-
1
-
-
84887453916
-
Paramagnetic nanoparticles to track and quantify in vivo immune human therapeutic cells
-
Aspord C, Laurin D, Janier MF, Mandon CA, Thivolet C, Villiers C, Mowat P, Madec AM, Tillement O, Perriat P, et al. Paramagnetic nanoparticles to track and quantify in vivo immune human therapeutic cells. Nanoscale. 2013;5(23):11409–15.
-
(2013)
Nanoscale
, vol.5
, Issue.23
, pp. 11409-11415
-
-
Aspord, C.1
Laurin, D.2
Janier, M.F.3
Mandon, C.A.4
Thivolet, C.5
Villiers, C.6
Mowat, P.7
Madec, A.M.8
Tillement, O.9
Perriat, P.10
-
2
-
-
79961128562
-
Localized dose enhancement to tumor blood vessel endothelial cells via megavoltage X-rays and targeted gold nanoparticles: new potential for external beam radiotherapy
-
Berbeco R, Ngwa W, Makrigiorgos M. Localized dose enhancement to tumor blood vessel endothelial cells via megavoltage X-rays and targeted gold nanoparticles: new potential for external beam radiotherapy. Int J Radiat Oncol Biol Phys. 2011;81(1):270–6.
-
(2011)
Int J Radiat Oncol Biol Phys
, vol.81
, Issue.1
, pp. 270-276
-
-
Berbeco, R.1
Ngwa, W.2
Makrigiorgos, M.3
-
3
-
-
84905095699
-
Quantitative biodistribution and pharmacokinetics of multimodal gadolinium-based nanoparticles for lungs using ultrashort TE MRI
-
Bianchi A, Dufort S, Lux F, Courtois A, Tillement O, Coll JL, Crémillieux Y. Quantitative biodistribution and pharmacokinetics of multimodal gadolinium-based nanoparticles for lungs using ultrashort TE MRI. MAGMA. 2014b;27(4):303–16.
-
(2014)
MAGMA
, vol.27
, Issue.4
, pp. 303-316
-
-
Bianchi, A.1
Dufort, S.2
Lux, F.3
Courtois, A.4
Tillement, O.5
Coll, J.L.6
Crémillieux, Y.7
-
4
-
-
84903441308
-
Targeting and in vivo imaging of non-small-cell lung cancer using nebulized multimodal contrast agents
-
Bianchi A, Dufort S, Lux F, Fortin PY, Tassali N, Tillement O, Coll JL, Crémillieux Y. Targeting and in vivo imaging of non-small-cell lung cancer using nebulized multimodal contrast agents. Proc Natl Acad Sci USA. 2014a;111(25):9247–52.
-
(2014)
Proc Natl Acad Sci USA
, vol.111
, Issue.25
, pp. 9247-9252
-
-
Bianchi, A.1
Dufort, S.2
Lux, F.3
Fortin, P.Y.4
Tassali, N.5
Tillement, O.6
Coll, J.L.7
Crémillieux, Y.8
-
5
-
-
84886768186
-
Contrast enhanced lung MRI in mice using ultra-short echo time radial imaging and intratracheally administrated Gd-DOTA-based nanoparticles
-
Bianchi A, Lux F, Tillement O, Crémillieux Y. Contrast enhanced lung MRI in mice using ultra-short echo time radial imaging and intratracheally administrated Gd-DOTA-based nanoparticles. Magn Reson Med. 2013;70(5):1419–26.
-
(2013)
Magn Reson Med
, vol.70
, Issue.5
, pp. 1419-1426
-
-
Bianchi, A.1
Lux, F.2
Tillement, O.3
Crémillieux, Y.4
-
6
-
-
77953162813
-
Gold nanoparticles as radiation sensitizers in cancer therapy
-
Chithrani DB, Jelveh S, Jalali F, van Prooijen M, Allen C, Bristow RG, Hill RP, Jaffray DA. Gold nanoparticles as radiation sensitizers in cancer therapy. Radiat Res. 2010;173(6):719–28.
