The effect of low- and high-penetration light on localized cancer therapy
Tài liệu tham khảo
Goodman, 1946, Use of Methyl-Bis(Beta-Chloroethyl)amine Hydrochloride and Tris(Beta-Chloroethyl)amine Hydrochloride for Hodgkin's Disease, Lymphosarcoma, Leukemia and Certain Allied and miscellaneous Disorders, JAMA, 132, 126, 10.1001/jama.1946.02870380008004
Gregoriadis, 1974, Drug-carrier potential of liposomes in cancer chemotherapy, Lancet, 1, 1313, 10.1016/S0140-6736(74)90682-5
Kohler, 1975, Continuous cultures of fused cells secreting antibody of predefined specificity, Nature, 256, 495, 10.1038/256495a0
Papahadjopoulos, 1991, Sterically stabilized liposomes: improvements in pharmacokinetics and antitumor therapeutic efficacy, Proc. Natl. Acad. Sci. U. S. A., 88, 11460, 10.1073/pnas.88.24.11460
Elbashir, 2001, Duplexes of 21-nucleotide RNAs mediate RNA interference in cultured mammalian cells, Nature, 411, 494, 10.1038/35078107
Schork, 2015, Personalized medicine: Time for one-person trials, Nature, 520, 609, 10.1038/520609a
Kreuter, 2007, Nanoparticles - a historical perspective, Int. J. Pharm., 331, 1, 10.1016/j.ijpharm.2006.10.021
Opoku-Damoah, 2016, Versatile Nanosystem-based Cancer Theranostics: Design Inspiration and Predetermined Routing, Theranostics, 6, 986, 10.7150/thno.14860
Liu, 2014, Microfluidic assembly of monodisperse multistage pH-responsive polymer/porous silicon composites for precisely controlled multi-drug delivery, Small, 10, 2029, 10.1002/smll.201303740
May, 2013, Thermosensitive liposomes for the delivery of gemcitabine and oxaliplatin to tumors, Mol. Pharm., 10, 4499, 10.1021/mp400321e
Wang, 2013, Glutathione-triggered "off-on" release of anticancer drugs from dendrimer-encapsulated gold nanoparticles, J. Am. Chem. Soc., 135, 9805, 10.1021/ja402903h
Gu, 2009, Protein nanocapsule weaved with enzymatically degradable polymeric network, Nano Lett., 9, 4533, 10.1021/nl902935b
Sneider, 2017, Remotely Triggered Nano-Theranostics for Cancer applications, Nano, 1, 1
Most, 2008, Decoding dangerous death: how cytotoxic chemotherapy invokes inflammation, immunity or nothing at all, Cell Death Differ., 15, 13, 10.1038/sj.cdd.4402255
Demaria, 2017, Cellular Senescence Promotes adverse Effects of Chemotherapy and Cancer Relapse, Cancer Discov, 7, 165, 10.1158/2159-8290.CD-16-0241
Schünemann, 2008, Cancer fatigue syndrome reflects clinically non-overt heart failure: an approach towards onco-cardiology, Nat. Clin. Pract. Oncol., 5, 632, 10.1038/ncponc1226
Huo, 2016, Triggered-release drug delivery nanosystems for cancer therapy by intravenous injection: where are we now?, Expert Opin Drug Deliv, 13, 1195, 10.1080/17425247.2016.1213241
Y. Wang, M.S. Shim, N.S. Levinson, H.W. Sung, Y. Xia, Stimuli-Responsive Materials for Controlled Release of Theranostic Agents, Adv. Funct. Mater. 2014 Jul 16;24(27):4206–4220, 24 (2014) 4206–4220.
