Citati dr Sanje Vranješ-Đurić do 11. 2011. godine : 367 citata 289 bez a c




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: Terbium-149 for nuclear medicine. The production of Tb-149 via heavy ions induced nuclear reactions, CZECHOSLOVAK JOURNAL OF PHYSICS, 53: A455-A458 Part 2 Suppl. A 2003



Vranješ S. D., Miederer M., Čomor J. J., Soloviev D., Beyer G. J., LABELLING OF ANTIBODIES WITH 149Tb FOR TARGETED ALPHA THERAPY, J. Labelled Compd. Radiopharm., 2001.;Vol 44 : 718-720. ctirano 2x u


  1. Neskovic, N; Ristic-Durovic, J; Vorojtsov, SB; Belicev, P; Ivanenko, IA; Cirkovic, S; Vorozhtsov, AS; Bojovic, B; Dobrosavljevic, A; Vujovic, V; Comor, JJ; Pajovic, SB,: Status report of the VINCY cyclotron, NUKLEONIKA, 48: S135-S139 Suppl. 2 2003

  2. Beyer, GJ; Ruth, TJ, The role of electromagnetic separators in the production of radiotracers for bio-medical research and nuclear medical application, NUCLEAR INSTRUMENTS &METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 204: 694-700 MAY 2003



M. Orlić, M. Jovanović, S. Vranješ, Lj.Vuksanović, T. Trtić, I. Žagar, Journal of the International Federation for Medical & Biological Engineering, Medical &Biological &Engineering &Computing, Vol. 35, Suppl. Part 2, 1997 :1126 citirano (4x)u :


  1. M. Orlić, D. Janković, (poglavlje) Zaštita od zračenja u proizvodnji, kontroli iprimeni Mo-99/Tc-99m generatora i eluata Tc-99 : Monografija urednika Jurij Vučin: Tehnecijum-99m generator na bazi molibdena -99 visoke specifične radioaktivnosti, proizvodnja, kontrola i vidovi primene, Str 118-130, INN Vinča, Beograd 2003.

  2. M. P. Orlić, S.D.Vranješ, M.S.Jovanović, Lj.P.Vuksanović, T.M.Trtić , Nuclear medicine problems, I Congress of Russia Society of Nuclear Medicine, Dubna, Russia, Book of Abstract : 168, 1997.

  3. S.Vranješ, M.Orlić, M.S.Jovanović, T.Trtić,Lj.Vuksanović, Proc. XIX Jugoslav Radiation Protection Symposium: 39-42, Golubac, 1997

  4. M.Orlić, S.Vranješ, M.S.Jovanović, Lj. Vuksanović, T.Trtić, 29. Meeting of Nuclear Medicine Tara, 25-27 sept.1997. Proc.page 32


Holzscheiter M.H., Agazaryan N., Bassler N., Beyer G., DeMarco J.J., Doser M., Ichioka T., Vranjes, S, Wouters B.G. , Biological effectiveness of antiproton annihilation, Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms, (1-4) 210-214, 2004 Citirano 13x(4 bez a.c.) u :



  1. Herrmann, R., Jäkel, O., Palmans, H., Sharpe, P., Bassler, N.
    Dose response of alanine detectors irradiated with carbon ion beams
    (2011) Medical Physics, 38 (4), pp. 1859-1866. Cited 1 time.

  2. Bassler, N., Holzscheiter, M.H., Petersen, J.B.
    Neutron fluence in antiproton radiotherapy, measurements and simulations
    (2010) Acta Oncologica, 49 (7), pp. 1149-1159. Cited 1 time.

  3. Kavanagh, J.N., Currell, F.J., Timson, D.J., Holzscheiter, M.H., Bassler, N., Herrmann, R., Prise, K.M., Schettino, G.
    Experimental setup and first measurement of DNA damage induced along and around an antiproton beam
    (2010) European Physical Journal D, 60 (1), pp. 209-214. 

  4. Baccarelli, I., Gianturco, F.A., Scifoni, E., Solov'Yov, A.V., Surdutovich, E.
    Molecular level assessments of radiation biodamage
    (2010) European Physical Journal D, 60 (1), pp. 1-10. Cited 3 times.

  5. Paganetti, H., Goitein, M., Parodi, K.
    Spread-out antiproton beams deliver poor physical dose distributions for radiation therapy
    (2010) Radiotherapy and Oncology, 95 (1), pp. 79-86. Cited 5 times.

