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Pailing, M.

Publications and source records attributed to Pailing, M..

2 recordsLinked to original sources

PARP1 inhibitors regulate PARP1 structure independent of DNA, reducing binding affinity for single strand breaks

AbstractCancers caused by mutations to the DNA repair machinery may be treated by inhibitors that target Poly(ADP-ribose) Polymerase 1 (PARP1). PARP inhibitors are thought to cause toxicity by trapping PARP1 at single strand breaks, preventing single strand break repair, thus leading to accumulation of DNA damage and cancer cell death. Intriguingly though, different PARP inhibitors display similar cellular toxicities and catalytic inhibition despite having widely varying trapping potencies. To better understand this apparent contradiction and identify complementary mechanisms of action, we here visualize the effect of inhibitors on individual PARP1 and PARP2 molecules by atomic force microscopy (AFM). We find, surprisingly, that inhibitors cause significant PARP1 compaction and loss of molecular flexibility also in the absence of DNA. This compaction correlates with the trapping potency of the inhibitor; and could be functionally relevant by reducing the subsequent binding of pre-treated PARP1 to DNA. Such changes are less pronounced for PARP2, which shares a high sequence identity with the PARP1 catalytic domain but lacks the DNA binding domain present in PARP1. Our findings reveal an additional, DNA-independent mechanism of action for PARP inhibitors, where PARP inhibitors with strong trapping potencies target PARP1 in the absence of DNA, compact their conformation and thereby reduce its ability to bind to DNA.

biophysics↗

Co2+-mediated adsorption facilitates atomic force microscopy of DNA molecules at double-helix resolution

Atomic force microscopy (AFM) has demonstrated the ability to resolve single DNA molecules in liquid at a spatial resolution that is sufficient to visualize the double helix structure and variations therein. Such variations can be due to inherent configurational flexibility and may be related to, e.g., DNA sequence, ionic screening, supercoiling, or protein binding. These AFM experiments require DNA to be adhered to a solid and preferably flat support. For high-resolution, in-liquid AFM studies so far, such adhesion has commonly been achieved using Ni2+ ions to electrostatically bridge between the negatively charged DNA and a negatively charged, atomically flat mica surface, yet Ni2+ ions tend to cause precipitation of salts on the surface, increasing the risk of AFM tip contamination and increasing the corrugation of the support surface, making it harder to distinguish secondary DNA structure. Here, we report on a sample preparation protocol that, instead, relies on Co2+ ions to adhere DNA to mica. While the Co2+ is similarly effective as Ni2+ for facilitating DNA adsorption onto mica, it leads to significantly reduced salt precipitation with the potential to provide enhanced reproducibility in high-resolution DNA imaging by AFM. We expect this to substantially facilitate high-resolution AFM studies of DNA in aqueous solutions.

biophysics↗