-
(2010)
Radiat Res
, vol.173
, Issue.6
, pp. 719-728
-
-
Chithrani, D.B.1
Jelveh, S.2
Jalali, F.3
van Prooijen, M.4
Allen, C.5
Bristow, R.G.6
Hill, R.P.7
Jaffray, D.A.8
-
7
-
-
22544458178
-
Estimation of tumour dose enhancement due to gold nanoparticles during typical radiation treatments: a preliminary Monte Carlo study
-
Cho SH. Estimation of tumour dose enhancement due to gold nanoparticles during typical radiation treatments: a preliminary Monte Carlo study. Phys Med Biol. 2005;50(15):N163–73.
-
(2005)
Phys Med Biol
, vol.50
, Issue.15
, pp. N163-N173
-
-
Cho, S.H.1
-
8
-
-
84884956861
-
High-resolution cellular MRI: gadolinium and iron oxide nanoparticles for in-depth dual-cell imaging of engineered tissue constructs
-
Di Corato R, Gazeau F, Le Visage C, Fayol D, Levitz P, Lux F, Letourneur D, Luciani N, Tillement O, Wilhelm C. High-resolution cellular MRI: gadolinium and iron oxide nanoparticles for in-depth dual-cell imaging of engineered tissue constructs. ACS Nano. 2013;7(9):7500–12.
-
(2013)
ACS Nano
, vol.7
, Issue.9
, pp. 7500-7512
-
-
Di Corato, R.1
Gazeau, F.2
Le Visage, C.3
Fayol, D.4
Levitz, P.5
Lux, F.6
Letourneur, D.7
Luciani, N.8
Tillement, O.9
Wilhelm, C.10
-
9
-
-
84874777915
-
The effect of flattening filter free delivery on endothelial dose enhancement with gold nanoparticles
-
Detappe A, Tsiamas P, Ngwa W, Zygmanski P, Makrigiorgos M, Berbeco R. The effect of flattening filter free delivery on endothelial dose enhancement with gold nanoparticles. Med Phys. 2013;40(3):031706.
-
(2013)
Med Phys
, vol.40
, Issue.3
, pp. 031706
-
-
Detappe, A.1
Tsiamas, P.2
Ngwa, W.3
Zygmanski, P.4
Makrigiorgos, M.5
Berbeco, R.6
-
10
-
-
84962755418
-
Gold nanoparticles in radiation research: potential applications for imaging and radiosensitization
-
Dorsey JF, Sun L, Joh DY, Witztum A, Kao GD, Alonso-Basanta M, Avery S, Hahn SM, Al Zaki A, Tsourkas A. Gold nanoparticles in radiation research: potential applications for imaging and radiosensitization. Transl Cancer Res. 2013;2(4):280–91.
-
(2013)
Transl Cancer Res
, vol.2
, Issue.4
, pp. 280-291
-
-
Dorsey, J.F.1
Sun, L.2
Joh, D.Y.3
Witztum, A.4
Kao, G.D.5
Alonso-Basanta, M.6
Avery, S.7
Hahn, S.M.8
Al Zaki, A.9
Tsourkas, A.10
-
11
-
-
84555220471
-
Toward an image-guided microbeam radiation therapy using gadolinium-based nanoparticles
-
Le Duc G, Miladi I, Alric C, Mowat P, Bräuer-Krisch E, Bouchet A, Khalil E, Billotey C, Janier M, Lux F, et al. Toward an image-guided microbeam radiation therapy using gadolinium-based nanoparticles. ACS Nano. 2011;5(12):9566–74.