  6. Bassler, N., Kantemiris, I., Karaiskos, P., Engelke, J., Holzscheiter, M.H., Petersen, J.B.
    Comparison of optimized single and multifield irradiation plans of antiproton, proton and carbon ion beams
    (2010) Radiotherapy and Oncology, 95 (1), pp. 87-93. Cited 6 times.

  7. Kantemiris, I., Angelopoulos, A., Bassler, N., Giokaris, N., Holzscheiter, M.H., Karaiskos, P., Kalogeropoulos, T.E.
    Real-time imaging for dose evaluation during antiproton irradiation
    (2010) Physics in Medicine and Biology, 55 (5), pp. N123-N131. 

  8. Bassler, N., Holzscheiter, M.
    Calculated LET spectrum from antiproton beams stopping in water
    (2009) Acta Oncologica, 48 (2), pp. 223-226. Cited 4 times.

  9. Bassler, N., Hansen, J.W., Palmans, H., Holzscheiter, M.H., Kovacevic, S.
    The antiproton depth-dose curve measured with alanine detectors
    (2008) Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms, 266 (6), pp. 929-936. Cited 9 times.

  10. Bassler, N., Holzscheiter, M.H., Jäkel, O., Knudsen, H.V., Kovacevic, S., Holzscheiter, M.H., Bassler, N., Alsner, J., Beyer, G., DeMarco, J.J., Doser, M., Hajdukovic, D., Hartley, O., Iwamoto, K.S., Jäkel, O., Knudsen, H.V., Kovacevic, S., Pape Møller, S., Overgaard, J., Petersen, J.B., Solberg, T.D., Vranjes, S., Wouters, B.G.
    The antiproton depth-dose curve in water
    (2008) Physics in Medicine and Biology, 53 (3), pp. 793-805. Cited 7 times.

  11. Chauvie, S., Nieminen, P., Pia, M.G.
    Geant4 model for the stopping power of low energy negatively charged hadrons
    (2007) IEEE Transactions on Nuclear Science, 54 (3), pp. 578-584. Cited 2 times.

  12. Holzscheiter, M.H., Bassler, N., Agazaryan, N., Beyer, G., Blackmore, E., DeMarco, J.J., Doser, M., Durand, R.E., Hartley, O., Iwamoto, K.S., Knudsen, H.V., Landua, R., Maggiore, C., McBride, W.H., Møller, S.P., Petersen, J., Skarsgard, L.D., Smathers, J.B., Solberg, T.D., Uggerhøj, U.I., Vranjes, S., Withers, H.R., Wong, M., Wouters, B.G.
    The biological effectiveness of antiproton irradiation
    (2006) Radiotherapy and Oncology, 81 (3), pp. 233-242. Cited 23 times.

  13. Bassler, N., Knudsen, H., Møller, S.P., Petersen, J.B., Rahbek, D., Uggerhøj, U.I., Bubble detector measurements of a mixed radiation field from antiproton annihilation  in Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms 251 (1), pp. 269-273, 2006.


Isaković A., Marković Z., Todorović-Marković B., Nikolić N., Vranješ-Djurić S., Mirković M., Dramićanin M., Harhaji Lj., Raičević N., Nikolić Z., Trajković V., DISTINCT CYTOTOXIC MECHANISMS OF PRISTINE VERSUS HYDROXYLATED FULLERENE, Toxicol. Sci. Feb. 2006.; 91 (1): 173-183. citirano 120x; 112bez a.c. u :



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    "Nanoantibiotics": A new paradigm for treating infectious diseases using nanomaterials in the antibiotics resistant era
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  2. Cho, M., Snow, S.D., Hughes, J.B., Kim, J.-H.
    Escherichia coli inactivation by UVC-irradiated C60: Kinetics and mechanisms
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  3. Nakagawa, Y., Suzuki, T., Ishii, H., Nakae, D., Ogata, A.
    Cytotoxic effects of hydroxylated fullerenes on isolated rat hepatocytes via mitochondrial dysfunction
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  4. Perše, M., Injac, R., Djordjevic, A., Štrukelj, B., Cerar, A.
    Protective effect of fullerenol nano particles on colon cancer development in dimethylhydrazine rat model
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    Cytoprotective properties of a fullerene derivative against copper
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    Controlled self-aggregation of c60-anchored multiarmed polyacrylic acids and their cytotoxicity evaluation
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    Effect of fullerene C60 on functional activity of phagocytic cells
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    Size-exclusive nanosensor for quantitative analysis of fullerene c 60
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    Cytotoxicity and photocytotoxicity of structure-defined water-soluble C60/micelle supramolecular nanoparticles
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    Inhibitory effects of aqueous nanoparticle suspensions of [60] fullerene derivatives on bacterial growth
    (2011) Gaodeng Xuexiao Huaxue Xuebao/Chemical Journal of Chinese Universities, 32 (4), pp. 885-890. 