Lin, 2013, Photosensitizer-loaded gold vesicles with strong plasmonic coupling effect for imaging-guided photothermal/photodynamic therapy, ACS Nano, 7, 5320, 10.1021/nn4011686
Feng, 2015, A novel folic acid-conjugated TiO₂-SiO₂ photosensitizer for cancer targeting in photodynamic therapy, Colloids Surf. B: Biointerfaces, 125, 197, 10.1016/j.colsurfb.2014.11.035
Park, 2015, Photodynamic Anticancer Activities of Multifunctional Cobalt Ferrite Nanoparticles in various Cancer Cells, J. Biomed. Nanotechnol., 11, 226, 10.1166/jbn.2015.2031
Ikeda, 2007, New challenges in the field of breast cancer therapy-do we need surgery for the patients with breast cancer?, Breast Cancer, 14, 37, 10.2325/jbcs.14.37
Meurisse, 2002, New challenges in the treatment of early breast cancer or surgery for early breast cancer ... Can less be more?, Acta Chir. Belg., 102, 97, 10.1080/00015458.2002.11679274
Cui, 2013, In vivo targeted deep-tissue photodynamic therapy based on near-infrared light triggered upconversion nanoconstruct, ACS Nano, 7, 676, 10.1021/nn304872n
Liu, 2012, Covalently assembled NIR nanoplatform for simultaneous fluorescence imaging and photodynamic therapy of cancer cells, ACS Nano, 6, 4054, 10.1021/nn300436b
Chan, 2010, Spatiotemporal controlled delivery of nanoparticles to injured vasculature, Proc. Natl. Acad. Sci. U. S. A., 107, 2213, 10.1073/pnas.0914585107
Talelli, 2010, Micelles based on HPMA copolymers, Adv. Drug Deliv. Rev., 62, 231, 10.1016/j.addr.2009.11.029
Christian, 2009, Polymersome carriers: from self-assembly to siRNA and protein therapeutics, Eur. J. Pharm. Biopharm., 71, 463, 10.1016/j.ejpb.2008.09.025
Bozic, 2013, Evolutionary dynamics of cancer in response to targeted combination therapy, elife, 2, 10.7554/eLife.00747
Barhoumi, 2015, Ultraviolet light-mediated drug delivery: Principles, applications, and challenges, J. Control. Release, 219, 31, 10.1016/j.jconrel.2015.07.018
Hashmi, 2010, Role of low-level laser therapy in neurorehabilitation, PM R, 2, S292, 10.1016/j.pmrj.2010.10.013
Rojas, 2011, Low-level light therapy of the eye and brain, Eye Brain, 3, 49
Peters, 2018, Review of emerging surgical robotic technology, Surg. Endosc., 32, 1636, 10.1007/s00464-018-6079-2
Chen, 2012, α-NaYbF4:Tm(3+)/CaF2 core/shell nanoparticles with efficient near-infrared to near-infrared upconversion for high-contrast deep tissue bioimaging, ACS Nano, 6, 8280, 10.1021/nn302972r
Ntziachristos, 2000, Diffuse optical tomography of breast after indocyanine green enhancement, Proc. Natl. Acad. Sci. U. S. A., 97, 2767, 10.1073/pnas.040570597
Fang, 2012, Photo- and pH-triggered Release of Anticancer Drugs from Mesoporous Silica-Coated Pd@Ag Nanoparticles, Adv. Funct. Mater., 22, 842, 10.1002/adfm.201101960
Mura, 2013, Stimuli-responsive nanocarriers for drug delivery, Nat. Mater., 12, 991, 10.1038/nmat3776
Li, 2016, Iron overload induced by ferric ammonium citrate triggers reactive oxygen species-mediated apoptosis via both extrinsic and intrinsic pathways in human hepatic cells, Hum. Exp. Toxicol., 35, 598, 10.1177/0960327115597312
Hart, 1977, Evidence that pyrimidine dimers in DNA can give rise to tumors, Proc. Natl. Acad. Sci. U. S. A., 74, 5574, 10.1073/pnas.74.12.5574
Kuijk, 1991, Effects of ultraviolet light on the eye: role of protective glasses, Environ. Health Perspect., 96, 177, 10.1289/ehp.9196177
Clydesdale, 2001, Ultraviolet light induced injury: immunological and inflammatory effects, Immunol. Cell Biol., 79, 547, 10.1046/j.1440-1711.2001.01047.x
T.M. Liu, J. Yu, C.A. Chang, A. Chiou, H.K. Chiang, Y.C. Chuang, C.H. Wu, C.H. Hsu, P.A. Chen, C.C. Huang, One-step shell polymerization of inorganic nanoparticles and their applications in SERS/nonlinear optical imaging, drug delivery, and catalysis, Sci. Rep., 4 (2014) 5593.
