- Ankamwar B., Lai T., Huang J., Liu R., Hsiao M., Chen C., Hwu Y. 2010, Biocompatibility of Fe3O4 nanoparticles evaluated by in vitro cytotoxicity assays using normal, glia and breast cancer cells. Nanotechnology, 21(7):075102.
- Azar N.T., Mutlu P., Khodadust R., Gunduz U. 2013. Poly (amidoamine) (PAMAM) nanoparticles: Synthesis and biomedical applications. Journal of Biology and Chemistry, 41(3):289‐2
- Babaei E., Sadeghizadeh M., Hassan Z.M., Feizi M.A., Najafi F., Hashemi S.M. 2012. Dendrosomal curcumin significantly suppresses cancer cell proliferation in vitro and in vivo. International Immunopharmacology, 12(1):226‐
- Bakhtiary Z., Saei A.A., Hajipour M.J., Raoufi M., Vermesh O., Mahmoudi M. 2016. Targeted superparamagnetic iron oxide nanoparticles for early detection of cancer: Possibilities and challenges. Nanomedicine, 12(2):287‐
- Beigi F., Fatahian S., Shahbazi Gahrouei D. 2019. In-Vitro Toxicity Assessment of polydopamine-coated and uncoated Fe3o4 nanoparticles in cell line B16-F10 (melanoma cell). Journal of Isfahan University of Medical Sciences,37(533):762-767.
- Berry C.C., Wells S., Charles S.., Curtis AS. 2003. Dextran and albumin derivatised iron oxide nanoparticles: influence on fibroblasts in vitro. Biomaterials, 24(25):4551-4557.
- Cai W., Wan J. 2007. Facile synthesis of superparamagnetic magnetite nanoparticles in liquid polyols. Journal of Colloid and Interface Science, 305(2):366-370.
- Calderón M., Quadir M.A., Sharma S.K., Haag R. 2010. Dendritic polyglycerols for biomedical applications. Advanced Materials, 22(2):190218.
- Calderón M., Quadir M.A., Strumia M., Haag R. 2010. Functional dendritic polymer architectures as stimuli-responsive nanocarriers. Biochimie, 92(9):1242-1251.
- Chobot V., Hadacek F., Kubicova L. 2014. Effects of selected dietary secondary metabolites on reactive oxygen species production caused by iron (II) autoxidation. Molecules, 19(12):20023-20033.
- Fatahian S., Shahbazi-Gahrouei D., Pouladian M., Yousefi M.H., Amiri G.R., Noori A. 2012. Biodistribution and toxicity assessment of radiolabeled and DMSA coated ferrite nanoparticles in mice. Journal of Radioanalyticcal and Nuclear Chemistry, 293(3): 915-921.
- Gautier J., Allard‐Vannier E., Munnier E., Soucé M., Chourpa I. 2013. Recent advances in theranostic nanocarriers of doxorubicin based on iron oxide and gold nanoparticles. Journal of Controlled Release,169(1‐2):48‐
- Gu X. Zhang Y., Sun H. Song X., Fu C., Dong P. 2015. Mussel-inspired polydopamine coated iron oxide nanoparticles for biomedical application. Journal of Nanomaterials, 2015:154592.
- Javid, Ahmadian S., Saboury A.A., Kalantar S.M., Rezaei-Zarchi S. 2013. Chitosan-coated superparamagnetic iron oxide nanoparticles for doxorubicin delivery: synthesis and anticancer effect against human ovarian cancer cells. Chemical Biology and Drug Design, 82(3):296-306.
- Liao N., Wu M., Pan F., Lin J., Li Z., Zhang D. 2016. Poly (dopamine) coated superparamagnetic iron oxide nanocluster for noninvasive labeling, tracking, and targeted delivery of adipose tissue-derived stem cells. Scientific Reports, 6:18746.
- Majewski A.P., Schallon A., Jerome V., Freitag R., Muller A.H., Schmalz H. 2012. Dual-responsive magnetic core-shell nanoparticles for nonviral gene delivery and cell separation. Biomacromolecules, 13(3): 857-866.
- Moghimi S.M., Hunter A.C., Murray J.C. 2001. Long‐circulating and target‐specific nanoparticles: Theory to practice. Pharmacological Reviews, 53(2):283‐
- Moradi K., Shahbazi-Gahrouei D., Malik Shah Abdul Majid A., Suhaimi J.M., Moradi K.B., Shahbazi-Gahrouei S. 2017. In vitro study of SPIONs-C595 as molecular imaging probe for specific breast cancer (MCF-7) cells detection. Iranian Biomedical Journal, 21(6):360-368.
- Munnier E., Cohen‐Jonathan S., Hervé K., Linassier C., Soucé M., Dubois P. 2011. Doxorubicin delivered to MCF‐7 cancer cells by superparamagnetic iron oxide nanoparticles: Effects on subcellular distribution and cytotoxicity. Journal of Nanoparticle Research,13(3):959‐
- Pankhurst Q.A., Thanh N.T.K., Jones S.K., Dobson J. 2009. Progress in applications of magnetic nanoparticles in biomedicine. Journal of Physics D: Applied Physics, 42(22):224001.
- Shahbazi-Gahrouei D., Moradi K.P., Moradi K.B., Shahbazi-Gahrouei S. 2019. Medical imaging modalities using nanoprobes for cancer diagnosis: A literature review on recent findings. Journal of Research in Medical Sciences, 24: 38.
- Shahbazi-Gahrouei D., Moradi Khaniabadi P., Shahbazi-Gahrouei S., Khorasani A., Mahmoudi F. 2019. A literature review on multimodality molecular imaging nanoprobes for cancer detection. Polish Journal of Medical Physics and Engineering, 25(2):57-68.
- Unsoy G., Gunduz U. 2017. Targeted drug delivery via chitosan‐coated magnetic nanoparticles. In: Andronescu E, Grumezescu AM, editors. Nanostructures drug delivery. Amsterdam: Elsevier, Pp:835‐
- Veiseh O., Gunn J.W., Zhang M. 2010. Design and fabrication of magnetic nanoparticles for targeted drug delivery and imaging. Advanced Drug Delivery Reviews, 62(3):284‐
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