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评估FA通路中BACH1与BRCA1之间的联系。

Assessing the link between BACH1 and BRCA1 in the FA pathway.

作者信息

Cantor Sharon B, Andreassen Paul R

机构信息

Department of Cancer Biology, University of Massachusetts Medical School, Women's Cancers Program, UMASS Memorial Cancer Center, Worcester, Massachusetts 01605, USA.

出版信息

Cell Cycle. 2006 Jan;5(2):164-7. doi: 10.4161/cc.5.2.2338. Epub 2006 Jan 16.

Abstract

The BACH1 helicase was initially identified by its direct binding to BRCA1 and, thus, was linked to hereditary breast cancer. More recently, BACH1 was identified as the gene defective in the J complementation group of Fanconi anemia (FA). FA is a multigenetic disorder characterized by cellular sensitivity to crosslinkers and chromosome instability. Because FANCD2 monoubiquitination is intact in BACH1 deficient cells, BACH1 appears to act downstream in the FA pathway akin to BRCA2/FANCD1. Interestingly, while BRCA1 has various interactions with FA proteins it has not been identified as an FA gene. As the race to uncover the last few unknown FA complementation groups comes to an end, future work will be required to uncover how these gene products function to combat the effects of DNA damage and maintain genomic stability. In particular, it remains elusive whether BRCA1 is functionally linked to the FA pathway through its interaction with BACH1/FANCJ. This review focuses on a model for the connection of BRCA1 to BACH1 in the FA pathway. We predict that BRCA1 regulates the BACH1 helicase activity to coordinate the timely displacement of Rad51 from nucleofilaments, promoting error free repair and ultimately maintaining chromosomal integrity.

摘要

BACH1解旋酶最初是因其与BRCA1的直接结合而被鉴定出来的,因此与遗传性乳腺癌有关。最近,BACH1被确定为范可尼贫血(FA)的J互补组中的缺陷基因。FA是一种多基因疾病,其特征是细胞对交联剂敏感且染色体不稳定。由于在BACH1缺陷细胞中FANCD2单泛素化是完整的,BACH1似乎在FA途径中类似于BRCA2/FANCD1在下游发挥作用。有趣的是,虽然BRCA1与FA蛋白有多种相互作用,但它尚未被鉴定为FA基因。随着揭示最后几个未知FA互补组的竞赛接近尾声,未来需要开展工作来揭示这些基因产物如何发挥作用以对抗DNA损伤的影响并维持基因组稳定性。特别是,BRCA1是否通过其与BACH1/FANCJ的相互作用在功能上与FA途径相关联仍不清楚。本综述重点关注FA途径中BRCA1与BACH1之间联系的一种模型。我们预测BRCA1调节BACH1解旋酶活性,以协调Rad51从核丝上的及时移位,促进无差错修复并最终维持染色体完整性。

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