsuspected role in genome stability during cell differentiation. We show that su(Hw) mutant developing egg chambers have poorly formed microtubule organization centers (MTOCs) in the germarium and display mislocalization of the anterior/posterior axis specification factor gurken in later oogenesis stages. Additionally, eggshells from partially rescued su(Hw) mutant female germline exhibit dorsoventral patterning defects. These phenotypes are very similar to phenotypes found in the important class of spindle mutants or in piRNA pathway mutants in Drosophila, in which defects generally result from the failure of germ cells to repair DNA damage. Similarities between mutations in su(Hw) and spindle and piRNA mutants are further supported by an excess of DNA damage in nurse cells, and because Gurken localization defects are partially rescued by mutations in the ATR (mei-41) and Chk1 (grapes) DNA damage response genes. Finally, we also show that su(Hw) mutants produce an elevated number of chromosome breaks in dividing neuroblasts from larval brains. Together, these findings suggest that Su(Hw) is necessary for the maintenance of genome integrity during Drosophila development, in both germline and dividing somatic cells.

毛翅绝缘子蛋白抑制子突变诱导基因组不稳定。
绝缘体蛋白协调了基因组的三维组织。绝缘子的功能是促进调控序列和基因启动子之间的通信,从而在胚胎发育和细胞分化过程中实现准确的基因转录调控。然而,绝缘子蛋白在基因组组织和转录调控之外的作用仍不清楚。毛翅抑制蛋白(Suppressor of Hairy wing, Su(Hw))是果蝇的一种绝缘体蛋白,在雌性卵发生过程中起重要作用。在这里,我们发现在细胞分化过程中,su(Hw)在基因组稳定性中起着意想不到的作用。我们发现,su(Hw)突变体发育中的卵室在精子中形成不良的微管组织中心(MTOCs),并且在卵子发生后期显示出前/后轴规格因子的错误定位。此外,部分获救的su(Hw)突变雌性种系的蛋壳表现出背腹型缺陷。这些表型与果蝇中纺锤体突变的重要类别或piRNA通路突变中发现的表型非常相似,其中缺陷通常是由于生殖细胞修复DNA损伤的失败造成的。护理细胞中过量的DNA损伤进一步支持了su(Hw)、纺锤体和piRNA突变之间的相似性,因为Gurken定位缺陷部分被ATR (mei-41)和Chk1(葡萄)DNA损伤反应基因的突变所拯救。最后,我们还表明,su(Hw)突变体在从幼虫大脑分裂成神经母细胞时产生的染色体断裂数量增加。总之,这些发现表明Su(Hw)对于果蝇发育过程中基因组完整性的维持是必要的,无论是在种系细胞还是在分裂的体细胞中。
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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来源期刊
Chromosoma
Chromosoma 生物-生化与分子生物学
CiteScore
3.30
自引率
6.20%
发文量
17
审稿时长
1 months
期刊介绍: Chromosoma publishes research and review articles on the functional organization of the eukaryotic cell nucleus, with a particular emphasis on the structure and dynamics of chromatin and chromosomes; the expression and replication of genomes; genome organization and evolution; the segregation of genomes during meiosis and mitosis; the function and dynamics of subnuclear compartments; the nuclear envelope and nucleocytoplasmic interactions, and more. The scope of Chromosoma encompasses genetic, biophysical, molecular and cell biological studies. Average time from receipt of contributions to first decision: 22 days Publishes research and review articles on the functional organization of the eukaryotic cell nucleus Topics include structure and dynamics of chromatin and chromosomes; the expression and replication of genomes; genome organization and evolution; the segregation of genomes during meiosis and mitosis and more Encompasses genetic, biophysical, molecular and cell biological studies.
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