-
(2011)
ACS Nano
, vol.5
, Issue.12
, pp. 9566-9574
-
-
Le Duc, G.1
Miladi, I.2
Alric, C.3
Mowat, P.4
Bräuer-Krisch, E.5
Bouchet, A.6
Khalil, E.7
Billotey, C.8
Janier, M.9
Lux, F.10
-
12
-
-
84925680521
-
Advantages of gadolinium based ultrasmall nanoparticles vs molecular gadolinium chelates for radiotherapy guided by MRI for glioma treatment
-
Le Duc G, Roux S, Paruta-Tuarez A, Dufort S, Brauer E, Marais A, Truillet C, Sancey L, Perriat P, Lux F, et al. Advantages of gadolinium based ultrasmall nanoparticles vs molecular gadolinium chelates for radiotherapy guided by MRI for glioma treatment. Cancer Nanotechnol. 2014;5:4.
-
(2014)
Cancer Nanotechnol
, vol.5
, pp. 4
-
-
Le Duc, G.1
Roux, S.2
Paruta-Tuarez, A.3
Dufort, S.4
Brauer, E.5
Marais, A.6
Truillet, C.7
Sancey, L.8
Perriat, P.9
Lux, F.10
-
13
-
-
47949117043
-
Radiotherapy enhancement with gold nanoparticles
-
Hainfeld JF, Dilmanian FA, Slatkin DN, Smilowitz HM. Radiotherapy enhancement with gold nanoparticles. J Pharm Pharmacol. 2008;60(8):977–85.
-
(2008)
J Pharm Pharmacol
, vol.60
, Issue.8
, pp. 977-985
-
-
Hainfeld, J.F.1
Dilmanian, F.A.2
Slatkin, D.N.3
Smilowitz, H.M.4
-
14
-
-
4644321604
-
The use of gold nanoparticles to enhance radiotherapy in mice
-
Hainfeld JF, Slatkin DN, Smilowitz H. The use of gold nanoparticles to enhance radiotherapy in mice. Phys Med Biol. 2004;49(18):N309–15.
-
(2004)
Phys Med Biol
, vol.49
, Issue.18
, pp. N309-N315
-
-
Hainfeld, J.F.1
Slatkin, D.N.2
Smilowitz, H.3
-
15
-
-
78650820860
-
Cell-specific radiosensitization by gold nanoparticles at megavoltage radiation energies
-
Jain S, Coulter JA, Hounsell AR, Butterworth KT, McMahon SJ, Hyland WB, Muir MF, Dickson GR, Prise KM, Currell FJ, O’Sullivan JM, Hirst DG. Cell-specific radiosensitization by gold nanoparticles at megavoltage radiation energies. Int J Radiat Oncol Biol Phys. 2011;79:531–9.
-
(2011)
Int J Radiat Oncol Biol Phys
, vol.79
, pp. 531-539
-
-
Jain, S.1
Coulter, J.A.2
Hounsell, A.R.3
Butterworth, K.T.4
McMahon, S.J.5
Hyland, W.B.6
Muir, M.F.7
Dickson, G.R.8
Prise, K.M.9
Currell, F.J.10
O’Sullivan, J.M.11
Hirst, D.G.12
-
16
-
-
79953694205
-
Gold nanostructures as a platform for combinational therapy in future cancer therapeutics
-
Jelveh S, Chithrani DB. Gold nanostructures as a platform for combinational therapy in future cancer therapeutics. Cancers (Basel). 2011;3(1):1081–110.
-
(2011)
Cancers (Basel)
, vol.3
, Issue.1
, pp. 1081-1110
-
-
Jelveh, S.1
Chithrani, D.B.2
-
17
-
-
77954735630
-
Estimation of microscopic dose enhancement factor around gold nanoparticles by Monte Carlo calculations
-
Jones BL, Krishnan S, Cho SH. Estimation of microscopic dose enhancement factor around gold nanoparticles by Monte Carlo calculations. Med Phys. 2010;37(7):3809–16.
-
(2010)
Med Phys
, vol.37
, Issue.7
, pp. 3809-3816
-
-
Jones, B.L.1
Krishnan, S.2
Cho, S.H.3
-
18
-
-
84902128639
-
The Australian magnetic resonance imaging-linac program
-
Keall PJ, Barton M, Crozier S. The Australian magnetic resonance imaging-linac program. Semin Radiat Oncol. 2014;24(3):203–6.
