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1.
Ahmed, E.A.* ; Rosemann, M. & Scherthan, H.*: NHEJ contributes to the fast repair of radiation-induced DNA double-strand breaks at late Prophase I telomeres. Health Phys. 115, 102-107 (2018)
2.
Dalke, C. et al.: Lifetime study in mice after acute low-dose ionizing radiation: A multifactorial study with special focus on cataract risk. Radiat. Environ. Biophys. 57, 99-113 (2018)
3.
Ahmed, E.A.* ; Vélaz, E.* ; Rosemann, M. ; Gilbertz, K.P.* & Scherthan, H.*: DNA repair kinetics in SCID mice Sertoli cells and DNA-PKcs-deficient mouse embryonic fibroblasts. Chromosoma, accepted (2016)
4.
Falkenberg, N. et al.: Three-dimensional microtissues essentially contribute to preclinical validations of therapeutic targets in breast cancer. Cancer Med. 5, 703-710 (2016)
5.
Höfig, I. et al.: P53-dependent senescence in mesenchymal stem cells under chronic normoxia is potentiated by low-dose γ-irradiation. Stem Cells Int. 2016:6429853 (2016)
6.
Falkenberg, N. et al.: Additive impact of HER2-/PTK6-RNAi on interactions with HER3 or IGF-1R leads to reduced breast cancer progression in vivo. Mol. Oncol. 9, 282-294 (2015)
7.
Gottschalk, S. et al.: Short and long-term phototoxicity in cells expressing genetic reporters under nanosecond laser exposure. Biomaterials 69, 38-44 (2015)
8.
Höfig, I. et al.: Generation of 3D-microtissues suitable for drug screening with lentivirally GFP-labelled CD44+CD24-breast cancer cells enriched by irradiation. Cancer Res. 75:1408 (2015)
9.
Rosemann, M. & Atkinson, M.J.: Spots, Damn'd spots and γH2AX foci. Cell Cycle 14:947 (2015)
10.
Höfig, I. et al.: Relevance of 3D-microtissues to investigate the therapeutic oncogenes HER2 and PTK6 in breast cancer. Eur. J. Cancer 50, S226 (2014)
11.
Rosemann, M. et al.: A Rb1 promoter variant with reduced activity contributes to osteosarcoma susceptibility in irradiated mice. Mol. Cancer 13:182 (2014)
12.
Alessio, N.* et al.: Silencing of RB1 but not of RB2/P130 induces cellular senescence and impairs the differentiation potential of human mesenchymal stem cells. Cell. Mol. Life Sci. 70, 1637-1651 (2013)
13.
Bannik, K. et al.: Are mouse lens epithelial cells more sensitive to γ-irradiation than lymphocytes? Radiat. Environ. Biophys. 52, 279-286 (2013)
14.
González-Vasconcellos, I.M. et al.: Rb1 haploinsufficiency promotes telomere attrition and radiation-induced genomic instability. Cancer Res. 73, 4247-4255 (2013)
15.
Ludyga, N. et al.: Effects of simultaneous knockdown of HER2 and PTK6 on malignancy and tumor progression in human breast cancer cells. Mol. Cancer Res. 11, 381-392 (2013)
16.
Baumhoer, D. et al.: MicroRNA profiling with correlation to gene expression revealed the oncogenic miR-17-92 cluster to be up-regulated in osteosarcoma. Cancer Genet. 205, 212-219 (2012)
17.
Baumhoer, D. et al.: Strong expression of CXCL12 is associated with a favorable outcome in osteosarcoma. Mod. Pathol. 25, 522-528 (2012)
18.
Dalke, C. et al.: Differences in the susceptibility to iodine131-induced thyroid tumours amongst inbred mouse strains. J. Radiat. Res. 53, 343-352 (2012)
19.
Finnon, R.* et al.: Flt3-ITD mutations in a mouse model of radiation-induced acute myeloid leukaemia. Leukemia 26, 1445-1446 (2012)
20.
Heidenreich, W.F. & Rosemann, M.: Genetic background and 227Thorium as risk factors in biologically based models for induction of bone cancer in mice. Radiat. Environ. Biophys. 51, 179-185 (2012)