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Origin flexibility governs robust ssDNA engagement by the DnaA initiator.

Abstract

In model bacteria, initiation of chromosome replication requires engagement of single-stranded DNA by oligomers of the DnaA-family initiator assembled within the origin DNA. Although arrays of double-strand motifs recognized by DnaA are a general feature of the origins, the DnaA-binding single-strand elements are elucidated in only a limited number of species, and the mechanical principles governing their recognition remain elusive. Using the Alphaproteobacterium Caulobacter crescentus, we identify a previously uncharacterized GA-rich single-stranded element in the origin that directly engages DnaA oligomers and is essential for robust initiation. This element is positioned at a subkilobase distance from the DnaA oligomerization region and is brought into proximity through dynamic structural rearrangements. Moreover, DnaA oligomers exhibit an unexpectedly broad yet constrained capacity to accommodate single-stranded sequence variation. These findings provide the molecular basis for origin plasticity, highlighting how origins can diverge while preserving initiation logic.

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Nanato Kiyohara, Yasutaka Wakasugi, Kohei Ihara, Ayaka Kubaru, Sena Maruki, Naho Kojima, Sachiko Yoshitomi, Tsutomu Katayama, Shogo Ozaki. 2026-09-15. Origin flexibility governs robust ssDNA engagement by the DnaA initiator.. https://doi.org/10.1073/pnas.2615469123

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