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9OYH

Structure of the E. coli clamp loader DnaX-complex loading beta-clamp onto 10-nt gapped DNA in state 1 the DNA recognition state

Summary for 9OYH
Entry DOI10.2210/pdb9oyh/pdb
EMDB information71021
DescriptorDNA polymerase III subunit delta, PHOSPHOTHIOPHOSPHORIC ACID-ADENYLATE ESTER, MAGNESIUM ION, ... (11 entities in total)
Functional Keywordsdna replication, dna damage repair, clamp loading complex, clamp beta, clamp loader dnax-complex, replication, replication-dna complex, replication/dna
Biological sourceEscherichia coli
More
Total number of polymer chains11
Total formula weight425828.95
Authors
Zheng, F.,Yao, Y.N.,Georgescu, R.,Lyu, M.,O'Donnell, M.E.,Li, H. (deposition date: 2025-06-04, release date: 2026-04-29, Last modification date: 2026-10-07)
Primary citationZheng, F.,Yao, N.Y.,Georgescu, R.E.,Lyu, M.,O'Donnell, M.E.,Li, H.
The E. coli DnaX clamp loader sharply bends DNA to load beta-clamp at nicks and small gaps.
Mol.Cell, 86:2055-2069.e10, 2026
Cited by
PubMed Abstract: DNA sliding clamps are essential for processive DNA synthesis in all domains of life and are loaded by ATP-dependent clamp loaders that recognize recessed 3' ends. How clamp loaders function at nicks and small single-stranded DNA (ssDNA) gaps-common DNA repair intermediates-remains unclear. Here, we show that the bacterial E. coli DnaX clamp loader uses a mechanism distinct from its eukaryotic counterpart. Whereas eukaryotic replication factor C (RFC) unwinds DNA at the recessed 3' end and stabilizes the 5'-dsDNA (double-stranded DNA) at a shoulder site, the bacterial DnaX-complex neither unwinds DNA nor stably binds the 5'-dsDNA in vitro. Instead, cryo-EM structures reveal that the β-clamp contains a conserved external DNA-binding site that bends gapped DNA by ∼150°, promoting insertion of 3'-dsDNA into the clamp. This DNA-bending mechanism enables efficient β-clamp loading at nicks and small gaps and reveals a distinct bacterial strategy likely important for DNA repair.
PubMed: 42140189
DOI: 10.1016/j.molcel.2026.04.020
PDB entries with the same primary citation
Experimental method
ELECTRON MICROSCOPY (2.54 Å)
Structure validation

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PDB entries from 2026-10-07

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