Hu, 2009, Efficient near-IR hyperthermia and intense nonlinear optical imaging contrast on the gold nanorod-in-shell nanostructures, J. Am. Chem. Soc., 131, 14186, 10.1021/ja9062772
Liu, 2016, Revisiting the classification of NIR-absorbing/emitting nanomaterials for in vivo bioapplications, NPG Asia Mater, 8, 1, 10.1038/am.2016.106
Smith, 2009, Bioimaging: second window for in vivo imaging, Nat. Nanotechnol., 4, 710, 10.1038/nnano.2009.326
Gao, 2004, In vivo cancer targeting and imaging with semiconductor quantum dots, Nat. Biotechnol., 22, 969, 10.1038/nbt994
Zhan, 2013, Optimization of optical excitation of upconversion nanoparticles for rapid microscopy and deeper tissue imaging with higher quantum yield, Theranostics, 3, 306, 10.7150/thno.6007
Kamimura, 2017, Over-1000nm near-infrared fluorescent biodegradable polymer nanoparticles for deep tissue in vivo imaging in the second biological window, Polym. J., 49, 799, 10.1038/pj.2017.59
Wan, 2018, A bright organic NIR-II nanofluorophore for three-dimensional imaging into biological tissues, Nat. Commun., 9, 1171, 10.1038/s41467-018-03505-4
Koji, 1980, Photoresponsive membranes. Regulation of membrane properties by photoreversible cis-trans isomerization of azobenzenes, Chem. Lett., 9, 421, 10.1246/cl.1980.421
Fomina, 2012, Photochemical mechanisms of light-triggered release from nanocarriers, Adv. Drug Deliv. Rev., 64, 1005, 10.1016/j.addr.2012.02.006
Leung, 2012, Light-activated content release from liposomes, Theranostics, 1020, 10.7150/thno.4847
Puri, 2013, Phototriggerable liposomes: current research and future perspectives, Pharmaceutics, 6, 1, 10.3390/pharmaceutics6010001
Yagai, 2005, Photocontrollable self-assembly, Chemistry, 11, 4054, 10.1002/chem.200401323
Liu, 2017, Photocontrollable Intermittent Release of Doxorubicin Hydrochloride from Liposomes embedded by Azobenzene-Contained Glycolipid, Langmuir, 33, 1004, 10.1021/acs.langmuir.6b03051
Waldeck, 1991, Photoisomerization dynamics of stilbenes, Chem. Rev., 91, 415, 10.1021/cr00003a007
Tong, 2012, Photoswitchable nanoparticles for triggered tissue penetration and drug delivery, J. Am. Chem. Soc., 134, 8848, 10.1021/ja211888a
Liu, 2017, PEGylated Perylenemonoimide-Dithienylethene for Super-Resolution Imaging of Liposomes, ACS Appl. Mater. Interfaces, 9, 10338, 10.1021/acsami.6b15076
Presa, 2018, Photoactivation of the Cytotoxic Properties of platinum(II) Complexes through Ligand Photoswitching, Inorg. Chem., 57, 4009, 10.1021/acs.inorgchem.8b00146
Lee, 2007, Light-induced reversible formation of polymeric micelles, Angew. Chem. Int. Ed. Eng., 46, 2453, 10.1002/anie.200604278
Tong, 2005, How can azobenzene block copolymer vesicles be dissociated and reformed by light?, J. Phys. Chem. B, 109, 20281, 10.1021/jp0524274
Menon, 2011, Photoresponsive soft materials: Synthesis and photophysical studies of a stilbene-based diblock copolymer, J Polym Sci Part A: Polym Chem, 49, 5063, 10.1002/pola.24973
Chen, 2011, Amphiphilic diblock copolymer with dithienylethene pendants: synthesis and photo-modulated self-assembly, Macromol. Rapid Commun., 32, 977, 10.1002/marc.201100142
Zhao, 2009, Photocontrollable block copolymer micelles: what can we control?, J. Mater. Chem., 19, 4887, 10.1039/b819968j
Zhao, 2012, Light-Responsive Block Copolymer Micelles, Macromolecules, 45, 3647, 10.1021/ma300094t
