Proteomic Changes in Mouse Spleen after Radiation-Induced Injury and its Modulation by Gamma-Tocotrienol
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Stephanie D. Byrum | B. Balgley | A. Tackett | A. Cheema | M. Hauer-Jensen | N. Sharma | V. Kumar | Shukla Biswas | Sanchita P. Ghosh | Tatiana Altadill | S. Byrum | Vidya P Kumar
[1] H. Zischka,et al. PPARα Is Necessary for Radiation-Induced Activation of Noncanonical TGFβ Signaling in the Heart. , 2018, Journal of proteome research.
[2] V. Anisimov,et al. Radioprotective and radiomitigative effects of BP-C2, a novel lignin-derived polyphenolic composition with ammonium molybdate, in two mouse strains exposed to total body irradiation , 2018, International journal of radiation biology.
[3] M. Hauer-Jensen,et al. γ-Tocotrienol as a Promising Countermeasure for Acute Radiation Syndrome: Current Status , 2016, International journal of molecular sciences.
[4] M. Hauer-Jensen,et al. Gamma-Tocotrienol Modulates Radiation-Induced MicroRNA Expression in Mouse Spleen , 2016, Radiation Research.
[5] M. Hauer-Jensen,et al. Radioprotective Efficacy of Gamma-Tocotrienol in Nonhuman Primates , 2016, Radiation Research.
[6] P. Burfeind,et al. Leupaxin stimulates adhesion and migration of prostate cancer cells through modulation of the phosphorylation status of the actin-binding protein caldesmon , 2015, Oncotarget.
[7] O. Eidelman,et al. Personalized Radioproteomics: Identification of a Protein Biomarker Signature for Preemptive Rescue by Tocopherol Succinate in CD34+ Irradiated Progenitor Cells Isolated from a Healthy Control Donor , 2015, Journal of proteomics & bioinformatics.
[8] Sanchita P. Ghosh,et al. Acute Toxicity of Subcutaneously Administered Vitamin E Isomers Delta- and Gamma-Tocotrienol in Mice , 2014, International journal of toxicology.
[9] L. Paša-Tolić,et al. Quantitative Proteomic Profiling of Low-Dose Ionizing Radiation Effects in a Human Skin Model , 2014, Proteomes.
[10] David J. Sandgren,et al. Early-response Biomarkers for Assessment of Radiation Exposure in a Mouse Total-body Irradiation Model , 2014, Health physics.
[11] K. Owzar,et al. Loss of β-catenin triggers oxidative stress and impairs hematopoietic regeneration , 2014, Genes & development.
[12] S. Tapio,et al. Proteomics in radiation research: present status and future perspectives , 2013, Radiation and Environmental Biophysics.
[13] M. Aichler,et al. PPAR alpha: a novel radiation target in locally exposed Mus musculus heart revealed by quantitative proteomics. , 2013, Journal of proteome research.
[14] Marius Ueffing,et al. Integrative proteomic and microRNA analysis of primary human coronary artery endothelial cells exposed to low-dose gamma radiation , 2013, Radiation and environmental biophysics.
[15] H. Zischka,et al. Ionising radiation induces persistent alterations in the cardiac mitochondrial function of C57BL/6 mice 40 weeks after local heart exposure. , 2013, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[16] Shiyong Wu,et al. The Role of ROS in Ionizing Radiation-Induced VLA-4 Mediated Adhesion of RAW264.7 Cells to VCAM-1 Under Flow Conditions , 2013, Radiation research.
[17] M. Hauer-Jensen,et al. Gamma-tocotrienol, a radiation prophylaxis agent, induces high levels of granulocyte colony-stimulating factor. , 2012, International immunopharmacology.
[18] Soile Tapio,et al. Ionizing radiation biomarkers for potential use in epidemiological studies. , 2012, Mutation research.
[19] P. Singh,et al. CBLB613: A TLR 2/6 Agonist, Natural Lipopeptide of Mycoplasma arginini, as a Novel Radiation Countermeasure , 2012, Radiation research.
[20] M. Ueffing,et al. Proteomic analysis by SILAC and 2D-DIGE reveals radiation-induced endothelial response: four key pathways. , 2012, Journal of proteomics.
[21] C. Buske,et al. Label-free protein profiling of formalin-fixed paraffin-embedded (FFPE) heart tissue reveals immediate mitochondrial impairment after ionising radiation. , 2012, Journal of proteomics.
[22] R. Baskar,et al. Cancer and Radiation Therapy: Current Advances and Future Directions , 2012, International journal of medical sciences.
[23] H. Zischka,et al. Radiation–Induced Signaling Results in Mitochondrial Impairment in Mouse Heart at 4 Weeks after Exposure to X-Rays , 2011, PloS one.
[24] C. Buske,et al. Rapid proteomic remodeling of cardiac tissue caused by total body ionizing radiation , 2011, Proteomics.
[25] Shaohui Wang,et al. EPO relies upon novel signaling of Wnt1 that requires Akt1, FoxO3a, GSK-3β, and β-catenin to foster vascular integrity during experimental diabetes. , 2011, Current neurovascular research.
[26] Hae-June Lee,et al. Proteomic identification of radiation response markers in mouse intestine and brain , 2011, Proteomics.