  13. Gao, J., Wang, Y., Hovsepyan, A., Bonzongo, J.C.J.
    Effects of engineered nanomaterials on microbial catalyzed biogeochemical processes in sediments
    (2011) Journal of Hazardous Materials, 186 (1), pp. 940-945. Cited 1 time.

  14. Ehrich, M., Van Tassell, R., Li, Y., Zhou, Z., Kepley, C.L.
    Fullerene antioxidants decrease organophosphate-induced acetylcholinesterase inhibition in vitro
    (2011) Toxicology in Vitro, 25 (1), pp. 301-307. 

  15. Saitoh, Y., Miyanishi, A., Mizuno, H., Kato, S., Aoshima, H., Kokubo, K., Miwa, N.
    Super-highly hydroxylated fullerene derivative protects human keratinocytes from UV-induced cell injuries together with the decreases in intracellular ROS generation and DNA damages
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  16. Torres, V.M., Posa, M., Srdjenovic, B., Simplício, A.L.
    Solubilization of fullerene C60 in micellar solutions of different solubilizers
    (2011) Colloids and Surfaces B: Biointerfaces, 82 (1), pp. 46-53. Cited 2 times.

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    Nanomaterial interactions with and trafficking across the lung alveolar epithelial barrier: Implications for health effects of air-pollution particles
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  18. Zhou, G., Li, Y., Liu, Y., Ge, C., Li, W., Sun, B., Li, B., Gao, Y., Chen, C.
    Subcellular distribution of polyhydroxylated metallofullerene Gd@C 82(OH)22 in different tissues of tumor-bearing mice
    (2010) Journal of Nanoscience and Nanotechnology, 10 (12), pp. 8597-8602. Cited 2 times.

  19. Meng, J., Wang, D.-L., Wang, P.C., Jia, L., Chen, C., Liang, X.-J.
    Biomedical activities of endohedral metallofullerene optimized for nanopharmaceutics
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    Study on cytotoxic effects of several types of nano-materials: The current status
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    Redox-active radical scavenging nanomaterials
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  22. Wu, X., Yang, S.-T., Wang, H., Wang, L., Hu, W., Cao, A., Liu, Y.
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  24. Trpkovic, A., Todorovic-Markovic, B., Kleut, D., Misirkic, M., Janjetovic, K., Vucicevic, L., Pantovic, A., Jovanovic, S., Dramicanin, M., Markovic, Z., Trajkovic, V.
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    In vitro evaluation of cellular responses induced by stable fullerene C60 medium dispersion
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  26. Saitoh, Y., Xiao, L., Mizuno, H., Kato, S., Aoshima, H., Taira, H., Kokubo, K., Miwa, N.
    Novel polyhydroxylated fullerene suppresses intracellular oxidative stress together with repression of intracellular lipid accumulation during the differentiation of OP9 preadipocytes into adipocytes
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    Mechanisms and measurements of nanomaterial-induced oxidative damage to DNA
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  28. Jovanović, S.P., Marković, Z.M., Kleut, D.N., Trajković, V.D., Babić-Stojić, B.S., Dramićanin, M.D., Marković, B.M.T.
    Singlet oxygen generation by higher fullerene-based colloids
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    Stability of nanoparticles in water
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  30. Xia, X.R., Monteiro-Riviere, N.A., Riviere, J.E.
    Intrinsic biological property of colloidal fullerene nanoparticles (nC60): Lack of lethality after high dose exposure to human epidermal and bacterial cells
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  31. Yang, X., Wan, Y., Qiao, X., Arlet, V., Li, X.
    Transcriptional alteration of matrix-related gene expression in cultured human disc cells by nanoparticles of a bismethanophosphonate fullerene
    (2010) Cell Biology International, 34 (8), pp. 837-844. Cited 1 time.