Rad, 2018, Enhanced Photogeneration of Reactive Oxygen Species and Targeted Photothermal Therapy of C6 Glioma Brain Cancer Cells by Folate-Conjugated Gold−Photoactive Polymer Nanoparticles, ACS Appl. Mater. Interfaces, 10, 19483, 10.1021/acsami.8b05252
Croissant, 2014, Two-photon-triggered drug delivery via fluorescent nanovalves, Small, 10, 1752, 10.1002/smll.201400042
Yan, 2012, Functional mesoporous silica nanoparticles for photothermal-controlled drug delivery in vivo, Angew. Chem. Int. Ed. Eng., 51, 8373, 10.1002/anie.201203993
Lu, 2008, Light-activated nanoimpeller-controlled drug release in cancer cells, Small, 4, 421, 10.1002/smll.200700903
Angelos, 2007, Photo-Driven Expulsion of Molecules from Mesostructured Silica Nanoparticles, J. Phys. Chem. C, 111, 6589, 10.1021/jp070721l
Kaplan, 1978, Rapid photolytic release of adenosine 5′-triphosphate from a protected analogue: utilization by the Na:K pump of human red blood cell ghosts, Biochemistry, 17, 1929, 10.1021/bi00603a020
Xiao, 2016, Thermosensitive and Photocleavable Polyaspartamide Derivatives for Drug delivery, J Polym Sci A, 54, 2855, 10.1002/pola.28171
Li, 2018, Preparation of photo-responsive poly(ethylene glycol) microparticles and their influence on cell viability, J. Colloid Interface Sci., 514, 182, 10.1016/j.jcis.2017.12.031
Brieke, 2012, Light-controlled tools, Angew. Chem. Int. Ed. Eng., 51, 8446, 10.1002/anie.201202134
Liu, 2013, UV- and NIR-responsive polymeric nanomedicines for on-demand drug delivery, Polym. Chem., 4, 3431, 10.1039/c3py21121e
Klán, 2013, Photoremovable protecting groups in chemistry and biology: reaction mechanisms and efficacy, Chem. Rev., 113, 119, 10.1021/cr300177k
Huang, 2014, Photo-responsive polymeric micelles, Soft Matter, 10, 6121, 10.1039/C4SM00871E
Wu, 2018, Reduction/photo dual-responsive polymeric prodrug nanoparticles for programmed siRNA and doxorubicin delivery, Biomater Sci, 6, 1457, 10.1039/C8BM00226F
Fournier, 2013, A blue-absorbing photolabile protecting group for in vivo chromatically orthogonal photoactivation, ACS Chem. Biol., 8, 1528, 10.1021/cb400178m
Nomula, 2017, Photodynamic effect of light-harvesting, long-lived triplet excited state Ruthenium(II)-polyimine-coumarin complexes: DNA binding, photocleavage and anticancer studies, Mater. Sci. Eng. C Mater. Biol. Appl., 79, 710, 10.1016/j.msec.2017.05.123
Azagarsamy, 2013, Wavelength Controlled Photocleavage for Orthogonal and Sequential Release of Multiple Proteins, Angew. Chem. Int. Ed. Eng., 52, 13803, 10.1002/anie.201308174
Fomina, 2010, UV and near-IR triggered release from polymeric nanoparticles, J. Am. Chem. Soc., 132, 9540, 10.1021/ja102595j
Jiang, 2006, Toward photocontrolled release using light-dissociable block copolymer micelles, Macromolecules, 39, 4633, 10.1021/ma060142z
Lv, 2012, Photodegradable polyurethane self-assembled nanoparticles for photocontrollable release, Langmuir, 28, 9387, 10.1021/la301534h
Li, 2003, Dithiane-based photolabile amphiphiles: toward photolabile liposomes, Langmuir, 19, 6381, 10.1021/la034188m
Wan, 2002, Liposomes from novel photolabile phospholipids: light-induced unloading of small molecules as monitored by PFG NMR, J. Am. Chem. Soc., 124, 5610, 10.1021/ja016874i
Cabane, 2011, Photoresponsive polymersomes as smart, triggerable nanocarriers, Soft Matter, 7, 9167, 10.1039/c1sm05880k
