Polθ Inhibitor (ART558) Demonstrates a Synthetic Lethal Effect with PARP and RAD52 Inhibitors in Glioblastoma Cells

Author:

Barszczewska-Pietraszek Gabriela1ORCID,Czarny Piotr2ORCID,Drzewiecka Małgorzata1ORCID,Błaszczyk Maciej3,Radek Maciej3ORCID,Synowiec Ewelina1,Wigner-Jeziorska Paulina1,Sitarek Przemysław4ORCID,Szemraj Janusz2ORCID,Skorski Tomasz5,Śliwiński Tomasz1ORCID

Affiliation:

1. Department of Molecular Genetics, Faculty of Biology and Environmental Protection, University of Lodz, 90-236 Lodz, Poland

2. Department of Medical Biochemistry, Medical University of Lodz, 92-216 Lodz, Poland

3. Department of Neurosurgery, Surgery of Spine and Peripheral Nerves, Medical University of Lodz, University Hospital WAM-CSW, 90-549 Lodz, Poland

4. Department of Medical Biology, Medical University of Lodz, 92-151 Lodz, Poland

5. Fels Cancer Institute for Personalized Medicine, Lewis Katz School of Medicine, Temple University, Philadelphia, PA 19140, USA

Abstract

DNA repair proteins became the popular targets in research on cancer treatment. In our studies we hypothesized that inhibition of DNA polymerase theta (Polθ) and its combination with Poly (ADP-ribose) polymerase 1 (PARP1) or RAD52 inhibition and the alkylating drug temozolomide (TMZ) has an anticancer effect on glioblastoma cells (GBM21), whereas it has a low impact on normal human astrocytes (NHA). The effect of the compounds was assessed by analysis of cell viability, apoptosis, proliferation, DNA damage and cell cycle distribution, as well as gene expression. The main results show that Polθ inhibition causes a significant decrease in glioblastoma cell viability. It induces apoptosis, which is accompanied by a reduction in cell proliferation and DNA damage. Moreover, the effect was stronger when dual inhibition of Polθ with PARP1 or RAD52 was applied, and it is further enhanced by addition of TMZ. The impact on normal cells is much lower, especially when considering cell viability and DNA damage. In conclusion, we would like to highlight that Polθ inhibition used in combination with PARP1 or RAD52 inhibition has great potential to kill glioblastoma cells, and shows a synthetic lethal effect, while sparing normal astrocytes.

Funder

the Polish National Science Center

NIH/NCI

Publisher

MDPI AG

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