  32. Leavens, T.L., Xia, X.R., Lee, H.A., Monteiro-Riviere, N.A., Brooks, J.D., Riviere, J.E.
    Evaluation of perfused porcine skin as a model system to quantitate tissue distribution of fullerene nanoparticles
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  33. Scown, T.M., Van Aerle, R., Tyler, C.R.
    Review: Do engineered nanoparticles pose a significant threat to the aquatic environment
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  34. Lee, J., Mahendra, S., Alvarez, P.J.J.
    Nanomaterials in the construction industry: A review of their applications and environmental health and safety considerations
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  35. Landsiedel, R., Ma-Hock, L., Kroll, A., Hahn, D., Schnekenburger, J., Wiench, K., Wohlleben, W.
    Testing metal-oxide nanomaterials for human safety
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  36. Wang, C., Shang, C., Westerhoff, P.
    Quantification of fullerene aggregate nC60 in wastewater by high-performance liquid chromatography with UV-vis spectroscopic and mass spectrometric detection
    (2010) Chemosphere, 80 (3), pp. 334-339. Cited 6 times.

  37. Akhtar, M.J., Kumar, S., Murthy, R.C., Ashquin, M., Khan, M.I., Patil, G., Ahmad, I.
    The primary role of iron-mediated lipid peroxidation in the differential cytotoxicity caused by two varieties of talc nanoparticles on A549 cells and lipid peroxidation inhibitory effect exerted by ascorbic acid
    (2010) Toxicology in Vitro, 24 (4), pp. 1139-1147. Cited 7 times.

  38. Tervonen, K., Waissi, G., Petersen, E.J., Akkanen, J., Kukkonen, J.V.K.
    Analysis of fullerene-c60 and kinetic measurements for its accumulation and depuration in Daphnia magna
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  39. Xu, L., Liu, Y., Bai, R., Chen, C.
    Applications and toxicological issues surrounding nanotechnology in the food industry
    (2010) Pure and Applied Chemistry, 82 (2), pp. 349-372. Cited 1 time.

  40. Cai, X., Hao, J., Zhang, X., Yu, B., Ren, J., Luo, C., Li, Q., Huang, Q., Shi, X., Li, W., Liu, J.
    The polyhydroxylated fullerene derivative C60(OH)24 protects mice from ionizing-radiation-induced immune and mitochondrial dysfunction
    (2010) Toxicology and Applied Pharmacology, 243 (1), pp. 27-34. Cited 3 times.

  41. Yan, X., Zha, J., Shi, B., Wang, D., Wang, Z., Tang, H.
    In vivo toxicity of nano-C60 aggregates complex with atrazine to aquatic organisms
    (2010) Chinese Science Bulletin, 55 (4), pp. 339-345. Cited 1 time.

  42. Canesi, L., Ciacci, C., Vallotto, D., Gallo, G., Marcomini, A., Pojana, G.
    In vitro effects of suspensions of selected nanoparticles (C60 fullerene, TiO2, SiO2) on Mytilus hemocytes
    (2010) Aquatic Toxicology, 96 (2), pp. 151-158. Cited 9 times.

  43. Wielgus, A.R., Zhao, B., Chignell, C.F., Hu, D.-N., Roberts, J.E.
    Phototoxicity and cytotoxicity of fullerol in human retinal pigment epithelial cells
    (2010) Toxicology and Applied Pharmacology, 242 (1), pp. 79-90. Cited 8 times.