-
(2014)
Semin Radiat Oncol
, vol.24
, Issue.3
, pp. 203-206
-
-
Keall, P.J.1
Barton, M.2
Crozier, S.3
-
19
-
-
84962649124
-
Third generation gold nanoplatform optimized for radiation therapy. Transl Cancer
-
Kumar R, Korideck H, Ngwa W, Berbeco RI, Makrigiorgos GM, Sridhar S. Third generation gold nanoplatform optimized for radiation therapy. Transl Cancer Res. 2013;2(4). doi.10.3978/j.issn.2218-676X.2013.07.02.
-
(2013)
Res. 2013;2(4). doi.10.3978/j.issn.2218-676X
, vol.7
, pp. 02
-
-
Kumar, R.1
Korideck, H.2
Ngwa, W.3
Berbeco, R.I.4
Makrigiorgos, G.M.5
Sridhar, S.6
-
20
-
-
84857771332
-
Theranostic systems and strategies for monitoring nanomedicine-mediated drug targeting
-
Kunjachan S, Jayapaul J, Mertens ME, Storm G, Kiessling F, Lammers T. Theranostic systems and strategies for monitoring nanomedicine-mediated drug targeting. Curr Pharm Biotechnol. 2012;13(4):609–22.
-
(2012)
Curr Pharm Biotechnol
, vol.13
, Issue.4
, pp. 609-622
-
-
Kunjachan, S.1
Jayapaul, J.2
Mertens, M.E.3
Storm, G.4
Kiessling, F.5
Lammers, T.6
-
21
-
-
84924356402
-
Comparing gold nano-particle enhanced radiotherapy with protons, megavoltage photons and kilovoltage photons: a Monte Carlo simulation
-
Lin Y, McMahon SJ, Scarpelli M, Paganetti H, Schuemann J. Comparing gold nano-particle enhanced radiotherapy with protons, megavoltage photons and kilovoltage photons: a Monte Carlo simulation. Phys Med Biol. 2014;59(24):7675–89.
-
(2014)
Phys Med Biol
, vol.59
, Issue.24
, pp. 7675-7689
-
-
Lin, Y.1
McMahon, S.J.2
Scarpelli, M.3
Paganetti, H.4
Schuemann, J.5
-
22
-
-
84908597548
-
Radiation dose enhancement of gadolinium-based AGuIX nanoparticles on HeLa cells
-
Luchette M, Korideck H, Makrigiorgos M, Tillement O, Berbeco R. Radiation dose enhancement of gadolinium-based AGuIX nanoparticles on HeLa cells. Nanomedicine. 2014;10(8):1751–5.
-
(2014)
Nanomedicine
, vol.10
, Issue.8
, pp. 1751-1755
-
-
Luchette, M.1
Korideck, H.2
Makrigiorgos, M.3
Tillement, O.4
Berbeco, R.5
-
23
-
-
83755196380
-
Ultrasmall rigid particles as multimodal probes for medical applications
-
Lux F, Mignot A, Mowat P, Louis C, Dufort S, Bernhard C, Denat F, Boschetti F, Brunet C, Antoine R, et al. Ultrasmall rigid particles as multimodal probes for medical applications. Angew Chem Int Ed Engl. 2011;50(51):12299–303.
-
(2011)
Angew Chem Int Ed Engl
, vol.50
, Issue.51
, pp. 12299-12303
-
-
Lux, F.1
Mignot, A.2
Mowat, P.3
Louis, C.4
Dufort, S.5
Bernhard, C.6
Denat, F.7
Boschetti, F.8
Brunet, C.9
Antoine, R.10
-
24
-
-
80054076167
-
Biological consequences of nanoscale energy deposition near irradiated heavy atom nanoparticles
-
McMahon SJ, Hyland WB, Muir MF, Coulter JA, Jain S, Butterworth KT, Schettino G, Dickson GR, Hounsell AR, O’Sullivan JM, et al. Biological consequences of nanoscale energy deposition near irradiated heavy atom nanoparticles. Sci Rep. 2011;1:18.
