Light/magnetic hyperthermia triggered drug released from multi-functional thermo-sensitive magnetoliposomes for precise cancer synergetic theranostics

Journal of Controlled Release - Tập 272 - Trang 145-158 - 2018
Yuxin Guo1, Yang Zhang2, Jinyuan Ma1, Qi Li1, Yang Li3, Xinyi Zhou1, Dan Zhao1, Hua Song1, Qing Chen1, Xuan Zhu1
1Fujian Provincial Key Laboratory of Innovative Drug Target Research School of Pharmaceutical Sciences, Xiamen University, Xiamen, China
2State Key Laboratory of Molecular Vaccinology and Molecular, Diagnostics and Center for Molecular Imaging and Translational Medicine, School of Public Health, Xiamen University, Xiamen, China
3College of Materials, Xiamen University, Xiamen, China

Tài liệu tham khảo

Loomis, 2011, Nanoparticles with targeting, triggered release, and imaging functionality for cancer applications, Soft Matter, 7, 839, 10.1039/C0SM00534G Mallick, 2014, Liposomes: versatile and biocompatible nanovesicles for efficient biomolecules delivery, J. Nanosci. Nanotechnol., 14, 755, 10.1166/jnn.2014.9080 Allen, 2013, Liposomal drug delivery systems: from concept to clinical applications, Adv. Drug Deliv. Rev., 65, 36, 10.1016/j.addr.2012.09.037 Tahover, 2015, Emerging delivery systems to reduce doxorubicin cardiotoxicity and improve therapeutic index: focus on liposomes, Anti-Cancer Drugs, 26, 241, 10.1097/CAD.0000000000000182 T., 2011, Pegylated liposomal doxorubicin, Drugs, 71, 2531, 10.2165/11207510-000000000-00000 Du, 2015, Multi-functional liposomes showing radiofrequency-triggered release and magnetic resonance imaging for tumor multi-mechanism therapy, Nano, 7, 5411 May, 2013, Hyperthermia-induced drug targeting, Expert Opin. Drug Deliv., 10, 511, 10.1517/17425247.2013.758631 Gharib, 2014, Preparation, characterization and in vitro efficacy of magnetic nanoliposomes containing the artemisinin and transferrin, Daru, 22, 44, 10.1186/2008-2231-22-44 Jia, 2016, Multi-functionalized hyaluronic acid nanogels crosslinked with carbon dots as dual receptor-mediated targeting tumor theranostics, Carbohydr. Polym., 152, 391, 10.1016/j.carbpol.2016.06.109 Wang, 2011, Multifunctional polyglycerol-grafted Fe(3)O(4)@SiO(2) nanoparticles for targeting ovarian cancer cells, Biomaterials, 32, 2166, 10.1016/j.biomaterials.2010.11.042 Lee, 2016, Dual CD44 and folate receptor-targeted nanoparticles for cancer diagnosis and anticancer drug delivery, J. Control. Release, 236, 38, 10.1016/j.jconrel.2016.06.021 Bwatanglang, 2016, In vivo tumor targeting and anti-tumor effects of 5-fluororacil loaded, folic acid targeted quantum dot system, J. Colloid Interface Sci., 480, 146, 10.1016/j.jcis.2016.07.011 Sarkar, 2016, Targeted delivery of quercetin loaded mesoporous silica nanoparticles to the breast cancer cells, Biochim. Biophys. Acta, 1860, 2065, 10.1016/j.bbagen.2016.07.001 Low, 2008, Discovery and development of folic-acid-based receptor targeting for imaging and therapy of cancer and inflammatory diseases, Acc. Chem. Res., 41, 120, 10.1021/ar7000815 Akal, 2016, Biomedical applications of SPION@APTES@PEG-folic acid@carboxylated quercetin nanodrug on various cancer cells, Appl. Surf. Sci., 378, 572, 10.1016/j.apsusc.2016.03.217 Kuo, 2016, Progesterone