[27] M. Satyamitra,et al. Hematopoietic Recovery and Amelioration of Radiation-Induced Lethality by the Vitamin E Isoform δ-Tocotrienol , 2011, Radiation research.
[28] S. Tapio,et al. Low-dose irradiation causes rapid alterations to the proteome of the human endothelial cell line EA.hy926 , 2011, Radiation and environmental biophysics.
[29] S. Markey,et al. MassSieve: Panning MS/MS peptide data for proteins , 2010, Proteomics.
[30] Peter L Jones,et al. Facioscapulohumeral muscular dystrophy region gene-1 (FRG-1) is an actin-bundling protein associated with muscle-attachment sites , 2010, Journal of Cell Science.
[31] M. Satyamitra,et al. Gamma-Tocotrienol Protects Hematopoietic Stem and Progenitor Cells in Mice after Total-Body Irradiation , 2010, Radiation research.
[32] Daniel A. Fletcher,et al. Cell mechanics and the cytoskeleton , 2010, Nature.
[33] M. Waligórski,et al. Track structure effects in a study of cell killing in normal human skin fibroblasts , 2009, International journal of radiation biology.
[34] V. Singh,et al. Tocopherol succinate: a promising radiation countermeasure. , 2009, International immunopharmacology.
[35] M. Mann,et al. Universal sample preparation method for proteome analysis , 2009, Nature Methods.
[36] M. Boerma,et al. γ-Tocotrienol Ameliorates Intestinal Radiation Injury and Reduces Vascular Oxidative Stress after Total-Body Irradiation by an HMG-CoA Reductase-Dependent Mechanism , 2009, Radiation research.
[37] E. Reddy,et al. Radiation Protection by a New Chemical Entity, Ex-Rad™: Efficacy and Mechanisms , 2009, Radiation research.
[38] M. Hauer-Jensen,et al. Gamma-tocotrienol, a tocol antioxidant as a potent radioprotector , 2009, International journal of radiation biology.
[39] F. Staal,et al. The canonical Wnt signaling pathway plays an important role in lymphopoiesis and hematopoiesis , 2008, European journal of immunology.
[40] C. Voermans,et al. Activation of Wnt Signaling in Hematopoietic Regeneration , 2008, Stem cells.
[41] E. Appella,et al. Quantitative Proteomics Analysis of the Effects of Ionizing Radiation in Wild Type and p53K317R Knock-in Mouse Thymocytes*S , 2008, Molecular & Cellular Proteomics.
[42] Kei-Hoi Cheung,et al. X!!Tandem, an improved method for running X!tandem in parallel on collections of commodity computers. , 2008, Journal of proteome research.
[43] Brendan MacLean,et al. General framework for developing and evaluating database scoring algorithms using the TANDEM search engine , 2006, Bioinform..
[44] S. Bentzen. Preventing or reducing late side effects of radiation therapy: radiobiology meets molecular pathology , 2006, Nature Reviews Cancer.
[45] R. Beavis,et al. Using annotated peptide mass spectrum libraries for protein identification. , 2006, Journal of proteome research.
[46] Daohong Zhou,et al. Hematopoietic Stem Cell Senescence and Long-Term Bone Marrow Injury , 2006, Cell cycle.
[47] E. Wright,et al. A proteomic analysis of murine bone marrow and its response to ionizing radiation , 2005, Proteomics.
[48] J. Staessen,et al. Adducin and hypertension. , 2005, Pharmacogenomics.
[49] Robertson Craig,et al. Open source system for analyzing, validating, and storing protein identification data. , 2004, Journal of proteome research.
[50] Robertson Craig,et al. TANDEM: matching proteins with tandem mass spectra. , 2004, Bioinformatics.
[51] S. Bryant,et al. Open mass spectrometry search algorithm. , 2004, Journal of proteome research.
[52] T. Reya. Regulation of hematopoietic stem cell self-renewal. , 2003, Recent progress in hormone research.
[53] G. Semenza. HIF-1 and mechanisms of hypoxia sensing. , 2001, Current opinion in cell biology.
[54] C. Albanese,et al. The cyclin D1 gene is a target of the beta-catenin/LEF-1 pathway. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[55] J Sullivan,et al. Hematopoietic stem cell compartment: acute and late effects of radiation therapy and chemotherapy. , 1995, International journal of radiation oncology, biology, physics.
[56] W. Nothdurft,et al. Biological Factors Affecting the Occurrence of Radiation Syndromes , 1984 .
[57] R. Degowin,et al. Development of response to erythropoietin and repletion of the stem cell compartment after irradiation. , 1968, The Journal of laboratory and clinical medicine.
[58] J. Hayes,et al. Studies on the behavior of erythropoietin-sensitive cells in the mouse during recovery from 200 roentgens of whole-body irradiation. , 1967, Radiation research.
[59] O. S. Reddi,et al. Effect of Post-treatment with Erythropoietin(s) on Survival and Erythropoietic Recovery in Irradiated Mice , 1967, Nature.
[60] C. Gurney,et al. A comparison of the rates at which colony forming units and erythropoietin responsive cells recover after 200 r total body x-irradiation. , 1967, The Journal of laboratory and clinical medicine.