Lin, 2010, Anticancer drug release from a mesoporous silica based nanophotocage regulated by either a one- or two-photon process, J. Am. Chem. Soc., 132, 10645, 10.1021/ja103415t
Wu, 2018, Photoresponsive Nanovehicle for two Independent Wavelength Light-Triggered Sequential Release of P-gp shRNA and Doxorubicin to Optimize and Enhance Synergistic Therapy of Multidrug-Resistant Cancer, ACS Appl. Mater. Interfaces, 10, 19416, 10.1021/acsami.8b03823
Torchilin, 2014, Multifunctional, stimuli-sensitive nanoparticulate systems for drug delivery, Nat. Rev. Drug Discov., 13, 813, 10.1038/nrd4333
Hobbs, 1998, Regulation of transport pathways in tumor vessels: role of tumor type and microenvironment, Proc. Natl. Acad. Sci. U. S. A., 95, 4607, 10.1073/pnas.95.8.4607
Trapani, 2012, Recent advances in ligand targeted therapy, J. Drug Target., 20, 1, 10.3109/1061186X.2011.611518
Salzano, 2016, Mixed Nanosized Polymeric Micelles as Promoter of Doxorubicin and miRNA-34a Co-delivery Triggered by dual Stimuli in Tumor Tissue, Small, 12, 4837, 10.1002/smll.201600925
Dvir, 2010, Photo-targeted nanoparticles, Nano Lett., 10, 250, 10.1021/nl903411s
Hansen, 2012, Constrained and UV-activatable cell-penetrating peptides for intracellular delivery of liposomes, J. Control. Release, 164, 87, 10.1016/j.jconrel.2012.10.008
Hansen, 2012, Constrained and UV-activatable cell-penetrating peptides for intracellular delivery of liposomes, J. Control. Release, 164, 87, 10.1016/j.jconrel.2012.10.008
Fan, 2012, Photocontrolled targeted drug delivery: photocaged biologically active folic acid as a light-responsive tumor-targeting molecule, Angew. Chem. Int. Ed. Eng., 51, 8806, 10.1002/anie.201203339
Kim, 2018, Photoswitching of Cell Penetration of Amphipathic Peptides by Control of α-Helical Conformation, Biomacromolecules, 19, 2863, 10.1021/acs.biomac.8b00428
Weissleder, 2001, A clearer vision for in vivo imaging, Nat. Biotechnol., 19, 316, 10.1038/86684
Lim, 2018, Near-infrared light for on-demand drug delivery, Journal of Biomaterials Science, 29, 750, 10.1080/09205063.2017.1398994
Zhou, 2014, Reactive Oxygen Species in Normal and Tumor Stem Cells, Adv. Cancer Res., 122, 1, 10.1016/B978-0-12-420117-0.00001-3
Ray, 2012, Reactive oxygen species (ROS) homeostasis and redox regulation in cellular signaling, Cell. Signal., 24, 981, 10.1016/j.cellsig.2012.01.008
Zhou, 2016, Reactive oxygen species generating systems meeting challenges of photodynamic cancer therapy, Chem. Soc. Rev., 45, 6597, 10.1039/C6CS00271D
Toyokuni, 1995, Persistent oxidative stress in cancer, FEBS Lett., 358, 1, 10.1016/0014-5793(94)01368-B
Trachootham, 2009, Targeting cancer cells by ROS-mediated mechanisms: a radical therapeutic approach?, Nat. Rev. Drug Discov., 8, 579, 10.1038/nrd2803
Liou, 2010, Reactive oxygen species in cancer, Free Radic. Res., 44, 10.3109/10715761003667554
Panieri, 2016, ROS homeostasis and metabolism: a dangerous liason in cancer cells, Cell Death &Amp, Disease, 7
Shen, 2016, Two-photon excitation nanoparticles for photodynamic therapy, Chem. Soc. Rev., 45, 6725, 10.1039/C6CS00442C
van Straten, 2017, Oncologic Photodynamic Therapy: Basic Principles, Current Clinical Status and Future Directions, Cancer, 9, 19, 10.3390/cancers9020019