-
(2011)
Sci Rep
, vol.1
, pp. 18
-
-
McMahon, S.J.1
Hyland, W.B.2
Muir, M.F.3
Coulter, J.A.4
Jain, S.5
Butterworth, K.T.6
Schettino, G.7
Dickson, G.R.8
Hounsell, A.R.9
O’Sullivan, J.M.10
-
25
-
-
58149216011
-
Radiotherapy in the presence of contrast agents: a general figure of merit and its application to gold nanoparticles
-
McMahon SJ, Mendenhall MH, Jain S, Currell F. Radiotherapy in the presence of contrast agents: a general figure of merit and its application to gold nanoparticles. Phys Med Biol. 2008;53:5635–51.
-
(2008)
Phys Med Biol
, vol.53
, pp. 5635-5651
-
-
McMahon, S.J.1
Mendenhall, M.H.2
Jain, S.3
Currell, F.4
-
26
-
-
84875773441
-
A top-down synthesis route to ultrasmall multifunctional Gd-based silica nanoparticles for theranostic applications
-
Mignot A, Truillet C, Lux F, Sancey L, Louis C, Denat F, Boschetti F, Bocher L, Gloter A, Stéphan O, et al. A top-down synthesis route to ultrasmall multifunctional Gd-based silica nanoparticles for theranostic applications. Chemistry. 2013;19(19):6122–36.
-
(2013)
Chemistry
, vol.19
, Issue.19
, pp. 6122-6136
-
-
Mignot, A.1
Truillet, C.2
Lux, F.3
Sancey, L.4
Louis, C.5
Denat, F.6
Boschetti, F.7
Bocher, L.8
Gloter, A.9
Stéphan, O.10
-
27
-
-
84856367687
-
In vitro radiosensitizing effects of ultrasmall gadolinium based particles on tumour cells
-
Mowat P, Mignot A, Rima W, Lux F, Tillement O, Roulin C, Dutreix M, Bechet D, Huger S, Humbert L, et al. In vitro radiosensitizing effects of ultrasmall gadolinium based particles on tumour cells. J Nanosci Nanotechnol. 2011;11(9):7833–9.
-
(2011)
J Nanosci Nanotechnol
, vol.11
, Issue.9
, pp. 7833-7839
-
-
Mowat, P.1
Mignot, A.2
Rima, W.3
Lux, F.4
Tillement, O.5
Roulin, C.6
Dutreix, M.7
Bechet, D.8
Huger, S.9
Humbert, L.10
-
28
-
-
84903825697
-
Targeted radiotherapy with gold nanoparticles: current status and future perspectives
-
Ngwa W, Kumar R, Sridhar S, Korideck H, Zygmanski P, Cormack RA, Berbeco R, Makrigiorgos M. Targeted radiotherapy with gold nanoparticles: current status and future perspectives. Nanomed (Lond). 2014;9(7):1063–82.
-
(2014)
Nanomed (Lond)
, vol.9
, Issue.7
, pp. 1063-1082
-
-
Ngwa, W.1
Kumar, R.2
Sridhar, S.3
Korideck, H.4
Zygmanski, P.5
Cormack, R.A.6
Berbeco, R.7
Makrigiorgos, M.8
-
29
-
-
84894359158
-
A Monte Carlo investigation of low-Z target image quality generated in a linear accelerator using Varian’s VirtuaLinac
-
Parsons D, Robar JL, Sawkey D. A Monte Carlo investigation of low-Z target image quality generated in a linear accelerator using Varian’s VirtuaLinac. Med Phys. 2014;41(2):021719.
