Studies on the Exposure of Gadolinium Containing Nanoparticles with Monochromatic X-rays Drive Advances in Radiation Therapy
Abstract
:1. Introduction
2. Monochromatic X-ray and the Auger Effect
3. Various Nanoparticles Have Been Developed as Sensitizing Agents for Radiation Therapy; Focusing on Gadolinium Nanoparticles
4. Mesoporous Silica Nanoparticle with Surface Gadolinium Attachment Represents a Recent Addition to an Expanding List of Nanoparticles
5. Monochromatic X-ray Exposure to Tumor Spheroids Incubated with Gadolinium-Loaded MSN
6. Further Potential of Using Gd–MSN
7. Tumor Organoids as a Convenient Tumor Model to Characterize Nanomaterials Loaded with High Z Element
8. Irradiation Other than X-Rays and Development of Various Nanomaterials
9. Summary
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Maurya, A.; Singh, A.K.; Mishra, G.; Kumari, K.; Rai, A.; Sharma, B.; Kulkarni, G.T.; Awasthi, R. Strategic use of nanotechnology in drug targeting and its consequences on human health: A focused review. Interv. Med. Appl. Sci. 2019, 11, 38–54. [Google Scholar] [CrossRef]
- Pérez-Herrero, E.; Fernández-Medarde, A. Advanced targeted therapies in cancer: Drug nanocarriers, the future of chemotherapy. Eur. J. Pharm. Biopharm. 2015, 93, 52–79. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Naz, S.; Shamoon, M.; Wang, R.; Zhang, L.; Zhou, J.; Chen, J. Advances in therapeutic implications of inorganic drug delivery Nano-Platforms for Cancer. Int. J. Mol. Sci. 2019, 20, 965. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Vallet-Regi, M.; Tamanoi, F. Chapter One-Overview of studies regarding mesoporous silica nanomaterials and their biomedical application. In The Enzymes; Academic Press: London, UK, 2018; Volume 43, pp. 1–10. [Google Scholar]
- Patel, S.; Kim, J.; Herrera, M.; Mukherjee, A.; Kabanov, A.V.; Sahay, G. Brief update on endocytosis of nanomedicines. Adv. Drug Deliv. Rev. 2019, 144, 90–111. [Google Scholar] [CrossRef] [PubMed]
- Maeda, H.; Wu, J.; Sawa, T.; Matsumura, Y.; Hori, K. Tumor vascular permeability and the EPR effect in macromolecular therapeutics: A review. J. Control. Release 2000, 65, 271–284. [Google Scholar] [CrossRef]
- Boateng, F.; Ngwa, W. Delivery of nanoparticle-based radiosensitizers for radiotherapy applications. Int. J. Mol. Sci. 2019, 21, 273. [Google Scholar] [CrossRef] [Green Version]
- K. Bakht, M.; Sadeghi, M.; Pourbaghi-Masouleh, M.; Tenreiro, C. Scope of nanotechnology-based radiation therapy and thermotherapy methods in cancer treatment. Curr. Cancer Drug Targets 2012, 12, 998–1015. [Google Scholar] [CrossRef]
- Matsumoto, K.; Saitoh, H.; Doan, T.L.H.; Shiro, A.; Nakai, K.; Komatsu, A.; Tsujimoto, M.; Yasuda, R.; Kawachi, T.; Tajima, T.; et al. Destruction of tumor mass by gadolinium-loaded nanoparticles irradiated with monochromatic X-rays: Implications for the Auger therapy. Sci. Rep. 2019, 9, 1–10. [Google Scholar] [CrossRef]
- Auger, P. The Auger effect. Surf. Sci. 1975, 48, 1–8. [Google Scholar] [CrossRef]
- Kuncic, Z.; Lacombe, S. Nanoparticle radio-enhancement: Principles, progress and application to cancer treatment. Phys. Med. Biol. 2018, 63, 02TR01. [Google Scholar] [CrossRef]