Oliveira, 2017, A first in human study using photodynamic therapy with Redaporfin in advanced head and neck cancer, J. Clin. Oncol., 35, e14056, 10.1200/JCO.2017.35.15_suppl.e14056
Abrahamse, 2016, New photosensitizers for photodynamic therapy, The Biochemical journal, 473, 347, 10.1042/BJ20150942
Patel, 2016, Highly Effective Dual-Function Near-infrared (NIR) Photosensitizer for Fluorescence Imaging and Photodynamic Therapy (PDT) of Cancer, J. Med. Chem., 59, 9774, 10.1021/acs.jmedchem.6b00890
Kerong, 2017, Recent Progress in near infrared Light Triggered Photodynamic Therapy, Small, 13, 1702299, 10.1002/smll.201702299
Karimi, 2016, Smart micro/nanoparticles in stimulus-responsive drug/gene delivery systems, Chem. Soc. Rev., 45, 1457, 10.1039/C5CS00798D
Thapa, 2016, Far-Red Light-Activatable Prodrug of Paclitaxel for the combined Effects of Photodynamic Therapy and Site-specific Paclitaxel Chemotherapy, J. Med. Chem., 59, 3204, 10.1021/acs.jmedchem.5b01971
Ding, 2017, Vol. 7, 35086
Liu, 2016, Theoretical Comparison of Optical Properties of Near-infrared Colloidal Plasmonic Nanoparticles, Sci. Rep., 6, 34189, 10.1038/srep34189
Vijayaraghavan, 2015, Complete destruction of deep-tissue buried tumors via combination of gene silencing and gold nanoechinus-mediated photodynamic therapy, Biomaterials, 62, 13, 10.1016/j.biomaterials.2015.05.039
Durantini, 2018, BODIPYs to the rescue: potential applications in photodynamic inactivation, Eur. J. Med. Chem., 144, 651, 10.1016/j.ejmech.2017.12.068
Kamkaew, 2013, BODIPY Dyes In Photodynamic Therapy, Chemical Society reviews, 42, 10.1039/C2CS35216H
Liu, 2018, Oxygen Self-Sufficient Amphiphilic Polypeptide Nanoparticles Encapsulating BODIPY for potential near infrared Imaging-guided Photodynamic Therapy at Low Energy, Nano, 2, 59
Awuah, 2011, Singlet oxygen generation by novel NIR BODIPY dyes, Org. Lett., 13, 3884, 10.1021/ol2014076
Hu, 2016, Engineering Lysosome-Targeting BODIPY Nanoparticles for Photoacoustic Imaging and Photodynamic Therapy under Near-infrared Light, ACS Appl. Mater. Interfaces, 8, 12039, 10.1021/acsami.6b02721
Hamon, 2016, Near-infrared fluorescent aza-BODIPY dye-loaded biodegradable polymeric nanoparticles for optical cancer imaging, J. Nanopart. Res., 18, 207, 10.1007/s11051-016-3518-7
Lv, 2017, Assembly of BODIPY-carbazole dyes with liposomes to fabricate fluorescent nanoparticles for lysosomal bioimaging in living cells, Analyst, 142, 603, 10.1039/C6AN02705A
Glazer, 2011, The Ongoing history of thermal Therapy for Cancer, Surg. Oncol. Clin. N. Am., 20, 229, 10.1016/j.soc.2010.11.001
Dreznik, 1982, Hyperthermia as a treatment for neoplasia, Canadian journal of surgery, Journal canadien de chirurgie, 25, 603
Gao, 2016, Local hyperthermia in head and neck cancer: mechanism, application and advance, Oncotarget, 7, 57367, 10.18632/oncotarget.10350
Gai, 2018, Recent advances in functional nanomaterials for light–triggered cancer therapy, Nano Today, 19, 146, 10.1016/j.nantod.2018.02.010
Beik, 2016, Nanotechnology in hyperthermia cancer therapy: from fundamental principles to advanced applications, J. Control. Release, 235, 205, 10.1016/j.jconrel.2016.05.062
Wang, 2015, Plasmonic Copper Sulfide Nanocrystals Exhibiting Near-infrared Photothermal and Photodynamic Therapeutic Effects, ACS Nano, 9, 1788, 10.1021/nn506687t
Li, 2016, Small gold nanorods laden macrophages for enhanced tumor coverage in photothermal therapy, Biomaterials, 74, 144, 10.1016/j.biomaterials.2015.09.038
