肉瘤相关神经退行性疾病融合DNA修复缺陷的新机制:DNA修复治疗的阶段?

Journal of Experimental Neuroscience Pub Date : 2019-06-10 eCollection Date: 2019-01-01 DOI:10.1177/1179069519856358
Haibo Wang, Muralidhar L Hegde
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引用次数: 22

摘要

基因组损伤和DNA修复缺陷在病因学上与几种神经退行性疾病有关,包括融合肉瘤(FUS)相关肌萎缩性侧索硬化症(ALS)。然而,潜在的机制仍然是谜,这是开发基因组修复靶向治疗的障碍。我们最近的研究发现家族性ALS患者的RNA/DNA结合蛋白FUS突变导致DNA缺口连接和氧化损伤修复缺陷。在健康的神经元中,FUS通过促进parp1依赖的XRCC1/DNA连接酶IIIα (LigIII)募集到氧化的基因组位点并通过直接相互作用激活LigIII来保护基因组。这是修复氧化性基因组损伤的关键一步,氧化性基因组损伤是有丝分裂后神经元由于其高氧消耗而面临的首要挑战。我们发现突变型FUS显著抑制XRCC1/LigIII对DNA链断裂的募集,导致DNA氧化损伤修复过程中的DNA连接缺陷,从而导致神经退行性变。虽然FUS功能丧失是修复缺陷的原因,但突变的FUS聚集导致的氧化性基因组损伤增加可能会加剧这一现象。我们强调这些关于先前描述的与fus相关的神经变性相关的DNA修复缺陷的新分子见解如何为探索基于DNA修复的治疗途径提供重要机会。
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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New Mechanisms of DNA Repair Defects in Fused in Sarcoma-Associated Neurodegeneration: Stage Set for DNA Repair-Based Therapeutics?

Genome damage and defective DNA repair are etiologically linked to several neurodegenerative disorders, including fused in sarcoma (FUS)-associated amyotrophic lateral sclerosis (ALS). However, the underlying mechanisms remain enigmatic, which is a roadblock for exploiting genome repair-targeted therapies. Our recent studies identified defects in DNA nick ligation and oxidative damage repair caused by mutations in the RNA/DNA-binding protein FUS in familial ALS patients. In healthy neurons, FUS protects the genome by facilitating PARP1-dependent recruitment of XRCC1/DNA Ligase IIIα (LigIII) to oxidized genome sites and activating LigIII via direct interaction. This is a critical step in the repair of oxidative genome damage, a foremost challenge for postmitotic neurons due to their high oxygen consumption. We discovered that mutant FUS significantly inhibited the recruitment of XRCC1/LigIII to DNA strand breaks, causing defects in DNA ligation during the repair of oxidative DNA damage, which contributed to neurodegeneration. While the FUS loss of function was responsible for the repair defects, increased oxidative genome damage due to mutant FUS aggregation could exacerbate the phenomenon. We highlight how these new molecular insights into previously undescribed DNA repair defect linked to FUS-associated neurodegeneration could provide an important opportunity for exploring DNA repair-based therapeutic avenues.

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