- Taupin, F.; Flaender, M.; Delorme, R.; Brochard, T.; Mayol, J.F.; Arnaud, J.; Perriat, P.; Sancey, L.; Lux, F.; Barth, R.F.; et al. Gadolinium nanoparticles and contrast agent as radiation sensitizers. Phys. Med. Biol. 2015, 60, 4449–4464. [Google Scholar] [CrossRef]
- Bushberg, J.T.; Seibert, J.A.; Leidholdt Jr, E.M.; Boone, J.M. The essential physics of medical imaging; Williams & Wilkins: Philadelphia, PA, US, 1994. [Google Scholar]
- Lewis, R. Medical applications of synchrotron radiation x-rays. Phys. Med. Biol. 1997, 42, 1213–1243. [Google Scholar] [CrossRef] [PubMed]
- Burattini, E.; Gambaccini, M.; Indovina, P.L.; Pocek, M.; Simonetti, G. Synchrotron radiation: A new source in x-ray mammography. Radiol. Med. 1992, 84, 181–188. [Google Scholar] [PubMed]
- Pole, D.; Popovic, K.; Williams, M. Contrast imaging with a monochromatic x-ray scanner. In Proceedings of the Medical Imaging, San Diego, CA, USA, 18 March 2008. [Google Scholar]
- Lawaczeck, R.; Arkadiev, V.; Diekmann, F.; Krumrey, M. Monochromatic x-rays in digital mammography. Invest. Radiol. 2005, 40, 33–39. [Google Scholar] [PubMed]
- Martin, R.F.; Feinendegen, L.E. The quest to exploit the Auger effect in cancer radiotherapy—A reflective review. Int. J. Radiat. Biol. 2016, 92, 617–632. [Google Scholar] [CrossRef]
- Yokoya, A.; Ito, T. Photon-induced Auger effect in biological systems: A review. Int. J. Radiat. Biol. 2017, 93, 743–756. [Google Scholar] [CrossRef]
- Fairchild, R.G.; Brill, A.B.; Ettinger, K.V. Radiation enhancement with iodinated deoxyuridine. Invest. Radiol. 1982, 17, 407–416. [Google Scholar] [CrossRef]
- Biston, M.C.; Joubert, A.; Adam, J.F.; Elleaume, H.; Bohic, S.; Charvet, A.M.; Esteve, F.; Foray, N.; Balosso, J. Cure of Fisher rats bearing radioresistant F98 glioma treated with cis-platinum and irradiated with monochromatic synchrotron X-rays. Cancer Res. 2004, 64, 2317–2323. [Google Scholar] [CrossRef] [Green Version]
- Ku, A.; Facca, V.J.; Cai, Z.; Reilly, R.M. Auger electrons for cancer therapy-a review. EJNMMI Radiopharm Chem. 2019, 4, 1–36. [Google Scholar] [CrossRef] [Green Version]
- Kassis, A.I.; Adelstein, S.J. Radiobiologic principles in radionuclide therapy. J. Nucl. Med. 2005, 46 (Suppl. 1), 4S–12S. [Google Scholar]
- Wu, C.; Cai, R.; Zhao, T.; Wu, L.; Zhang, L.; Jin, J.; Xu, L.; Li, P.; Li, T.; Zhang, M.; et al. Hyaluronic acid-functionalized gadolinium oxide nanoparticles for magnetic resonance imaging-guided radiotherapy of tumors. Nanoscale Res. Lett. 2020, 15, 94. [Google Scholar] [CrossRef] [PubMed]
- Li, F.F.; Zihou, L.; Jin, X.; Liu, Y.; Zhang, P.; Li, P.; Shen, Z.; Wu, A.G.; Chen, W.; Li, Q. Ultra-small gadolinium oxide nanocrystal sensitization of non-small-cell lung cancer cells toward X-ray irradiation by promoting cytostatic autophagy. Int. J. Nanomed. 2019, 14, 2415–2431. [Google Scholar] [CrossRef] [Green Version]
- Seo, S.-J.; Han, S.-M.; Cho, J.-H.; Hyodo, K.; Zaboronok, A.; You, H.; Peach, K.; Hill, M.A.; Kim, J.-K. Enhanced production of reactive oxygen species by gadolinium oxide nanoparticles under core–inner-shell excitation by proton or monochromatic X-ray irradiation: Implication of the contribution from the interatomic de-excitation-mediated nanoradiator effect to dose enhancement. Radiat. Environ. Biophys. 2015, 54, 423–431. [Google Scholar]