Lin, 2015, Photothermal ablation of bone metastasis of breast cancer using PEGylated multi-walled carbon nanotubes, Sci. Rep., 5, 11709, 10.1038/srep11709
Guo, 2017, Gold nanoparticles enlighten the future of cancer theranostics, Int. J. Nanomedicine, 12, 6131, 10.2147/IJN.S140772
Yavuz, 2009, Gold nanocages covered by smart polymers for controlled release with near-infrared light, Nat. Mater., 8, 935, 10.1038/nmat2564
Zhang, 2017, Near-infrared photothermal therapy using anti-EGFR-gold nanorod conjugates for triple negative breast cancer, Oncotarget, 8, 86566, 10.18632/oncotarget.21243
Soenen, 2011, Cellular toxicity of inorganic nanoparticles: Common aspects and guidelines for improved nanotoxicity evaluation, Nano Today, 6, 446, 10.1016/j.nantod.2011.08.001
Fadeel, 2010, Better safe than sorry: Understanding the toxicological properties of inorganic nanoparticles manufactured for biomedical applications, Adv. Drug Deliv. Rev., 62, 362, 10.1016/j.addr.2009.11.008
Anselmo, 2015, A Review of Clinical translation of Inorganic Nanoparticles, AAPS J., 17, 1041, 10.1208/s12248-015-9780-2
Ali, 2017, Efficacy, long-term toxicity, and mechanistic studies of gold nanorods photothermal therapy of cancer in xenograft mice, Proc. Natl. Acad. Sci. U. S. A., 114, E3110, 10.1073/pnas.1619302114
Junlong, 2015, Biocompatible Conjugated Polymer Nanoparticles for Efficient Photothermal Tumor Therapy, Small, 11, 1603, 10.1002/smll.201402092
Dong, 2016, Polydopamine Nanoparticles as a Versatile Molecular Loading Platform to Enable Imaging-guided Cancer Combination Therapy, Theranostics, 6, 1031, 10.7150/thno.14431
Yan, 2016, Molecular imaging-guided photothermal/photodynamic therapy against tumor by iRGD-modified indocyanine green nanoparticles, J. Control. Release, 224, 217, 10.1016/j.jconrel.2015.12.050
Yue, 2017, Near-infrared light-activatable polymeric nanoformulations for combined therapy and imaging of cancer, Adv. Drug Deliv. Rev., 115, 155, 10.1016/j.addr.2017.04.007
Sun, 2018, Second Near-infrared Conjugated Polymer Nanoparticles for Photoacoustic Imaging and Photothermal Therapy, ACS Appl. Mater. Interfaces, 10, 7919, 10.1021/acsami.8b01458
Li, 2018, Folic acid modified cell membrane capsules encapsulating doxorubicin and indocyanine green for highly effective combinational therapy in vivo, Acta Biomater., 74, 374, 10.1016/j.actbio.2018.05.006
Shirata, 2017, Near-infrared photothermal/photodynamic therapy with indocyanine green induces apoptosis of hepatocellular carcinoma cells through oxidative stress, Sci. Rep., 7, 13958, 10.1038/s41598-017-14401-0
Wang, 2018, Deep Tumor Penetrating Bioparticulates inspired Burst Intracellular Drug Release for Precision Chemo-Phototherapy, Small, 14, e1703110, 10.1002/smll.201703110
Teesalu, 2009, C-end rule peptides mediate neuropilin-1-dependent cell, vascular, and tissue penetration, Proc. Natl. Acad. Sci. U. S. A., 106, 16157, 10.1073/pnas.0908201106
Meng, 2015, NIR-Laser-Switched in Vivo Smart Nanocapsules for Synergic Photothermal and Chemotherapy of Tumors, Adv. Mater., 28, 245, 10.1002/adma.201502669
Bagheri, 2016, Lanthanide-Doped Upconversion Nanoparticles: Emerging Intelligent Light-Activated Drug Delivery Systems, Vol. 3, 1500437
