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Biology subjects

Moores, A. N.

Publications and source records attributed to Moores, A. N..

2 recordsLinked to original sources

Single-molecule imaging of DNA repair and cytoplasmic rigidification in intracellular bacteria

DNA damage is an important component of the antibacterial response of phagocytes, but which DNA repair mechanisms are active in intracellular bacteria remains unclear. We developed a live-cell single-molecule tracking approach to directly measure DNA repair activity in Escherichia coli within macrophages. Phagocytosis activates bacterial base excision and nucleotide excision repair pathways and increases DNA mismatch repair foci indicative of DNA replication errors. Phagocyte-generated stresses also cause a general slowdown in protein diffusion within bacteria, consistent with a transition of the cytoplasm towards a glass-like state, which is associated with reduced metabolic activity. At the single-cell level, DNA repair activity is highly heterogeneous, with metabolically inactive bacteria showing the greatest engagement of repair proteins. Together, these findings reveal how distinct DNA repair pathways are deployed during macrophage infection and link repair activity to the metabolic and biophysical states of individual intracellular bacteria.

microbiology↗

Replication-coupled search positions MutH for strand incision in DNA mismatch repair

DNA mismatch repair (MMR) safeguards genome stability by correcting replication errors, yet how its components coordinate as an efficient pathway in living cells remains unclear. In Escherichia coli, MutS and MutL detect mismatches and must rapidly activate MutH to incise the nascent DNA strand at distantly located GATC sites. Here, we used live-cell single-molecule tracking to resolve the target-search dynamics of MMR proteins in vivo. We find that MutH binds DNA at hemimethylated GATC sites independently of mismatch recognition and without MutS or MutL. The autonomous recruitment of MutH is facilitated by a switch from fast diffusion to a slow-search mode near DNA replication forks. This guidance allows MutH to transiently occupy potential incision sites in the wake of replication forks, awaiting activation by MutS-MutL. The parallelised search mechanism of MMR proteins facilitates rapid and targeted repair of replication errors in cells.

molecular biology↗