- Lux, F.; Tran, V.L.; Thomas, E.; Dufort, S.; Rossetti, F.; Martini, M.; Truillet, C.; Doussineau, T.; Bort, G.; Denat, F.; et al. AGuIX (®) from bench to bedside-transfer of an ultrasmall theranostic gadolinium-based nanoparticle to clinical medicine. Br. J. Radiol. 2019, 92, 20180365. [Google Scholar] [CrossRef]
- Stefančíková, L.; Porcel, E.; Eustache, P.; Li, S.; Salado, D.; Marco, S.; Guerquin-Kern, J.-L.; 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, 6. [Google Scholar]
- Lux, F.; Sancey, L.; Bianchi, A.; Crémillieux, Y.; Roux, S.; Tillement, O. Gadolinium-based nanoparticles for theranostic MRI-radiosensitization. Nanomedicine 2015, 10, 1801–1815. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kotb, S.; Detappe, A.; Lux, F.; Appaix, F.; Barbier, E.L.; Tran, V.-L.; Pissonneau, M.; Gehan, H.; Lefranc, F.; Rodriguez-Lafrasse, C.; et al. Gadolinium-based nanoparticles and radiation therapy for multiple brain melanoma metastases: Proof of concept before phase I trial. Theranostics 2016, 6, 418–427. [Google Scholar] [CrossRef]
- Bort, G.; Lux, F.; Dufort, S.; Cremillieux, Y.; Verry, C.; Tillement, O. EPR-mediated tumor targeting using ultrasmall-hybrid nanoparticles: From animal to human with theranostic AGuIX nanoparticles. Theranostics 2020, 10, 1319–1331. [Google Scholar] [CrossRef]
- Verry, C.; Sancey, L.; Dufort, S.; Le Duc, G.; Mendoza, C.; Lux, F.; Grand, S.; Arnaud, G.; Quesada, J.L.; Villa, J.; et al. Treatment of multiple brain metastases using gadolinium nanoparticles and radiotherapy: NANORAD, a phase I study protocol. BMJ Open 2019, 9, e023591. [Google Scholar] [CrossRef] [PubMed]
- Detappe, A.; Thomas, E.; Tibbitt, M.W.; Kunjachan, S.; Zavidij, O.; Parnandi, N.; Reznichenko, E.; Lux, F.; Tillement, O.; Berbeco, R. Ultrasmall silica-based bismuth gadolinium nanoparticles for dual magnetic resonance–computed tomography image guided radiation therapy. Nano Lett. 2017, 17, 1733–1740. [Google Scholar] [CrossRef] [Green Version]
- Yong, Y.; Zhang, C.; Gu, Z.; Du, J.; Guo, Z.; Dong, X.; Xie, J.; Zhang, G.; Liu, X.; Zhao, Y. Polyoxometalate-based radiosensitization platform for treating hypoxic tumors by attenuating radioresistance and enhancing radiation response. ACS Nano 2017, 11, 7164–7176. [Google Scholar] [CrossRef] [PubMed]
- Wang, L.; Lin, H.; Ma, L.; Jin, J.; Shen, T.; Wei, R.; Wang, X.; Ai, H.; Chen, Z.; Gao, J. Albumin-based nanoparticles loaded with hydrophobic gadolinium chelates as T1–T2 dual-mode contrast agents for accurate liver tumor imaging. Nanoscale 2017, 9, 4516–4523. [Google Scholar] [CrossRef] [PubMed]
- Korkusuz, H.; Ulbrich, K.; Welzel, K.; Koeberle, V.; Watcharin, W.; Bahr, U.; Chernikov, V.; Knobloch, T.; Petersen, S.; Huebner, F.; et al. Transferrin-coated gadolinium nanoparticles as MRI contrast agent. Mol. Imaging Biol. 2013, 15, 148–154. [Google Scholar] [CrossRef] [PubMed]
- Zhou, L.; Yang, T.; Wang, J.; Wang, Q.; Lv, X.; Ke, H.; Guo, Z.; Shen, J.; Wang, Y.; Xing, C.; et al. Size-tunable Gd2O3@albumin nanoparticles conjugating chlorin e6 for magnetic resonance imaging-guided photo-induced therapy. Theranostics 2017, 7, 764–774. [Google Scholar] [CrossRef]
- Takahashi, E.A.; Kallmes, D.F.; Mara, K.C.; Harmsen, W.S.; Misra, S. Nephrotoxicity of gadolinium-based contrast in the setting of renal artery intervention: Retrospective analysis with 10-year follow-up. Diagn. Interv. Radiol. 2018, 24, 378–384. [Google Scholar] [CrossRef]