Chen, 2014, Upconversion Nanoparticles: Design, Nanochemistry, and applications in Theranostics, Chem. Rev., 114, 5161, 10.1021/cr400425h
Auzel, 2004, Upconversion and Anti-Stokes Processes with f and d Ions in Solids, Chem. Rev., 104, 139, 10.1021/cr020357g
Wang, 2009, Recent advances in the chemistry of lanthanide-doped upconversion nanocrystals, Chem. Soc. Rev., 38, 976, 10.1039/b809132n
Wang, 2010, Simultaneous phase and size control of upconversion nanocrystals through lanthanide doping, Nature, 463, 1061, 10.1038/nature08777
Chen, 2016, Current advances in Lanthanide-Doped Upconversion Nanostructures for Detection and Bioapplication, Advanced Science, 3, 1600029, 10.1002/advs.201600029
Nadort, 2016, Lanthanide upconversion luminescence at the nanoscale: fundamentals and optical properties, Nanoscale, 8, 13099, 10.1039/C5NR08477F
Yan, 2016, Lanthanide Ion Doped Upconverting Nanoparticles: Synthesis, Structure and Properties, Small, 12, 3888, 10.1002/smll.201601565
Mironova, 2017, Ultraviolet phototoxicity of upconversion nanoparticles illuminated with near-infrared light, Nanoscale, 9, 14921, 10.1039/C7NR04092J
Yu, 2016, A nuclear targeted dual-photosensitizer for drug-resistant cancer therapy with NIR activated multiple ROS, Chem. Sci., 7, 4237, 10.1039/C6SC00737F
June, 2018, CAR T cell immunotherapy for human cancer, 359, 1361
Gotwals, 2017, Prospects for combining targeted and conventional cancer therapy with immunotherapy, Nat. Rev. Cancer, 17, 286, 10.1038/nrc.2017.17
Gong, 2018, Development of PD-1 and PD-L1 inhibitors as a form of cancer immunotherapy: a comprehensive review of registration trials and future considerations, Journal for ImmunoTherapy of Cancer, 6, 8, 10.1186/s40425-018-0316-z
Shaughnessy, 2018, Systemic Antitumor Immunity by PD-1/PD-L1 Inhibition is Potentiated by Vascular-Targeted Photodynamic Therapy of primary Tumors, Clin. Cancer Res., 24, 592, 10.1158/1078-0432.CCR-17-0186
Song, 2018, Enhanced Immunotherapy based on Photodynamic Therapy for both primary and Lung Metastasis Tumor Eradication, ACS Nano, 12, 1978, 10.1021/acsnano.7b09112
Xu, 2017, Near-Infrared-Triggered Photodynamic Therapy with Multitasking Upconversion Nanoparticles in Combination with Checkpoint Blockade for Immunotherapy of Colorectal Cancer, ACS Nano, 11, 4463, 10.1021/acsnano.7b00715
Li, 2016, Mild photothermal therapy/photodynamic therapy/chemotherapy of breast cancer by Lyp-1 modified Docetaxel/IR820 Co-loaded micelles, Biomaterials, 106, 119, 10.1016/j.biomaterials.2016.08.016
Song, 2015, Photosensitizer-Conjugated Albumin−Polypyrrole Nanoparticles for Imaging-Guided in Vivo Photodynamic/Photothermal Therapy, Small, 11, 3932, 10.1002/smll.201500550
Feng, 2016, Multifunctional Conjugated Polymer Nanoparticles for Image-Guided Photodynamic and Photothermal Therapy, Small, 13, 1602807, 10.1002/smll.201602807
Abbas, 2017, Self-Assembled Peptide- and Protein-based Nanomaterials for Antitumor Photodynamic and Photothermal Therapy, Adv. Mater., 29, 1605021, 10.1002/adma.201605021
Tsai, 2018, Targeted delivery of Functionalized Upconversion Nanoparticles for Externally Triggered Photothermal/Photodynamic Therapies of Brain Glioblastoma, Theranostics, 8, 1435, 10.7150/thno.22482
Wang, 2017, Multiple imaging and excellent anticancer efficiency of an upconverting nanocarrier mediated by single near infrared light, Nanoscale, 9, 4759, 10.1039/C6NR09030C