A transcription‐independent mechanism determines rapid periodic fluctuations of BRCA1 expression

Author:

Nie Chen1,Zhou Xiao Albert1,Zhou Jiadong1,Liu Zelin2ORCID,Gu Yangyang1ORCID,Liu Wanchang1,Zhan Jun3,Li Shiwei1,Xiong Yundong1,Zhou Mei1,Shen Qinjian1,Wang Weibin1,Yang Ence2ORCID,Wang Jiadong1ORCID

Affiliation:

1. Department of Radiation Medicine, School of Basic Medical Sciences, Peking University International Cancer Institute, Beijing Key Laboratory of Tumor Systems Biology Peking University Health Science Center Beijing China

2. Department of Medical Bioinformatics, Institute of Systems Biomedicine, School of Basic Medical Sciences Peking University Health Science Center Beijing China

3. Department of Anatomy, Histology and Embryology, School of Basic Medical Sciences Peking University Health Science Center Beijing China

Abstract

AbstractBRCA1 expression is highly regulated to prevent genomic instability and tumorigenesis. Dysregulation of BRCA1 expression correlates closely with sporadic basal‐like breast cancer and ovarian cancer. The most significant characteristic of BRCA1 regulation is periodic expression fluctuation throughout the cell cycle, which is important for the orderly progression of different DNA repair pathways throughout the various cell cycle phases and for further genomic stability. However, the underlying mechanism driving this phenomenon is poorly understood. Here, we demonstrate that RBM10‐mediated RNA alternative splicing coupled to nonsense‐mediated mRNA decay (AS‐NMD), rather than transcription, determines the periodic fluctuations in G1/S‐phase BRCA1 expression. Furthermore, AS‐NMD broadly regulates the expression of period genes, such as DNA replication‐related genes, in an uneconomical but more rapid manner. In summary, we identified an unexpected posttranscriptional mechanism distinct from canonical processes that mediates the rapid regulation of BRCA1 as well as other period gene expression during the G1/S‐phase transition and provided insights into potential targets for cancer therapy.

Funder

National Natural Science Foundation of China

Publisher

Springer Science and Business Media LLC

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,Molecular Biology,General Neuroscience

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