  44. Tyshenko, M.G.
    Nanotechnology innovation as a deus ex machina and potential effects on sustainability in a global context
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  45. Møller, P., Jacobsen, N.R., Folkmann, J.K., Danielsen, P.H., Mikkelsen, L., Hemmingsen, J.G., Vesterdal, L.K., Forchhammer, L., Wallin, H., Loft, S.
    Role of oxidative damage in toxicity of particulate
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  46. Zhang, L.W., Yang, J., Barron, A.R., Monteiro-Riviere, N.A.
    Endocytic mechanisms and toxicity of a functionalized fullerene in human cells
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  47. Zogovic, N.S., Nikolic, N.S., Vranjes-Djuric, S.D., Harhaji, L.M., Vucicevic, L.M., Janjetovic, K.D., Misirkic, M.S., Todorovic-Markovic, B.M., Markovic, Z.M., Milonjic, S.K., Trajkovic, V.S.
    Opposite effects of nanocrystalline fullerene (C60) on tumour cell growth in vitro and in vivo and a possible role of immunosupression in the cancer-promoting activity of C60
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  48. Hirose, A., Nishimura, T., Kanno, J.
    Research strategy for evaluation methods of the manufactured nanomaterials in NIHS and importance of the chronic health effects studies
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    Photoinduced DNA cleavage by fullerene-lysine conjugate
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  50. Nishizawa, C., Hashimoto, N., Yokoo, S., Funakoshi-Tago, M., Kasahara, T., Takahashi, K., Nakamura, S., Mashino, T.
    Pyrrolidinium-type fullerene derivative-induced apoptosis by the generation of reactive oxygen species in HL-60 cells
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  51. Zhang, Q., Yang, W., Man, N., Zheng, F., Shen, Y., Sun, K., Li, Y., Wen, L.-P.
    Autophagy-mediated chemosensitization in cancer cells by fullerene C60 nanocrystal
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  52. Mrdanović, J., Šolajić, S., Bogdanović, V., Stankov, K., Bogdanović, G., Djordjevic, A.
    Effects of fullerenol C60(OH)24 on the frequency of micronuclei and chromosome aberrations in CHO-K1 cells
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  53. Cho, M., Fortner, J.D., Hughes, J.B., Kim, J.-H.
    Escherichia coli inactivation by water-soluble, ozonated C60 derivative: Kinetics and mechanisms
    (2009) Environmental Science and Technology, 43 (19), pp. 7410-7415. Cited 9 times.

  54. Nikolić, N., Vranješ-Urić, S., Janković, D., Okić, D., Mirković, M., Bibić, N., Trajković, V.
    Preparation and biodistribution of radiolabeled fullerene C60 nanocrystals
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    Highly hydroxylated or γ-cyclodextrin-bicapped water-soluble derivative of fullerene: The antioxidant ability assessed by electron spin resonance method and β-carotene bleaching assay
    (2009) Bioorganic and Medicinal Chemistry Letters, 19 (18), pp. 5293-5296. Cited 9 times.