-
(2014)
Med Phys
, vol.41
, Issue.2
, pp. 021719
-
-
Parsons, D.1
Robar, J.L.2
Sawkey, D.3
-
30
-
-
84901815115
-
MnII-containing coordination nanoparticles as highly efficient T1 contrast agents for magnetic resonance imaging
-
Paul G, Prado Y, Dia N, Rivière E, Laurent S, Roch M, Elst LV, Muller RN, Sancey L, Perriat P, et al. MnII-containing coordination nanoparticles as highly efficient T1 contrast agents for magnetic resonance imaging. Chem Commun (Camb). 2014;50(51):6740–3.
-
(2014)
Chem Commun (Camb)
, vol.50
, Issue.51
, pp. 6740-6743
-
-
Paul, G.1
Prado, Y.2
Dia, N.3
Rivière, E.4
Laurent, S.5
Roch, M.6
Elst, L.V.7
Muller, R.N.8
Sancey, L.9
Perriat, P.10
-
31
-
-
84911992028
-
Gadolinium-based nanoparticles to improve the hadrontherapy performances
-
Porcel E, Tillement O, Lux F, Mowat P, Usami N, Kobayashi K, Furusawa Y, Le Sech C, Li S, Lacombe S. Gadolinium-based nanoparticles to improve the hadrontherapy performances. Nanomedicine. 2014;10(8):1601–8.
-
(2014)
Nanomedicine
, vol.10
, Issue.8
, pp. 1601-1608
-
-
Porcel, E.1
Tillement, O.2
Lux, F.3
Mowat, P.4
Usami, N.5
Kobayashi, K.6
Furusawa, Y.7
Le Sech, C.8
Li, S.9
Lacombe, S.10
-
32
-
-
70449369451
-
Resonant X-ray enhancement of the Auger effect in high-Z atoms, molecules, and nanoparticles: potential biomedical applications
-
Pradhan AK, Nahar SN, Montenegro M, Yu Y, Zhang HL, Sur C, Mrozik M, Pitzer RM. Resonant X-ray enhancement of the Auger effect in high-Z atoms, molecules, and nanoparticles: potential biomedical applications. J Phys Chem A. 2009;113(45):12356–63.
-
(2009)
J Phys Chem A
, vol.113
, Issue.45
, pp. 12356-12363
-
-
Pradhan, A.K.1
Nahar, S.N.2
Montenegro, M.3
Yu, Y.4
Zhang, H.L.5
Sur, C.6
Mrozik, M.7
Pitzer, R.M.8
-
33
-
-
80053144357
-
Integrated megavoltage portal imaging with a 1.5 T MRI linac
-
Raaymakers BW, de Boer JC, Knox C, Crijns SP, Smit K, Stam MK, van den Bosch MR, Kok JG, Lagendijk JJ. Integrated megavoltage portal imaging with a 1.5 T MRI linac. Phys Med Biol. 2011;56(19):207–14.
-
(2011)
Phys Med Biol.
, vol.56
, Issue.19
, pp. 207-214
-
-
Raaymakers, B.W.1
de Boer, J.C.2
Knox, C.3
Crijns, S.P.4
Smit, K.5
Stam, M.K.6
van den Bosch, M.R.7
Kok, J.G.8
Lagendijk, J.J.9
-
34
-
-
84868116499
-
Internalization pathways into cancer cells of gadolinium-based radiosensitizing nanoparticles
-
Rima W, Sancey L, Aloy MT, Armandy E, Alcantara GB, Epicier T, Malchère A, Joly-Pottuz L, Mowat P, Lux F, et al. Internalization pathways into cancer cells of gadolinium-based radiosensitizing nanoparticles. Biomaterials. 2013;34(1):181–95.
-
(2013)
Biomaterials
, vol.34
, Issue.1
, pp. 181-195
-
-
Rima, W.1
Sancey, L.2
Aloy, M.T.3
Armandy, E.4
Alcantara, G.B.5
Epicier, T.6
Malchère, A.7
Joly-Pottuz, L.8
Mowat, P.9
Lux, F.10
-
35
-
-
0037151134
-
Tumour dose enhancement using modified megavoltage photon beams and contrast media
-
Robar JL, Riccio SA, Martin MA. Tumour dose enhancement using modified megavoltage photon beams and contrast media. Phys Med Biol. 2002;47:2433–49.