- Kotb, S.; Piraquive, J.; Lamberton, F.; Lux, F.; Verset, M.; Di Cataldo, V.; Contamin, H.; Tillement, O.; Canet-Soulas, E.; Sancey, L. Ssafety evaluation and imaging properties of gadolinium-based nanoparticles in honhuman primates. Sci. Rep. 2016, 6, 35035. [Google Scholar] [CrossRef] [Green Version]
- Liong, M.; Lu, J.; Kovochich, M.; Xia, T.; Ruehm, S.G.; Nel, A.E.; Tamanoi, F.; Zink, J.I. Multifunctional inorganic nanoparticles for imaging, targeting, and drug delivery. ACS Nano 2008, 2, 889–896. [Google Scholar] [CrossRef] [Green Version]
- Yanes, R.E.; Tamanoi, F. Development of mesoporous silica nanomaterials as a vehicle for anticancer drug delivery. Ther. Deliv. 2012, 3, 389–404. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Gisbert-Garzaran, M.; Manzano, M.; Vallet-Regi, M. Mesoporous silica nanoparticles for the treatment of complex bone diseases: Bone cancer, bone infection and osteoporosis. Pharmaceutics 2020, 12, 83. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kwon, S.; Singh, R.K.; Perez, R.A.; Abou Neel, E.A.; Kim, H.W.; Chrzanowski, W. Silica-based mesoporous nanoparticles for controlled drug delivery. J. Tissue Eng. 2013, 4, 2041731413503357. [Google Scholar] [CrossRef] [Green Version]
- Li, T.; Shi, S.; Goel, S.; Shen, X.; Xie, X.; Chen, Z.; Zhang, H.; Li, S.; Qin, X.; Yang, H.; et al. Recent advancements in mesoporous silica nanoparticles towards therapeutic applications for cancer. Acta Biomater. 2019, 89, 1–13. [Google Scholar] [CrossRef] [PubMed]
- Lu, J.; Liong, M.; Sherman, S.; Xia, T.; Kovochich, M.; Nel, A.E.; Zink, J.I.; Tamanoi, F. Mesoporous silica nanoparticles for cancer therapy: Energy-dependent cellular uptake and delivery of paclitaxel to cancer cells. Nanobiotechnology 2007, 3, 89–95. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Mehta, G.; Hsiao, A.Y.; Ingram, M.; Luker, G.D.; Takayama, S. Opportunities and challenges for use of tumor spheroids as models to test drug delivery and efficacy. J. Control. Release 2012, 164, 192–204. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Eggl, E.; Schleede, S.; Bech, M.; Achterhold, K.; Loewen, R.; Ruth, R.D.; Pfeiffer, F. X-ray phase-contrast tomography with a compact laser-driven synchrotron source. Proc. Natl. Acad. Sci. USA 2015, 112, 5567–5572. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lu, J.; Liong, M.; Li, Z.; Zink, J.I.; Tamanoi, F. Biocompatibility, biodistribution, and drug-delivery efficiency of mesoporous silica nanoparticles for cancer therapy in animals. Small 2010, 6, 1794–1805. [Google Scholar] [CrossRef] [Green Version]
- Croissant, J.; Cattoen, X.; Man, M.W.; Gallud, A.; Raehm, L.; Trens, P.; Maynadier, M.; Durand, J.O. Biodegradable ethylene-bis(propyl)disulfide-based periodic mesoporous organosilica nanorods and nanospheres for efficient in-vitro drug delivery. Adv. Mater. 2014, 26, 6174–6180. [Google Scholar] [CrossRef] [PubMed]
- Maggini, L.; Cabrera, I.; Ruiz-Carretero, A.; Prasetyanto, E.A.; Robinet, E.; De Cola, L. Breakable mesoporous silica nanoparticles for targeted drug delivery. Nanoscale 2016, 8, 7240–7247. [Google Scholar] [CrossRef]
