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Comparison of time and dose dependent gene expression and affected pathways in primary human fibroblasts after exposure to ionizing radiation

Brackmann, Lara Kim ; Poplawski, Alicia ; Grandt, Caine Lucas ; Schwarz, Heike ; Hankeln, Thomas ; Rapp, Steffen ; Zahnreich, Sebastian ; Galetzka, Danuta ; Schmitt, Iris ; Grad, Christian ; Eckhard, Lukas ; Mirsch, Johanna ; Blettner, Maria ; Scholz-Kreisel, Peter ; Hess, Moritz ; Binder, Harald ; Schmidberger, Heinz ; Marron, Manuela (2024)
Comparison of time and dose dependent gene expression and affected pathways in primary human fibroblasts after exposure to ionizing radiation.
In: Molecular Medicine, 2020, 26 (1)
doi: 10.26083/tuprints-00024035
Article, Secondary publication, Publisher's Version

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Item Type: Article
Type of entry: Secondary publication
Title: Comparison of time and dose dependent gene expression and affected pathways in primary human fibroblasts after exposure to ionizing radiation
Language: English
Date: 30 September 2024
Place of Publication: Darmstadt
Year of primary publication: 9 September 2020
Place of primary publication: London
Publisher: BioMed Central
Journal or Publication Title: Molecular Medicine
Volume of the journal: 26
Issue Number: 1
Collation: 13 Seiten
DOI: 10.26083/tuprints-00024035
Corresponding Links:
Origin: Secondary publication DeepGreen
Abstract:

Background: Exposure to ionizing radiation induces complex stress responses in cells, which can lead to adverse health effects such as cancer. Although a variety of studies investigated gene expression and affected pathways in human fibroblasts after exposure to ionizing radiation, the understanding of underlying mechanisms and biological effects is still incomplete due to different experimental settings and small sample sizes. Therefore, this study aims to identify the time point with the highest number of differentially expressed genes and corresponding pathways in primary human fibroblasts after irradiation at two preselected time points.

Methods: Fibroblasts from skin biopsies of 15 cell donors were exposed to a high (2Gy) and a low (0.05Gy) dose of X-rays. RNA was extracted and sequenced 2 h and 4 h after exposure. Differentially expressed genes with an adjusted p-value < 0.05 were flagged and used for pathway analyses including prediction of upstream and downstream effects. Principal component analyses were used to examine the effect of two different sequencing runs on quality metrics and variation in expression and alignment and for explorative analysis of the radiation dose and time point of analysis.

Results: More genes were differentially expressed 4 h after exposure to low and high doses of radiation than after 2 h. In experiments with high dose irradiation and RNA sequencing after 4 h, inactivation of the FAT10 cancer signaling pathway and activation of gluconeogenesis I, glycolysis I, and prostanoid biosynthesis was observed taking p-value (< 0.05) and (in) activating z-score (≥2.00 or ≤ − 2.00) into account. Two hours after high dose irradiation, inactivation of small cell lung cancer signaling was observed. For low dose irradiation experiments, we did not detect any significant (p < 0.05 and z-score ≥ 2.00 or ≤ − 2.00) activated or inactivated pathways for both time points.

Conclusions: Compared to 2 h after irradiation, a higher number of differentially expressed genes were found 4 h after exposure to low and high dose ionizing radiation. Differences in gene expression were related to signal transduction pathways of the DNA damage response after 2 h and to metabolic pathways, that might implicate cellular senescence, after 4 h. The time point 4 h will be used to conduct further irradiation experiments in a larger sample.

Uncontrolled Keywords: Childhood cancer, Fibroblasts, Gene-radiation interaction, High dose, Ionizing radiation, IPA, Low dose, RNA sequencing, Second primary neoplasm
Identification Number: Artikel-ID: 85
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-240350
Additional Information:

Part of Springer Nature

Classification DDC: 500 Science and mathematics > 570 Life sciences, biology
600 Technology, medicine, applied sciences > 610 Medicine and health
Divisions: 10 Department of Biology > Radiation Biology and DNA Repair
Date Deposited: 30 Sep 2024 08:29
Last Modified: 29 Oct 2024 11:33
SWORD Depositor: Deep Green
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/24035
PPN: 522461220
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