-
(2002)
Phys Med Biol
, vol.47
, pp. 2433-2449
-
-
Robar, J.L.1
Riccio, S.A.2
Martin, M.A.3
-
36
-
-
35348998981
-
Characterization of the theoretical radiation dose enhancement from nanoparticles
-
Roeske JC, Nunez L, Hoggarth M, Labay E, Weichselbaum RR. Characterization of the theoretical radiation dose enhancement from nanoparticles. Technol Cancer Res Treat. 2007;6(5):395–401.
-
(2007)
Technol Cancer Res Treat
, vol.6
, Issue.5
, pp. 395-401
-
-
Roeske, J.C.1
Nunez, L.2
Hoggarth, M.3
Labay, E.4
Weichselbaum, R.R.5
-
37
-
-
84907486504
-
The use of theranostic gadolinium-based nanoprobes to improve radiotherapy efficacy
-
Sancey L, Lux F, Kotb S, Roux S, Dufort S, Bianchi A, Crémillieux Y, Fries P, Coll JL, Rodriguez-Lafrasse C, et al. The use of theranostic gadolinium-based nanoprobes to improve radiotherapy efficacy. Br J Radiol. 2014;87(1041):20140134.
-
(2014)
Br J Radiol
, vol.87
, Issue.1041
, pp. 20140134
-
-
Sancey, L.1
Lux, F.2
Kotb, S.3
Roux, S.4
Dufort, S.5
Bianchi, A.6
Crémillieux, Y.7
Fries, P.8
Coll, J.L.9
Rodriguez-Lafrasse, C.10
-
38
-
-
84920137255
-
Cell localisation of gadolinium-based nanoparticles and related radiosensitising efficacy in glioblastoma cells
-
Stefančíková L, Porcel E, Eustache P, Li S, Salado D, Marco S, Guerquin-Kern JL, Réfrégiers M, Tillement O, Lux F, et al. Cell localisation of gadolinium-based nanoparticles and related radiosensitising efficacy in glioblastoma cells. Cancer Nanotechnol. 2014;5(1):6.
-
(2014)
Cancer Nanotechnol
, vol.5
, Issue.1
, pp. 6
-
-
Stefančíková, L.1
Porcel, E.2
Eustache, P.3
Li, S.4
Salado, D.5
Marco, S.6
Guerquin-Kern, J.L.7
Réfrégiers, M.8
Tillement, O.9
Lux, F.10
-
39
-
-
84890119444
-
Beam quality and dose perturbation of 6 MV flattening-filter-free linac
-
Tsiamas P, Sajo E, Cifter F, Theodorou K, Kappas C, Makrigiorgos M, Marcus K, Zygmanski P. Beam quality and dose perturbation of 6 MV flattening-filter-free linac. Phys Med. 2014;30(1):47–56.
-
(2014)
Phys Med
, vol.30
, Issue.1
, pp. 47-56
-
-
Tsiamas, P.1
Sajo, E.2
Cifter, F.3
Theodorou, K.4
Kappas, C.5
Makrigiorgos, M.6
Marcus, K.7
Zygmanski, P.8
-
40
-
-
79959566789
-
A modification of flattening filter free linac for IMRT
-
Tsiamas P, Seco J, Han Z, Bhagwat M, Maddox J, Kappas C, Theodorou K, Makrigiorgos M, Marcus K, Zygmanski P. A modification of flattening filter free linac for IMRT. Med Phys. 2011;38(5):2342–5239.
-
(2011)
Med Phys
, vol.38
, Issue.5
, pp. 2342-5239
-
-
Tsiamas, P.1
Seco, J.2
Han, Z.3
Bhagwat, M.4
Maddox, J.5
Kappas, C.6
Theodorou, K.7
Makrigiorgos, M.8
Marcus, K.9
Zygmanski, P.10
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