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1.
Proc Natl Acad Sci U S A ; 113(52): 15024-15029, 2016 12 27.
Article in English | MEDLINE | ID: mdl-27956626

ABSTRACT

The p53 tumor suppressor acts as a guardian of the genome by preventing the propagation of DNA damage-induced breaks and mutations to subsequent generations of cells. We have previously shown that phosphorylation of the Mdm2 oncoprotein at Ser394 by the ATM kinase is required for robust p53 stabilization and activation in cells treated with ionizing radiation, and that loss of Mdm2 Ser394 phosphorylation leads to spontaneous tumorigenesis and radioresistance in Mdm2S394A mice. Previous in vitro data indicate that the c-Abl kinase phosphorylates Mdm2 at the neighboring residue (Tyr393) in response to DNA damage to regulate p53-dependent apoptosis. In this present study, we have generated an Mdm2 mutant mouse (Mdm2Y393F) to determine whether c-Abl phosphorylation of Mdm2 regulates the p53-mediated DNA damage response or p53 tumor suppression in vivo. The Mdm2Y393F mice develop accelerated spontaneous and oncogene-induced tumors, yet display no defects in p53 stabilization and activity following acute genotoxic stress. Although apoptosis is unaltered in these mice, they recover more rapidly from radiation-induced bone marrow ablation and are more resistant to whole-body radiation-induced lethality. These data reveal an in vivo role for c-Abl phosphorylation of Mdm2 in regulation of p53 tumor suppression and bone marrow failure. However, c-Abl phosphorylation of Mdm2 Tyr393 appears to play a lesser role in governing Mdm2-p53 signaling than ATM phosphorylation of Mdm2 Ser394. Furthermore, the effects of these phosphorylation events on p53 regulation are not additive, as Mdm2Y393F/S394A mice and Mdm2S394A mice display similar phenotypes.


Subject(s)
Gene Expression Regulation, Neoplastic , Neoplasms/metabolism , Proto-Oncogene Proteins c-abl/metabolism , Proto-Oncogene Proteins c-mdm2/chemistry , Radiation Tolerance , Tumor Suppressor Protein p53/metabolism , Alleles , Animals , Apoptosis , DNA Damage , Exons , Female , Fibroblasts/metabolism , Gene Expression Profiling , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Neoplasms/genetics , Neoplasms/radiotherapy , Phosphorylation , Protein Processing, Post-Translational , Proto-Oncogene Proteins/metabolism , Proto-Oncogene Proteins c-mdm2/metabolism , Signal Transduction
2.
Mol Cancer Res ; 20(4): 568-582, 2022 04 01.
Article in English | MEDLINE | ID: mdl-34980594

ABSTRACT

Radiotherapy is the most widely used cancer treatment and improvements in its efficacy and safety are highly sought-after. Peposertib (also known as M3814), a potent and selective DNA-dependent protein kinase (DNA-PK) inhibitor, effectively suppresses the repair of radiation-induced DNA double-strand breaks (DSB) and regresses human xenograft tumors in preclinical models. Irradiated cancer cells devoid of p53 activity are especially sensitive to the DNA-PK inhibitor, as they lose a key cell-cycle checkpoint circuit and enter mitosis with unrepaired DSBs, leading to catastrophic consequences. Here, we show that inhibiting the repair of DSBs induced by ionizing radiation with peposertib offers a powerful new way for improving radiotherapy by simultaneously enhancing cancer cell killing and response to a bifunctional TGFß "trap"/anti-PD-L1 cancer immunotherapy. By promoting chromosome misalignment and missegregation in p53-deficient cancer cells with unrepaired DSBs, DNA-PK inhibitor accelerated micronuclei formation, a key generator of cytosolic DNA and activator of cGAS/STING-dependent inflammatory signaling as it elevated PD-L1 expression in irradiated cancer cells. Triple combination of radiation, peposertib, and bintrafusp alfa, a fusion protein simultaneously inhibiting the profibrotic TGFß and immunosuppressive PD-L1 pathways was superior to dual combinations and suggested a novel approach to more efficacious radioimmunotherapy of cancer. IMPLICATIONS: Selective inhibition of DNA-PK in irradiated cancer cells enhances inflammatory signaling and activity of dual TGFß/PD-L1 targeted therapy and may offer a more efficacious combination option for the treatment of locally advanced solid tumors.