- Prasetyanto, E.A.; Bertucci, A.; Septiadi, D.; Corradini, R.; Castro-Hartmann, P.; De Cola, L. Breakable hybrid organosilica nanocapsules for protein delivery. Angew Chem Int. Ed. Engl. 2016, 55, 3323–3327. [Google Scholar] [CrossRef]
- Lu, N.; Fan, W.; Yi, X.; Wang, S.; Wang, Z.; Tian, R.; Jacobson, O.; Liu, Y.; Yung, B.C.; Zhang, G.; et al. Biodegradable hollow mesoporous organosilica nanotheranostics for mild hyperthermia-induced bubble-enhanced oxygen-sensitized radiotherapy. ACS Nano 2018, 12, 1580–1591. [Google Scholar] [CrossRef]
- Croissant, J.G.; Fatieiev, Y.; Julfakyan, K.; Lu, J.; Emwas, A.H.; Anjum, D.H.; Omar, H.; Tamanoi, F.; Zink, J.I.; Khashab, N.M. Biodegradable oxamide-phenylene-based mesoporous organosilica nanoparticles with unprecedented drug payloads for delivery in cells. Chemistry 2016, 22, 14806–14811. [Google Scholar] [CrossRef] [Green Version]
- Mai, N.X.D.; Birault, A.; Matsumoto, K.; Ta, H.K.T.; Intasa-Ard, S.G.; Morrison, K.; Thang, P.B.; Doan, T.L.H.; Tamanoi, F. Biodegradable periodic mesoporous organosilica (BPMO) loaded with daunorubicin: A promising nanoparticle-based anticancer drug. Chem. Med. Chem. 2020, 15, 593–599. [Google Scholar] [CrossRef] [PubMed]
- Lu, H.; Stenzel, M.H. Multicellular tumor spheroids (MCTS) as a 3D in vitro evaluation tool of nanoparticles. Small 2018, 14, e1702858. [Google Scholar] [CrossRef] [PubMed]
- Luo, Y.; Wang, C.; Hossain, M.; Qiao, Y.; Ma, L.; An, J.; Su, M. Three-dimensional microtissue assay for high-throughput cytotoxicity of nanoparticles. Anal. Chem. 2012, 84, 6731–6738. [Google Scholar] [CrossRef] [PubMed]
- Tarhini, A.; Kudchadkar, R.R. Predictive and on-treatment monitoring biomarkers in advanced melanoma: Moving toward personalized medicine. Cancer Treat. Rev. 2018, 71, 8–18. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Jin, M.-Z.; Han, R.-R.; Qiu, G.-Z.; Ju, X.-C.; Lou, G.; Jin, W.-L. Organoids: An intermediate modeling platform in precision oncology. Cancer Lett. 2018, 414, 174–180. [Google Scholar] [CrossRef]
- Barth, R.F.; Vicente, M.H.; Harling, O.K.; Kiger, W.S.; Riley, K.J.; Binns, P.J.; Wagner, F.M.; Suzuki, M.; Aihara, T.; Kato, I.; et al. Current status of boron neutron capture therapy of high grade gliomas and recurrent head and neck cancer. Radiat. Oncol. 2012, 7, 1–21. [Google Scholar] [CrossRef] [Green Version]
- Suzuki, M.; Kato, I.; Aihara, T.; Hiratsuka, J.; Yoshimura, K.; Niimi, M.; Kimura, Y.; Ariyoshi, Y.; Haginomori, S.; Sakurai, Y.; et al. Boron neutron capture therapy outcomes for advanced or recurrent head and neck cancer. J. Radiat. Res. 2014, 55, 146–153. [Google Scholar] [CrossRef]
- Nedunchezhian, K.; Aswath, N.; Thiruppathy, M.; Thirugnanamurthy, S. Boron neutron capture therapy—A literature review. J. Clin. Diagn. Res. 2016, 10, ZE01–ZE04. [Google Scholar] [CrossRef]
- Suzuki, M. Boron neutron capture therapy (BNCT): A unique role in radiotherapy with a view to entering the accelerator-based BNCT era. Int. J. Clin. Oncol. 2020, 25, 43–50. [Google Scholar] [CrossRef]
- Achilli, C.; Grandi, S.; Ciana, A.; Minetti, G. Bnct and nanoparticles: A long way to a routine clinical method. Int. J. Med. Nano Res. 2015, 2, 1–2. [Google Scholar] [CrossRef] [Green Version]
