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Biology subjects

Jones, N. D.

Publications and source records attributed to Jones, N. D..

2 recordsLinked to original sources

The mouse mammary tumor virus intasome exhibits distinct dynamics on target DNA

Retroviral intasomes are complexes assembled from purified integrase (IN) and oligonucleotides mimicking viral DNA ends (vDNA). Recombinant intasomes faithfully recapitulate integration of vDNA into a target DNA. Structural studies of retroviral intasomes have revealed an array of IN oligomer forms, which appear to share a conserved intasome core coordinating the vDNA ends for strand transfer into the target DNA. Here we have explored the biochemical and dynamic properties of the mouse mammary tumor virus (MMTV) octameric intasome. We show that the MMTV intasome is remarkably stable compared to the prototype foamy virus (PFV) tetrameric intasome. MMTV integration activity peaks within the range of physiological ionic strength and is more active in the presence of manganese compared to magnesium. Single-molecule images demonstrate that the target DNA search by MMTV intasomes appears rate-limiting, similar to PFV intasomes. The time between strand transfer of the two MMTV vDNA ends into the target DNA is [~]3 fold slower than PFV intasomes. MMTV intasomes can form extremely stable, largely immobile filaments on a target DNA that are comprised of multiple intasomes. This unusual property suggests that MMTV intasomes may readily form higher order oligomers that might underpin their increased stability.

biochemistry↗

The Formation of a Stable Sliding Clamp Discriminates MSH2-MSH3 and MSH2-MSH6 Mismatch Interaction

MutS homologs (MSH) are highly conserved core components of DNA mismatch repair (MMR). Mismatch recognition provokes ATP-binding by MSH proteins that drives a conformational transition from a short-lived lesion-searching clamp to an extremely stable sliding clamp on the DNA. Once on DNA the MSH sliding clamps provide a platform for the assembly of MMR strand-specific excision components beginning with the highly conserved MutL homologs (MLH/PMS). Previous studies with short mismatch-containing oligonucleotides revealed an MSH ATP hydrolysis (ATPase) cycle that included mismatch recognition, the formation of an ATP-bound sliding clamp and dissociation from the end of a mismatched DNA that ultimately recovers the mismatch binding conformation. We found that ATP-bound MSH complexes on blocked-end or very long DNA are extremely stable under a range of ionic conditions. These observations underpinned the development of a high-throughput fluorescence resonance energy transfer (FRET) system capable of clearly distinguishing between HsMSH2-HsMSH3 and HsMSH2-HsMSH6 activities that is suitable for chemical inhibitor screens.

biochemistry↗