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    Photoinduced DNA cleavage by α-, β-, and γ-cyclodextrin- bicapped C60 supramolecular complexes
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    Zebrafish as a correlative and predictive model for assessing biomaterial nanotoxicity
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    Comparative photoactivity and antibacterial properties of C60 fullerenes and titanium dioxide nanoparticles
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    Surface chemical modification of fullerene by mechanochemical treatment
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    Current in vitro methods in nanoparticle risk assessment: Limitations and challenges
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    The interaction of C60 and its derivatives with a lipid bilayer via molecular dynamics simulations
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    C60 affects DNA replication in vitro by decreasing the melting temperature of DNA templates
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    Inhibition of DNA restrictive endonucleases by aqueous nanoparticle suspension of methanophosphonate fullerene derivatives and its mechanisms
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    Risks of synthetic nanomaterials for human health [Gesundheitsrisiken Durch Synthetische Nanomaterialien]
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    The protection of cells from nitric oxide-mediated apoptotic death by mechanochemically synthesized fullerene (C60) nanoparticles
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    C60 fullerene: A powerful antioxidant or a damaging agent? The importance of an in-depth material characterization prior to toxicity assays
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    Genotoxicity investigations on nanomaterials: Methods, preparation and characterization of test material, potential artifacts and limitations-Many questions, some answers
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    Effect of the β-amyloid peptide Aβ25-35 and fullerene C60 on the activity of enzymes in erythrocytes
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    Analytical methods to assess nanoparticle toxicity
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    Fullerene C60 films of continuous and micropatterned morphology as substrates for adhesion and growth of bone cells
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    Protective effects of fullerenol C60(OH)24 against doxorubicin-induced cardiotoxicity and hepatotoxicity in rats with colorectal cancer
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    Structure, stability, depolarized light scattering, and vibrational spectra of fullerenols from all-electron density-functional-theory calculations
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    Impact of physicochemical properties of engineered fullerenes on key biological responses
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    Atomic force microscopy study of fullerene-based colloids
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  78. Rade, I., Natasa, R., Biljana, G., Aleksandar, D., Borut, S.
    Bioapplication and activity of fullerenol C60(OH)24
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    Fullerenol - A new nanopharmaceutic?
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  80. Cai, X., Jia, H., Liu, Z., Hou, B., Luo, C., Feng, Z., Li, W., Liu, J.
    Polyhydroxylated fullerene derivative C60(OH)24 prevents mitochondrial dysfunction and oxidative damage in an MPP+-induced cellular model of Parkinson's disease
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  82. Lyon, D.Y., Alvarez, P.J.J.
    Fullerene water suspension (nC60) exerts antibacterial effects via ROS-independent protein oxidation
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    Antimicrobial nanomaterials for water disinfection and microbial control: Potential applications and implications
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  84. Roursgaard, M., Poulsen, S.S., Kepley, C.L., Hammer, M., Nielsen, G.D., Larsen, S.T.
    Polyhydroxylated C60 fullerene (fullerenol) attenuates neutrophilic lung inflammation in mice
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  85. Yang, S.-T., Wang, H., Guo, L., Gao, Y., Liu, Y., Cao, A.
    Interaction of fullerenol with lysozyme investigated by experimental and computational approaches
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  86. Fileti, E.E., Rivelino, R., Brito Mota, F.D., Malaspina, T.
    Effects of hydroxyl group distribution on the reactivity, stability and optical properties of fullerenols
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  87. Johansen, A., Pedersen, A.L., Jensen, K.A., Karlson, U., Hansen, B.M., Scott-Fordsmand, J.J., Winding, A.
    Effects of C60 fullerene nanoparticles on soil bacteria and protozoans
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  88. Markovic, Z., Trajkovic, V.
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  89. Blickley, T.M., McClellan-Green, P.
    Toxicity of aqueous fullerene in adult and larval Fundulus heteroclitus
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  90. Kosenko, E.A., Solomadin, I.N., Marov, N.V., Venediktova, N.I., Poghosyan, A.S., Kaminsky, Y.G.
    Role of glycolysis and antioxidant enzymes in the toxicity of amyloid beta peptide Aβ25-35 to erythrocytes
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    In vivo biology and toxicology of fullerenes and their derivatives
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  93. Injac, R., Perse, M., Obermajer, N., Djordjevic-Milic, V., Prijatelj, M., Djordjevic, A., Cerar, A., Strukelj, B.
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    Inhibition of in vitro amplification of targeted DNA fragment and activity of exonuclease I by a fullerene-oligonucleotide conjugate
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  95. Jacobsen, N.R., Pojana, G., White, P., Møller, P., Cohn, C.A., Korsholm, K.S., Vogel, U., Marcomini, A., Loft, S., Wallin, H.
    Genotoxicity, cytotoxicity, and reactive oxygen species induced by single-walled carbon nanotubes and C60 fullerenes in the FE1-Muta™mouse lung epithelial cells
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    Preparation and radical scavenging activity of an aqueous nanoparticle suspension of a phosphonate [C60]fullerene
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    Fullerene C60 exposure elicits an oxidative stress response in embryonic zebrafish
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  98. Lyon, D.Y., Brunet, L., Hinkal, G.W., Wiesner, M.R., Alvarez, P.J.J.
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    Adverse effects of fullerenes on endothelial cells: Fullerenol C60(OH)24 induced tissue factor and ICAM-I membrane expression and apoptosis in vitro
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    Cytotoxicity of aggregated fullerene C60 particles on CHO and MDCK cells
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    Quantification of fullerenes by LC/ESI-MS and its application to in vivo toxicity assays
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    Photo-induced lipid peroxidation of erythrocyte membranes by a bis-methanophosphonate fullerene
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    Fullerol cluster formation in aqueous solutions: Implications for environmental release
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    Photoinduced DNA cleavage of fullerols, water-soluble polyhydroxylated[C60] fullerene derivatives
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    Oxidative stress-mediated protein conformation changes: ESR study of spin-labelled staphylococcal nuclease
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    Comparative pulmonary toxicity assessments of C60 water suspensions in rats: Few differences in fullerene toxicity in Vivo in contrast to in Vitro profiles
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    In vivo evaluation of carbon fullerene toxicity using embryonic zebrafish
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    Multiple mechanisms underlying the anticancer action of nanocrystalline fullerene
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    Inhibition of DNA restrictive endonucleases and Taq DNA polymerase by trimalonic acid C60
    (2007) Chinese Science Bulletin, 52 (13), pp. 1802-1806. Cited 3 times.

