EMD-15267
Complex of RecF-RecR-DNA from Thermus thermophilus.
EMD-15267
Single-particle3.05 Å
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Map released: 26/04/2023
Last modified: 24/07/2024
Sample Organism:
Thermus thermophilus HB8,
synthetic construct
Sample: Complex of RecF-RecR-DNA from Thermus thermophilus.
Fitted models: 8a93 (Avg. Q-score: 0.525)
Deposition Authors: Nirwal S
,
Czarnocki-Cieciura M
,
Chaudhary A
,
Zajko W
,
Skowronek K
,
Chamera S
,
Figiel M
,
Nowotny M
Sample: Complex of RecF-RecR-DNA from Thermus thermophilus.
Fitted models: 8a93 (Avg. Q-score: 0.525)
Deposition Authors: Nirwal S
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Mechanism of RecF-RecO-RecR cooperation in bacterial homologous recombination.
Nirwal S
,
Czarnocki-Cieciura M
,
Chaudhary A
,
Zajko W
,
Skowronek K
,
Chamera S
,
Figiel M
,
Nowotny M
(2023) Nat Struct Mol Biol , 30 , 650 - 660
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(2023) Nat Struct Mol Biol , 30 , 650 - 660
Abstract:
In bacteria, one type of homologous-recombination-based DNA-repair pathway involves RecFOR proteins that bind at the junction between single-stranded (ss) and double-stranded (ds) DNA. They facilitate the replacement of SSB protein, which initially covers ssDNA, with RecA, which mediates the search for homologous sequences. However, the molecular mechanism of RecFOR cooperation remains largely unknown. We used Thermus thermophilus proteins to study this system. Here, we present a cryo-electron microscopy structure of the RecF-dsDNA complex, and another reconstruction that shows how RecF interacts with two different regions of the tetrameric RecR ring. Lower-resolution reconstructions of the RecR-RecO subcomplex and the RecFOR-DNA assembly explain how RecO is positioned to interact with ssDNA and SSB, which is proposed to lock the complex on a ssDNA-dsDNA junction. Our results integrate the biochemical data available for the RecFOR system and provide a framework for its complete understanding.
In bacteria, one type of homologous-recombination-based DNA-repair pathway involves RecFOR proteins that bind at the junction between single-stranded (ss) and double-stranded (ds) DNA. They facilitate the replacement of SSB protein, which initially covers ssDNA, with RecA, which mediates the search for homologous sequences. However, the molecular mechanism of RecFOR cooperation remains largely unknown. We used Thermus thermophilus proteins to study this system. Here, we present a cryo-electron microscopy structure of the RecF-dsDNA complex, and another reconstruction that shows how RecF interacts with two different regions of the tetrameric RecR ring. Lower-resolution reconstructions of the RecR-RecO subcomplex and the RecFOR-DNA assembly explain how RecO is positioned to interact with ssDNA and SSB, which is proposed to lock the complex on a ssDNA-dsDNA junction. Our results integrate the biochemical data available for the RecFOR system and provide a framework for its complete understanding.