Subject(s)
Neoplasms , Protein Kinase Inhibitors , B7-H1 Antigen/metabolism , DNA , Humans , Immunotherapy , Neoplasms/drug therapy , Neoplasms/radiotherapy , Protein Kinase Inhibitors/pharmacology , Pyridazines , Quinazolines , Transforming Growth Factor beta
3.
Sci Rep ; 11(1): 12148, 2021 06 09.
Article in English | MEDLINE | ID: mdl-34108527

ABSTRACT

Peposertib (M3814) is a potent and selective DNA-PK inhibitor in early clinical development. It effectively blocks non-homologous end-joining repair of DNA double-strand breaks (DSB) and strongly potentiates the antitumor effect of ionizing radiation (IR) and topoisomerase II inhibitors. By suppressing DNA-PK catalytic activity in the presence of DNA DSB, M3814 potentiates ATM/p53 signaling leading to enhanced p53-dependent antitumor activity in tumor cells. Here, we investigated the therapeutic potential of M3814 in combination with DSB-inducing agents in leukemia cells and a patient-derived tumor. We show that in the presence of IR or topoisomerase II inhibitors, M3814 boosts the ATM/p53 response in acute leukemia cells leading to the elevation of p53 protein levels as well as its transcriptional activity. M3814 synergistically sensitized p53 wild-type, but not p53-deficient, AML cells to killing by DSB-inducing agents via p53-dependent apoptosis involving both intrinsic and extrinsic effector pathways. The antileukemic effect was further potentiated by enhancing daunorubicin-induced myeloid cell differentiation. Further, combined with the fixed-ratio liposomal formulation of daunorubicin and cytarabine, CPX-351, M3814 enhanced the efficacy against leukemia cells in vitro and in vivo without increasing hematopoietic toxicity, suggesting that DNA-PK inhibition could offer a novel clinical strategy for harnessing the anticancer potential of p53 in AML therapy.


Subject(s)
DNA Breaks, Double-Stranded , DNA-Activated Protein Kinase/antagonists & inhibitors , Gene Expression Regulation, Leukemic , Leukemia, Myeloid, Acute/pathology , Pyridazines/pharmacology , Quinazolines/pharmacology , Tumor Suppressor Protein p53/metabolism , Animals , Apoptosis , Cell Proliferation , DNA Repair , Humans , Leukemia, Myeloid, Acute/drug therapy , Leukemia, Myeloid, Acute/metabolism , Male , Mice , Mice, Inbred NOD , Mice, SCID , Phosphorylation , Protein Kinase Inhibitors/pharmacology , Signal Transduction , Tumor Cells, Cultured , Tumor Suppressor Protein p53/genetics , Xenograft Model Antitumor Assays
4.
Front Oncol ; 10: 127, 2020.
Article in English | MEDLINE | ID: mdl-32117773

ABSTRACT

Despite significant advances in the treatment of acute myeloid leukemia (AML) the long-term prognosis remains relatively poor and there is an urgent need for improved therapies with increased potency and tumor selectivity. Mylotarg is the first AML-targeting drug from a new generation of antibody drug conjugate (ADC) therapies aiming at the acute leukemia cell compartment with increased specificity. This agent targets leukemia cells for apoptosis with a cytotoxic payload, calicheamicin, carried by a CD33-specific antibody. Calicheamicin induces DNA double strand breaks (DSB) which, if left unrepaired, lead to cell cycle arrest and apoptosis in cancer cells. However, repair of DSB by the non-homologous end joining pathway driven by DNA-dependent protein kinase (DNA-PK) can reduce the efficacy of calicheamicin. M3814 is a novel, potent and selective inhibitor of DNA-PK. This compound effectively blocks DSB repair, strongly potentiates the antitumor activity of ionizing radiation and DSB-inducing chemotherapeutics and is currently under clinical investigation. Suppressing DSB repair with M3814 synergistically enhanced the apoptotic activity of calicheamicin in cultured AML cells. Combination of M3814 with Mylotarg in two AML xenograft models, MV4-11 and HL-60, demonstrated increased efficacy and significantly improved survival benefit without elevated body weight loss. Our results support a new application for pharmacological DNA-PK inhibitors as enhancers of Mylotarg and a potential new combination treatment option for AML patients.

5.
Mol Cancer Res ; 17(12): 2457-2468, 2019 12.
Article in English | MEDLINE | ID: mdl-31551253

ABSTRACT

Inhibition of DNA double-strand break (DSB) repair in cancer cells has been proposed as a new therapeutic strategy for potentiating the anticancer effects of radiotherapy. M3814 is a novel, selective pharmacologic inhibitor of the serine/threonine kinase DNA-dependent protein kinase (DNA-PK), a key driver of nonhomologous end-joining, one of the main DSB-repair pathways, currently under clinical investigation. Here, we show that M3814 effectively blocks the repair of radiation-induced DSBs and potently enhances p53 phosphorylation and activation. In p53 wild-type cells, ataxia telangiectasia-mutated (ATM) and its targets, p53 and checkpoint kinase 2 (CHK2), were more strongly activated by combination treatment with M3814 and radiation than by radiation alone, leading to a complete p53-dependent cell-cycle block and premature cell senescence. Cancer cells with dysfunctional p53 were unable to fully arrest their cell cycle and entered S and M phases with unrepaired DNA, leading to mitotic catastrophe and apoptotic cell death. Isogenic p53-null/wild-type A549 and HT-1080 cell lines were generated and used to demonstrate that p53 plays a critical role in determining the response to ionizing radiation and M3814. Time-lapse imaging of cell death and measuring apoptosis in panels of p53 wild-type and p53-null/mutant cancer lines confirmed the clear differences in cell fate, dependent on p53 status. IMPLICATIONS: Our results identify p53 as a possible biomarker for response of cancer cells to combination treatment with radiation and a DNA-PK inhibitor and suggest that p53 mutation status should be considered in the design of future clinical trials. VISUAL OVERVIEW: http://mcr.aacrjournals.org/content/molcanres/17/12/2457/F1.large.jpg.


