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Demin, A.

Publications and source records attributed to Demin, A..

2 recordsLinked to original sources

DNA Polymerase beta Accelerates Cellular DNA Base Excision Repair by Suppressing Excessive PARP1 Engagement

DNA polymerase beta (POL{beta}) is required for rapid rates of cellular DNA base excision repair (BER). However, the reason for this requirement is unclear, because other DNA polymerases can replace POL{beta}, in vitro. Here, we have identified the essential role of POL{beta} during cellular BER. As expected, POL{beta} deletion in human RPE-1 cells resulted in the rapid accumulation of DNA strand break intermediates during incubation with the monofunctional alkylating agent, methyl methanesulphonate (MMS). However, this accumulation was not detected in cells that also lack PARP1, indicating that POL{beta} is required for BER only if PARP1 is present. This result is reminiscent of the essential role of XRCC1 during BER, which is to suppress the excessive engagement and activity of PARP1 at BER intermediates and thereby enable their access and repair by other enzymes. Indeed, we found that POL{beta} is required to prevent excessive PARP1 engagement and activity during BER, and that XRCC1 and POL{beta} fulfil this function together. Finally, similar to XRCC1, loss of POL{beta} leads to persistent transcriptional suppression during MMS-induced BER, and this suppression is alleviated by treatment with PARP inhibitor. In summary, we show here that the essential role of POL{beta} during cellular BER is to suppress excessive PARP1 engagement and activity, and thereby maintain rapid rates of this important DNA repair process.

molecular biology↗

Effect of a constant magnetic field on morphology and motility of cell with cytoskeleton-associated magnetic nanoparticles

1.Cell motility, shape supporting, and intracellular signaling are followed by changes in cell morphology and cytoskeleton. The cell reaction and the reorganization of the cytoskeleton occurs in a single volume of the cytoplasm and affects all components of the cytoskeleton: intermediate filaments, microtubules and microfilaments. A promising way to manipulate cells is magnetic nanoparticles that control cellular physiology. This approach is called magnetogenetics and has found application in various fields of cell and molecular biology. Using a magnetic field, it is possible to non-invasively regulate biochemical processes, migration and changes in the morphology of cells with magnetic nanoparticles. Our work opens up new possibilities for spatial manipulation of individual cytoskeletal components in vitro and operates biochemical pathways associated with individual cytoskeletal components.

cell biology↗