Structural investigation of pathogenic RFC1 AAGGG pentanucleotide repeats reveals a role of G-quadruplex in dysregulated gene expression in CANVAS

Author:

Wang Yang12,Wang Junyan2,Yan Zhenzhen3,Hou Jianing4,Wan Liqi2,Yang Yingquan3,Liu Yu2,Yi Jie2,Guo Pei2ORCID,Han Da24ORCID

Affiliation:

1. School of Materials Science and Engineering, Tianjin University , Tianjin  300350 , China

2. Zhejiang Cancer Hospital, Hangzhou Institute of Medicine (HIM), Chinese Academy of Sciences , Hangzhou , Zhejiang  310022 , China

3. School of Biology and Biological Engineering, South China University of Technology , Guangzhou , Guangdong  510006 , China

4. Institute of Molecular Medicine (IMM) Renji Hospital, School of Medicine, Shanghai Jiao Tong University , Shanghai  200127 , China

Abstract

Abstract An expansion of AAGGG pentanucleotide repeats in the replication factor C subunit 1 (RFC1) gene is the genetic cause of cerebellar ataxia, neuropathy, and vestibular areflexia syndrome (CANVAS), and it also links to several other neurodegenerative diseases including the Parkinson's disease. However, the pathogenic mechanism of RFC1 AAGGG repeat expansion remains enigmatic. Here, we report that the pathogenic RFC1 AAGGG repeats form DNA and RNA parallel G-quadruplex (G4) structures that play a role in impairing biological processes. We determine the first high-resolution nuclear magnetic resonance (NMR) structure of a bimolecular parallel G4 formed by d(AAGGG)2AA and reveal how AAGGG repeats fold into a higher-order structure composed of three G-tetrad layers, and further demonstrate the formation of intramolecular G4s in longer DNA and RNA repeats. The pathogenic AAGGG repeats, but not the nonpathogenic AAAAG repeats, form G4 structures to stall DNA replication and reduce gene expression via impairing the translation process in a repeat-length-dependent manner. Our results provide an unprecedented structural basis for understanding the pathogenic mechanism of AAGGG repeat expansion associated with CANVAS. In addition, the high-resolution structures resolved in this study will facilitate rational design of small-molecule ligands and helicases targeting G4s formed by AAGGG repeats for therapeutic interventions.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Zhejiang Provincial Jianbing Lingyan Research and Development Project

Publisher

Oxford University Press (OUP)

Subject

Genetics

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