| Literature DB >> 35084511 |
Lucas D Lee1, Ioannis Pozios1, Verena Liu1, Silke B Nachbichler2, Dirk Böhmer3, Carsten Kamphues1, Katharina Beyer1, Christiane J Bruns4, Martin E Kreis1, Hendrik Seeliger5,6.
Abstract
Chemoresistance in pancreatic ductal adenocarcinoma (PDAC) frequently contributes to failure of systemic therapy. While the radiosensitizing properties of 5-fluorouracil (FU) are well known, it is unknown whether ionizing radiation (IR) sensitizes towards FU cytotoxicity. Here, we hypothesize that upregulation of thymidine phosphorylase (TP) by IR reverses FU chemoresistance in PDAC cells. The FU resistant variant of the human PDAC cell line AsPC-1 (FU-R) was used to determine the sensitizing effects of IR. Proliferation rates of FU sensitive parental (FU-S) and FU-R cells were determined by WST-1 assays after low (0.05 Gy) and intermediate dose (2.0 Gy) IR followed by FU treatment. TP protein expression in PDAC cells before and after IR was assessed by Western blot. To analyze the specificity of the FU sensitizing effect, TP was ablated by siRNA. FU-R cells showed a 2.7-fold increase of the half maximal inhibitory concentration, compared to FU-S parental cells. Further, FU-R cells showed a concomitant IR resistance towards both doses applied. When challenging both cell lines with FU after IR, FU-R cells had lower proliferation rates than FU-S cells, suggesting a reversal of chemoresistance by IR. This FU sensitizing effect was abolished when TP was blocked by anti-TP siRNA before IR. An increase of TP protein expression was seen after both IR doses. Our results suggest a TP dependent reversal of FU-chemoresistance in PDAC cells that is triggered by IR. Thus, induction of TP expression by low dose IR may be a therapeutic approach to potentially overcome FU chemoresistance in PDAC.Entities:
Keywords: 5-fluorouracil; Chemotherapy resistance; Irradiation; Pancreatic cancer; Thymidine phosphorylase
Mesh:
Substances:
Year: 2022 PMID: 35084511 PMCID: PMC9021112 DOI: 10.1007/s00411-022-00962-w
Source DB: PubMed Journal: Radiat Environ Biophys ISSN: 0301-634X Impact factor: 2.017
Fig. 1Proliferation of FU sensitive (grey) and FU resistant (black) AsPC1 human PDAC cells in response to FU application. FU inhibited cell proliferation more effectively in FU sensitive than in FU resistant cells over a dose range of 0.001–100 µM (*p < 0.05, **p < 0.01). Experiments were performed three times independently and data points are mean ± standard deviation
Fig. 2Proliferation of FU sensitive (light grey bars) and FU resistant (dark grey bars) AsPC1 human PDAC cells. a Proliferation in response to low dose (0.05 Gy) and intermediate dose (2.0 Gy) IR. FU resistant cells showed concomitant IR resistance towards both doses (**p < 0.01). b Proliferation in response to FU was less inhibited in FU resistant cells not previously exposed to IR (**p < 0.01). Following low dose (0.05 Gy) or intermediate dose (2 Gy) IR, FU inhibited proliferation more effectively in FU resistant cells than in FU sensitive cells (**p < 0.01). Experiments were performed three times independently and data points are mean ± standard deviation
Fig. 3IR upregulates TP and PDAC cell resensitization is dependent on TP. a TP protein expression in FU resistant AsPC1 cells following low dose (0.05 Gy) and intermediate dose (2.0 Gy) IR. Both low dose and intermediate dose IR upregulated TP expression in FU resistant cells. b Proliferation of FU sensitive (light grey bars) and FU resistant (dark grey bars) AsPC1 human PDAC cells. Anti TP siRNA was used to block TP upregulation, and LacZ siRNA served as control. In control cells, following IR at 0.05 Gy as well as 2.0 Gy, proliferation was inhibited more effectively in FU resistant cells than in FU sensitive cells (**p < 0.01) when challenged with FU. When TP expression was blocked, this effect was abolished. Experiments were performed three times independently and data points are mean ± standard deviation
Fig. 4Metabolism of 5-fluorouracil and thymidine phosphorylase