receptor activation is required for folic acid-induced anti-proliferation in colorectal cancer cell lines, Cancer Lett., 378, 104, 10.1016/j.canlet.2016.05.019 Lu, 2013, Polyacrylamide hybrid nanogels for targeted cancer chemotherapy via co-delivery of gold nanoparticles and MTX, J. Colloid Interface Sci., 412, 46, 10.1016/j.jcis.2013.09.011 Li, 2013, Methotrexate-conjugated and hyperbranched polyglycerol-grafted Fe(3)O(4) magnetic nanoparticles for targeted anticancer effects, Eur. J. Pharm. Sci., 48, 111, 10.1016/j.ejps.2012.10.008 Wong, 2015, Mechanisms and implications of dual-acting methotrexate in folate-targeted nanotherapeutic delivery, Int. J. Mol. Sci., 16, 1772, 10.3390/ijms16011772 Wang, 2015, Dual-drug delivery by porous silicon nanoparticles for improved cellular uptake, sustained release, and combination therapy, Acta Biomater., 16, 206, 10.1016/j.actbio.2015.01.021 Li, 2014, Novel methotrexate prodrug-targeted drug delivery system based on PEG–lipid–PLA hybrid nanoparticles for enhanced anticancer efficacy and reduced toxicity of mitomycin C, J. Mater. Chem. B, 2, 6534, 10.1039/C4TB00499J Li, 2013, Mild hyperthermia triggered doxorubicin release from optimized stealth thermosensitive liposomes improves intratumoral drug delivery and efficacy, J. Control. Release, 168, 142, 10.1016/j.jconrel.2013.03.011 Oude, 2013, Strategies for triggered drug release from tumor targeted liposomes, Expert Opin. Drug Deliv., 10, 1399, 10.1517/17425247.2013.805742 Al-Ahmady, 2014, Monoclonal antibody-targeted, temperature-sensitive liposomes: in vivo tumor chemotherapeutics in combination with mild hyperthermia, J. Control. Release, 196, 332, 10.1016/j.jconrel.2014.10.013 Das, 2016, Tunable high aspect ratio iron oxide nanorods for enhanced hyperthermia, J. Phys. Chem. C, 120, 10086, 10.1021/acs.jpcc.6b02006 Mornet, 2004, Magnetic nanoparticle design for medical diagnosis and therapy, J. Mater. Chem., 14, 2161, 10.1039/b402025a Liu, 2016, A new method for preparing mesenchymal stem cells and labeling with Ferumoxytol for cell tracking by MRI, Sci. Rep., 6, 26271, 10.1038/srep26271 Ansari, 2014, Development of novel tumor-targeted theranostic nanoparticles activated by membrane-type matrix metalloproteinases for combined cancer magnetic resonance imaging and therapy, Small, 10, 566, 10.1002/smll.201301456 de Smet, 2010, Temperature-sensitive liposomes for doxorubicin delivery under MRI guidance, J. Control. Release, 143, 120, 10.1016/j.jconrel.2009.12.002 Grull, 2012, Hyperthermia-triggered drug delivery from temperature-sensitive liposomes using MRI-guided high intensity focused ultrasound, J. Control. Release, 161, 317, 10.1016/j.jconrel.2012.04.041 Amstad, 2011, Triggered release from liposomes through magnetic actuation of iron oxide nanoparticle containing membranes, Nano Lett., 11, 1664, 10.1021/nl2001499 Pradhan, 2010, Targeted temperature sensitive magnetic liposomes for thermo-chemotherapy, J. Control. Release, 142, 108, 10.1016/j.jconrel.2009.10.002 Chen, 2014, Low-dose chemotherapy of hepatocellular carcinoma through triggered-release from bilayer-decorated magnetoliposomes, Colloids Surf. B: Biointerfaces, 116, 452, 10.1016/j.colsurfb.2014.01.022 Espinosa, 