Identification of G-quadruplex-interacting proteins in living cells using an artificial G4-targeting biotin ligase

Author:

Lu Ziang1ORCID,Xie Shengjie1,Su Haomiao2,Han Shaoqing1,Huang Haiyan1ORCID,Zhou Xiang13ORCID

Affiliation:

1. College of Chemistry and Molecular Sciences, Wuhan University , Wuhan , Hubei  430072 , P.R. China

2. Department of Chemistry, Yale University, 600 West Campus Drive West Haven , West Haven , CT  06516 , USA

3. Department of Hematology of Zhongnan Hospital, Taikang Center for Life and Medical Sciences, Wuhan University , Wuhan , Hubei  430072 , P.R. China

Abstract

Abstract G-quadruplexes (G4s) are noncanonical nucleic acid structures pivotal to cellular processes and disease pathways. Deciphering G4-interacting proteins is imperative for unraveling G4’s biological significance. In this study, we developed a G4-targeting biotin ligase named G4PID, meticulously assessing its binding affinity and specificity both in vitro and in vivo. Capitalizing on G4PID, we devised a tailored approach termed G-quadruplex-interacting proteins specific biotin-ligation procedure (PLGPB) to precisely profile G4-interacting proteins. Implementing this innovative strategy in live cells, we unveiled a cohort of 149 potential G4-interacting proteins, which exhibiting multifaceted functionalities. We then substantiate the directly binding affinity of 7 candidate G4-interacting-proteins (SF3B4, FBL, PP1G, BCL7C, NDUV1, ILF3, GAR1) in vitro. Remarkably, we verified that splicing factor 3B subunit 4 (SF3B4) binds preferentially to the G4-rich 3′ splice site and the corresponding splicing sites are modulated by the G4 stabilizer PDS, indicating the regulating role of G4s in mRNA splicing procedure. The PLGPB strategy could biotinylate multiple proteins simultaneously, which providing an opportunity to map G4-interacting proteins network in living cells.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Oxford University Press (OUP)

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