- Vares, G.; Jallet, V.; Matsumoto, Y.; Rentier, C.; Takayama, K.; Sasaki, T.; Hayashi, Y.; Kumada, H.; Sugawara, H. Functionalized mesoporous silica nanoparticles for innovative boron-neutron capture therapy of resistant cancers. Nanomed. Nanotechnol. Biol. Med. 2020, 27, 102195. [Google Scholar] [CrossRef] [PubMed]
- Barth, R.F.; Mi, P.; Yang, W.L. Boron delivery agents for neutron capture therapy of cancer. Cancer Commun. 2018, 38, 35. [Google Scholar] [CrossRef] [Green Version]
- Shih, J.L.A.; Brugger, R.M. Gadolinium as a neutron-capture therapy agent. Med Phys. 1992, 19, 733–744. [Google Scholar] [CrossRef] [PubMed]
- Cirrone, G.A.P.; Manti, L.; Margarone, D.; Petringa, G.; Giuffrida, L.; Minopoli, A.; Picciotto, A.; Russo, G.; Cammarata, F.; Pisciotta, P.; et al. First experimental proof of proton boron capture therapy (PBCT) to enhance protontherapy effectiveness. Sci. Rep. 2018, 8, 1141. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rackwitz, T.; Debus, J. Clinical applications of proton and carbon ion therapy. Semin. Oncol. 2019, 46, 226–232. [Google Scholar] [CrossRef] [PubMed]
- Wozny, A.-S.; Aloy, M.-T.; Alphonse, G.; Magné, N.; Janier, M.; Tillement, O.; Lux, F.; Beuve, M.; Rodriguez-Lafrasse, C. Gadolinium-based nanoparticles as sensitizing agents to carbon ions in head and neck tumor cells. Nanomed. Nanotechnol. Biol. Med. 2017, 13, 2655–2660. [Google Scholar] [CrossRef] [PubMed]
Radiosensitization Effect | |||||
---|---|---|---|---|---|
NPs | Size(nm) | In Vitro | In Vivo | Biological Effect | Reference |
Gadolinium oxide NPs | |||||
HA-Gd2O3 | 105 | Hep G2 | Mouse xenograft | - | [24] |
GONs | 3.1 | NSCLC | - | ROS autophagy | [25] |
Gd2O3@SiO2 | 42 | CT26 | - | ROS | [26] |
Polysiloxane-Gd chelates | |||||
AGulX | 3 | Panc-1, SQ20B, B16F10, U87MG, HeLa | Brain metastasis | ROS | [27,28,29,30,31,32] |
Rat brain tumor | DNA damage | ||||
SiBiGdNP | 4.5 | A549 NSCLC | Mouse xenograft | DNA damage | [33] |
Polyoxometrates-conjugated chiotosan | |||||
GdW10@CS | 30 | BEL-7402 | Mouse xenograft | ROS | [34] |
HeLa | DNA damage | ||||
Albumin NP-s-GD-DTPA | |||||
Gd2O3@BSA | 23.3 | HepG2 | - | ROS | [35] |
RAW264.7 | photocytotoxicity | ||||
MSN loaded with Gd | |||||
Gd-MSN | 139 | OVCAR8 | - | Tumor spheroid destruction | [9] |
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Tamanoi, F.; Matsumoto, K.; Doan, T.L.H.; Shiro, A.; Saitoh, H. Studies on the Exposure of Gadolinium Containing Nanoparticles with Monochromatic X-rays Drive Advances in Radiation Therapy. Nanomaterials 2020, 10, 1341. https://doi.org/10.3390/nano10071341
Tamanoi F, Matsumoto K, Doan TLH, Shiro A, Saitoh H. Studies on the Exposure of Gadolinium Containing Nanoparticles with Monochromatic X-rays Drive Advances in Radiation Therapy. Nanomaterials. 2020; 10(7):1341. https://doi.org/10.3390/nano10071341
Chicago/Turabian StyleTamanoi, Fuyuhiko, Kotaro Matsumoto, Tan Le Hoang Doan, Ayumi Shiro, and Hiroyuki Saitoh. 2020. "Studies on the Exposure of Gadolinium Containing Nanoparticles with Monochromatic X-rays Drive Advances in Radiation Therapy" Nanomaterials 10, no. 7: 1341. https://doi.org/10.3390/nano10071341
APA StyleTamanoi, F., Matsumoto, K., Doan, T. L. H., Shiro, A., & Saitoh, H. (2020). Studies on the Exposure of Gadolinium Containing Nanoparticles with Monochromatic X-rays Drive Advances in Radiation Therapy. Nanomaterials, 10(7), 1341. https://doi.org/10.3390/nano10071341