2016, Duality of iron oxide nanoparticles in cancer therapy: amplification of heating efficiency by magnetic hyperthermia and photothermal bimodal treatment, ACS Nano, 10, 2436, 10.1021/acsnano.5b07249 Lammers, 2012, Personalized nanomedicine, Clin. Cancer Res., 18, 4889, 10.1158/1078-0432.CCR-12-1414 Kunjachan, 2015, Noninvasive imaging of nanomedicines and nanotheranostics: principles, progress, and prospects, Chem. Rev., 115, 10907, 10.1021/cr500314d von Roemeling, 2016, Breaking down the barriers to precision cancer nanomedicine, Trends Biotechnol. Yuan, 2016, Development of a Flow-through USP-4 Apparatus Drug Release Assay to Evaluate Doxorubicin Liposomes, AAPS J. Liu, 2015, Preparation and in vitro evaluation of a multifunctional iron silicate@liposome nanohybrid for pH-sensitive doxorubicin delivery and photoacoustic imaging, J. Nanomater., 2015, 1 Peng, 2016, Determination of the composition, encapsulation efficiency and loading capacity in protein drug delivery systems using circular dichroism spectroscopy, Anal. Chim. Acta, 937, 113, 10.1016/j.aca.2016.08.014 Monteiro, 2015, Antibacterial activity of chitosan nanofiber meshes with liposomes immobilized releasing gentamicin, Acta Biomater., 18, 196, 10.1016/j.actbio.2015.02.018 Han, 2016, Potential use of SERS-assisted theranostic strategy based on Fe3O4/Au cluster/shell nanocomposites for bio-detection, MRI, and magnetic hyperthermia, Mater. Sci. Eng. C Mater. Biol. Appl., 64, 199, 10.1016/j.msec.2016.03.090 Lange, 2009, Conjugating Methotrexate to magnetite (Fe3O4) nanoparticles via trichloro-s-triazine, J. Mater. Chem., 2009, 6400 Zhang, 2016, gamma-Fe2O3 nanocrystals-anchored macro/meso-porous graphene as a highly efficient adsorbent toward removal of methylene blue, J. Colloid Interface Sci., 476, 200, 10.1016/j.jcis.2016.05.025 Ma, 2004, Size dependence of specific power absorption of Fe3O4 particles in AC magnetic field, J. Magn. Magn. Mater., 268, 33, 10.1016/S0304-8853(03)00426-8 Salunkhe, 2014, Magnetic hyperthermia with magnetic nanoparticles: a status review, Curr. Top. Med. Chem., 14, 572, 10.2174/1568026614666140118203550 Kneidl, 2014, Thermosensitive liposomal drug delivery systems: state of the art review, Int. J. Nanomedicine, 9, 4387 Yoo, 2013, Magnetically triggered dual functional nanoparticles for resistance-free apoptotic hyperthermia, Angew. Chem., 52, 13047, 10.1002/anie.201306557 Li, 2015, Self-targeted, shape-assisted, and controlled-release self-delivery nanodrug for synergistic targeting/anticancer effect of cytoplasm and nucleus of cancer cells, ACS Appl. Mater. Interfaces, 7, 25553, 10.1021/acsami.5b07348 Li, 2015, Orthogonally functionalized nanoscale micelles for active targeted codelivery of methotrexate and mitomycin C with synergistic anticancer effect, Mol. Pharm., 12, 769, 10.1021/mp5006068 Morrison, 2012, Inflammation and cancer: a comparative view, J. Vet. Intern. Med., 26, 18, 10.1111/j.1939-1676.2011.00836.x Moghadam, 2015, Numerical simulation of the tumor interstitial fluid transport: consideration of drug delivery mechanism, Microvasc. Res., 101, 62, 10.1016/j.mvr.2015.06.007 Lyons, 2015, Imaging mouse models of cancer, Cancer J., 21, 152, 10.1097/PPO.0000000000000112