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    Dual antiglioma action of metformin: Cell cycle arrest and mitochondria-dependent apoptosis
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Isaković A, Marković Z., Nikolić N., Todorović-Marković B., Vranješ-Đurić S., Harhaji Lj., Raičević N., Romčević N., Vasiljević-Radović D., Dramićanin M., Trajković V., INACTIVATION OF NANOCRYSTALLINE C60 CYTOTOXICITY BY -IRRADIDATION, Biomaterials, 2006.; Vol. 27 (29): 5049-5058. (IF=5.196, 2/41 (2006)) citirano 28x; 21x bez a.c. u:


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  20. Zhao, B., Bilski, P.J., He, Y.-Y., Feng, L., Chignell, C.F.
    Photo-induced reactive oxygen species generation by different water-soluble fullerenes (C60) and their cytotoxicity in human keratinocytes
    (2008) Photochemistry and Photobiology, 84 (5), pp. 1215-1223. Cited 10 times.

  21. Markovic, Z., Trajkovic, V.
    Biomedical potential of the reactive oxygen species generation and quenching by fullerenes (C60)
    (2008) Biomaterials, 29 (26), pp. 3561-3573. Cited 57 times.

  22. Yan, X., Shi, B., Wang, D., Tang, H.
    The eco-toxic aspects of aqueous nano-C60 fullerenes
    (2008) Progress in Chemistry, 20 (2-3), pp. 422-428. Cited 2 times.

  23. Markovic, Z., Todorovic-Markovic, B., Kleut, D., Nikolic, N., Vranjes-Djuric, S., Misirkic, M., Vucicevic, L., Janjetovic, K., Isakovic, A., Harhaji, L., Babic-Stojic, B., Dramicanin, M., Trajkovic, V.
    The mechanism of cell-damaging reactive oxygen generation by colloidal fullerenes
    (2007) Biomaterials, 28 (36), pp. 5437-5448. Cited 38 times.

  24. Kolosnjaj, J., Szwarc, H., Moussa, F.
    Toxicity studies of fullerenes and derivatives
    (2007) Advances in Experimental Medicine and Biology, 620, pp. 168-180. Cited 21 times.

  25. Sayes, C.M., Marchione, A.A., Reed, K.L., Warheit, D.B.
    Comparative pulmonary toxicity assessments of C60 water suspensions in rats: Few differences in fullerene toxicity in Vivo in contrast to in Vitro profiles
    (2007) Nano Letters, 7 (8), pp. 2399-2406. Cited 99 times.

  26. Harhaji, L., Isakovic, A., Raicevic, N., Markovic, Z., Todorovic-Markovic, B., Nikolic, N., Vranjes-Djuric, S., Markovic, I., Trajkovic, V.
    Multiple mechanisms underlying the anticancer action of nanocrystalline fullerene
    (2007) European Journal of Pharmacology, 568 (1-3), pp. 89-98. Cited 29 times.

  27. Tang, Y.J., Ashcroft, J.M., Chen, D., Min, G., Kim, C.-H., Murkhejee, B., Larabell, C., Keasling, J.D., Chen,F.F.
    Charge-associated effects of fullerene derivatives on microbial structural integrity and central metabolism
    (2007) Nano Letters, 7 (3), pp. 754-760. Cited 38 times.

  28. Levi, N., Hantgan, R.R., Lively, M.O., Carroll, D.L., Prasad, G.L.
    C60-Fullerenes: Detection of intracellular photoluminescence and lack of cytotoxic effects
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Holzscheiter M. H., Agazaryan N., Bassler N., Beyer G., Blackmore E., DeMarco J. J., Doser M., Durand R. E., Hartley O., Iwamoto K.S., Knudsen H.V., Landua R., Maggiore C., McBride W.H., Møller S. P., Petersen J., Skarsgard .L D., Smathers J.B., Solberg T.D., Uggerhøj U.I., Vranješ S., Withers R. H., Wong M., Wouters B. G., THE BIOLOGICAL FFECTIVENESS OF ANTIPROTON IRRADIATION, Radiotherapy and Oncology, December 2006; Volume 81: Pages 233-242. (IF=3.970, 9/85 (2006)).
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