| Literature DB >> 25749521 |
Lian-Hong Zou1,2, Zeng-Fu Shang2,3, Wei Tan1,2, Xiao-Dan Liu2, Qin-Zhi Xu2, Man Song2,3, Yu Wang2, Hua Guan2, Shi-Meng Zhang2, Lan Yu4, Cai-Gao Zhong1, Ping-Kun Zhou2,3.
Abstract
TNKS1BP1 was originally identified as an interaction protein of tankyrase 1, which belongs to the poly(ADP-ribose) polymerase (PARP) superfamily. PARP members play important roles for example in DNA repair, telomere stability and mitosis regulation. Although the TNKS1BP1 protein was considered to be a poly(ADP-ribosyl)ation acceptor of tankyrase 1, its function is still unknown. Here we firstly identified that TNKS1BP1 was up-regulated by ionizing radiation (IR) and the depletion of TNKS1BP1 significantly sensitized cancer cells to IR. Neutral comet assay, pulsed-field gel electrophoresis, and γH2AX foci analysis indicated that TNKS1BP1 is required for the efficient repair of DNA double-strand breaks (DSB). The TNKS1BP1 protein was demonstrated to interact with DNA-dependent protein kinase (DNA-PKcs) and poly(ADP-ribose) polymerase 1 (PARP-1), by co-immunoprecipitation analysis. Moreover, TNKS1BP1 was shown to promote the association of PARP-1 and DNA-PKcs. Overexpression of TNKS1BP1 induced the autophosphorylation of DNA-PKcs/Ser2056 in a PARP-1 dependent manner, which contributed to an increased capability of DNA DSB repair. Inhibition of PARP-1 blocked the TNKS1BP1-mediated DNA-PKcs autophosphorylation and attenuated the PARylation of DNA-PKcs. TNKS1BP1 is a newly described component of the DNA DSB repair machinery, which provides much more mechanistic evidence for the rationale of developing effective anticancer measures by targeting PARP-1 and DNA-PKcs.Entities:
Keywords: DNA repair; DNA-PKcs; TNKS1BP1; poly(ADP-ribosyl)ation; radiation
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Year: 2015 PMID: 25749521 PMCID: PMC4466666 DOI: 10.18632/oncotarget.3137
Source DB: PubMed Journal: Oncotarget ISSN: 1949-2553
Figure 1Upregulation of TNKS1BP1 by ionizing radiation (IR) and its effect on the radiosensitivity of cells
(A) Immunoblotting hybridization showing the increased expression of TNKS1BP1 protein in HeLa cells at given times after exposed to 4 Gy of γ-rays. (B) Immunoblotting hybridization showing the increased expression of TNKS1BP1 protein in MCF7, HepG2 and L02 cells at 4 h after different doses of γ-rays. (C) Increased TNKS1BP1 protein levels in both cytoplasm and nuclei in HeLa cells at 4 h after 4 Gy of γ-rays. (D) Quantitative real-time RT-PCR analysis showing the increased mRNA expression of TNKS1BP1 in HeLa cells at 2 h after 4 Gy of γ-rays. (E) Depletion of TNKS1BP1 expression in HeLa cells mediated by specific shRNA. (F) Depletion of TNKS1BP1 expression in HepG2 cells mediated by specific shRNA. (G) TNKS1BP1 depleted HeLa-shTNKS1BP1 cells became much more sensitive to IR as compared to the control HeLa-NC cells. (H) TNKS1BP1 depleted HepG2-shTNKS1BP1 cells became much more sensitive to IR as compared to the control HepG2-NC cells.
Figure 2Depletion of TNKS1BP1 leads to defective DNA double-strand break repair
(A) Immunofluorescence staining image of γH2AX foci in TNKS1BP1 depleted HeLa-shTNKS1BP1 cells and control HeLa-NC cells at given times after 4 Gy of γ-rays. (B) Residual number of γH2AX foci per cell after certain times of repair in 4 Gy irradiated cells. **P < 0.01. (C) Pulsed-gel electrophoresis (PFGE) pattern of DNA double-strand breaks and repair in 4 Gy-irradiated cells. (D) Repair kinetics of 4 Gy-induced DSBs detected by PFGE. *P < 0.05.
Figure 3TNKS1BP1-medated autophosphorylation of DNA-PKcs/S2056
(A) Immunoblotting hybridization showing that depletion of TNKS1BP1 blocked the autophosphorylation of DNA-PKcs/S2056 and phosphorylation of CHK2/T68 induced by IR in HeLa cells. (B) Overexpression of TNKS1BP1 induced the autophosphorylation of DNA-PKcs/S2056 in HEK-293 cells either with or without irradiation. (C) shRNA-resistant Myc-TNKS1BP1 increased the autophosphorylation level of DNA-PKcs/S2056 in TNKS1BP1-depleted HeLa-shTNKS1BP1 cells. (D) Immunofluorescence image showing the autophosphrylation of DNA-PKcs/S2056 in HeLa cells transfected and expressing EGFP-tagged TNKS1BP1 plasmid.
Figure 4TNKS1BP1 mediated the interaction of DNA-PKcs and PARP-1
(A) Interaction of TNKS1BP1 with the DNA-PK complex and PARP-1 was shown by co-immunoprecipitation (Co-IP) with antibody against myc from HeLa cells transfected with myc-tagged TNKS1BP1, or with IgG control. (B) Interaction of DNA-PKcs with TNKS1BP1 and PARP-1 was shown by Co-IP with the antibody against DNA-PKcs from HeLa cells transfected with myc-tagged TNKS1BP1, or with IgG control. (C) Interaction of PARP-1 with TNKS1BP1 and DNA-PKcs was shown by Co-IP with the antibody against PARP-1 from HeLa cells transfected with myc-tagged TNKS1BP1, or with IgG control. (D) A decreased PARP-1 level in the co-immunoprecipitated complex of the antibody against DNA-PKcs in TNKS1BP1-depleted HeLa-shTNKS1BP1 cells as compared to that from control HeLa-NC cells. (E) Increased PARP-1 level in the co-immunoprecipitated complex of the antibody against DNA-PKcs in TNKS1BP1-overexpressed HeLa-mycTNKS1BP1 cells as compared to that from control HeLa-NC cells.
Figure 5PARP-1 is responsible for TNKS1BP1-induced autophosphorlation of DNA-PKcs/S2056
(A) PARP-1 inhibitor 3-AB decreased the poly(ADP-ribosy)lation of DNA-PKcs. The Co-IP complex of the antibody against DNA-PKcs was separated by SDS-PAGE and immunoblotted with anti-pADPr antibody, anti-DNA-PKcs antibody. The immunoblotting of the input of cell lysates was used as sample control. (B) TNKS1BP1-induced autophosphorylation of DNA-PKcs/S2056 was attenuated by DNA-PKcs inhibitor Nu7056, PARP-1 inhibitor 3AB. The action of tankyrase 1 inhibitor XAV939 was relative weak. (C) PARP-1 inhibitor 3-AB decreased the autophosphorylation of DNA-PKcs/S2056. (D) Immunofluorescence image showing that the TNKS1BP1-induced autophosphrylation of DNA-PKcs/S2056 was blocked by 3-AB. HEK-293 cells were transfected with plasmid of HA-tagged TNKS1BP1, and subjected to co-immunofluorescence staining with DNA-PKcs/pS2056 antibody and HA antibody 48 h after plasmid transfection.