Subject(s)
Biomarkers, Tumor/genetics , Lung Neoplasms/drug therapy , Tumor Suppressor Protein p53/genetics , Uterine Cervical Neoplasms/drug therapy , A549 Cells , Apoptosis/drug effects , Ataxia Telangiectasia Mutated Proteins/genetics , Checkpoint Kinase 2/genetics , DNA Breaks, Double-Stranded/drug effects , DNA Breaks, Double-Stranded/radiation effects , DNA Repair/drug effects , DNA Repair/radiation effects , DNA-Activated Protein Kinase/antagonists & inhibitors , DNA-Activated Protein Kinase/genetics , Female , Gene Expression Regulation, Neoplastic/drug effects , Gene Expression Regulation, Neoplastic/radiation effects , HeLa Cells , Humans , Lung Neoplasms/genetics , Lung Neoplasms/pathology , Lung Neoplasms/radiotherapy , Phosphorylation/drug effects , Phosphorylation/radiation effects , Protein Kinase Inhibitors/pharmacology , Radiation, Ionizing , Signal Transduction/drug effects , Signal Transduction/radiation effects , Uterine Cervical Neoplasms/genetics , Uterine Cervical Neoplasms/pathology , Uterine Cervical Neoplasms/radiotherapy
6.
Transl Cancer Res ; 5(6): 707-724, 2016 Dec.
Article in English | MEDLINE | ID: mdl-28690977

ABSTRACT

The p53 tumor suppressor acts as a guardian of the genome in mammalian cells undergoing DNA double strand breaks induced by a various forms of cell stress, including inappropriate growth signals or ionizing radiation. Following damage, p53 protein levels become greatly elevated in cells and p53 functions primarily as a transcription factor to regulate the expression a wide variety of genes that coordinate this DNA damage response. In cells undergoing high amounts of DNA damage, p53 can promote apoptosis, whereas in cells undergoing less damage, p53 promotes senescence or transient cell growth arrest and the expression of genes involved in DNA repair, depending upon the cell type and level of damage. Failure of the damaged cell to undergo growth arrest or apoptosis, or to respond to the DNA damage by other p53-coordinated mechanisms, can lead to inappropriate cell growth and tumorigenesis. In cells that have successfully responded to genetic damage, the amount of p53 present in the cell must return to basal levels in order for the cell to resume normal growth and function. Although regulation of p53 levels and function is coordinated by many proteins, it is now widely accepted that the master regulator of p53 is Mdm2. In this review, we discuss the role(s) of p53 in the DNA damage response and in tumor suppression, and how post-translational modification of Mdm2 regulates the Mdm2-p53 signaling axis to govern p53 activities in the cell.

7.
Cell Rep ; 16(10): 2618-2629, 2016 09 06.
Article in English | MEDLINE | ID: mdl-27568562

ABSTRACT

ATM phosphorylation of Mdm2-S394 is required for robust p53 stabilization and activation in DNA-damaged cells. We have now utilized Mdm2(S394A) knockin mice to determine that phosphorylation of Mdm2-S394 regulates p53 activity and the DNA damage response in lymphatic tissues in vivo by modulating Mdm2 stability. Mdm2-S394 phosphorylation delays lymphomagenesis in Eµ-myc transgenic mice, and preventing Mdm2-S394 phosphorylation obviates the need for p53 mutation in Myc-driven tumorigenesis. However, irradiated Mdm2(S394A) mice also have increased hematopoietic stem and progenitor cell functions, and we observed decreased lymphomagenesis in sub-lethally irradiated Mdm2(S394A) mice. These findings document contrasting effects of ATM-Mdm2 signaling on p53 tumor suppression and reveal that destabilizing Mdm2 by promoting its phosphorylation by ATM would be effective in treating oncogene-induced malignancies, while inhibiting Mdm2-S394 phosphorylation during radiation exposure or chemotherapy would ameliorate bone marrow failure and prevent the development of secondary hematological malignancies.


Subject(s)
Carcinogenesis/metabolism , Carcinogenesis/radiation effects , Oncogenes , Proto-Oncogene Proteins c-mdm2/metabolism , Radiation, Ionizing , Animals , Ataxia Telangiectasia Mutated Proteins/metabolism , Bone Marrow/pathology , Bone Marrow/radiation effects , Hematopoietic Stem Cells/metabolism , Hematopoietic Stem Cells/radiation effects , Lymphoid Tissue/metabolism , Lymphoid Tissue/pathology , Lymphoid Tissue/radiation effects , Mice, Transgenic , Phosphorylation/radiation effects , Phosphoserine/metabolism , Protein Stability/radiation effects , Proto-Oncogene Proteins c-myc/metabolism , Radiation Tolerance/radiation effects , Signal Transduction/radiation effects , Tumor Suppressor Protein p53/metabolism
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