Přehled o publikaci
2023
Recognition and coacervation of G-quadruplexes by a multifunctional disordered region in RECQ4 helicase
PAPAGEORGIOU, Anna; Michaela POSPÍŠILOVÁ; Jakub CIBULKA; Raghib ASHRAF; Christopher WAUDBY et al.Basic information
Original name
Recognition and coacervation of G-quadruplexes by a multifunctional disordered region in RECQ4 helicase
Authors
PAPAGEORGIOU, Anna; Michaela POSPÍŠILOVÁ; Jakub CIBULKA; Raghib ASHRAF; Christopher WAUDBY; Pavel KADEŘÁVEK; Volha MAROZ; Karel KUBÍČEK; Zbyněk PROKOP; Lumír KREJČÍ and Konstantinos TRIPSIANES
Edition
Nature Communications, London, Nature Publishing Group, 2023, 2041-1723
Other information
Language
English
Type of outcome
Article in a journal
Country of publisher
Germany
Confidentiality degree
is not subject to a state or trade secret
References:
Marked to be transferred to RIV
Yes
RIV identification code
RIV/00216224:14740/23:00134740
Organization
Středoevropský technologický institut – Repository – Repository
UT WoS
EID Scopus
Keywords (in Czech)
Biomolekulární polyelektrolytové komplexy; DNA helikasa Q4; G-kvadruplexy; vnitřně neuspořádané regiony; RPA protein
Keywords in English
Biomolecular polyelectrolyte complexes; DNA helicase Q4; G-quadruplexes; intrinsically disordered regions; RPA protein
Links
EF17_043/0009632, research and development project. EF18_070/0009846, research and development project. GA23-06913S, research and development project. GX21-22593X, research and development project. MUNI/A/1393/2022, interní kód Repo. MUNI/G/1594/2019, interní kód Repo. 206292/E/17/Z, interní kód Repo. 857560, interní kód Repo. CIISB III, large research infrastructures.
Changed: 28/10/2024 00:50, RNDr. Daniel Jakubík
Abstract
In the original language
Biomolecular polyelectrolyte complexes can be formed between oppositely charged intrinsically disordered regions (IDRs) of proteins or between IDRs and nucleic acids. Highly charged IDRs are abundant in the nucleus, yet few have been functionally characterized. Here, we show that a positively charged IDR within the human ATP-dependent DNA helicase Q4 (RECQ4) forms coacervates with G-quadruplexes (G4s). We describe a three-step model of charge-driven coacervation by integrating equilibrium and kinetic binding data in a global numerical model. The oppositely charged IDR and G4 molecules form a complex in the solution that follows a rapid nucleation-growth mechanism leading to a dynamic equilibrium between dilute and condensed phases. We also discover a physical interaction with Replication Protein A (RPA) and demonstrate that the IDR can switch between the two extremes of the structural continuum of complexes. The structural, kinetic, and thermodynamic profile of its interactions revealed a dynamic disordered complex with nucleic acids and a static ordered complex with RPA protein. The two mutually exclusive binding modes suggest a regulatory role for the IDR in RECQ4 function by enabling molecular handoffs. Our study extends the functional repertoire of IDRs and demonstrates a role of polyelectrolyte complexes involved in G4 binding.