Recent progress in sono-photodynamic cancer therapy: From developed new sensitizers to nanotechnology-based efficacy-enhancing strategies
Tài liệu tham khảo
Siegel, 2017, Cancer statistics, 2017, CA Cancer J Clin, 67, 7, 10.3322/caac.21387
Dy, 2013, Understanding, recognizing, and managing toxicities of targeted anticancer therapies, CA Cancer J Clin, 63, 249, 10.3322/caac.21184
Jiang, 2019, Organic photodynamic nanoinhibitor for synergistic cancer therapy, Angew Chem Int Ed Engl, 58, 8161, 10.1002/anie.201903968
Li, 2019, Photoactivatable organic semiconducting pro-nanoenzymes, J Am Chem Soc, 141, 4073, 10.1021/jacs.8b13507
Ng, 2018, Recent progresses in phototherapy-synergized cancer immunotherapy, Adv Funct Mater, 28, 1804688, 10.1002/adfm.201804688
Li, 2019, Organic semiconducting pro-nanostimulants for near-infrared photoactivatable cancer immunotherapy, Angew Chem Int Ed Engl, 58, 12680, 10.1002/anie.201906288
Li, 2020, Electromagnetic nanomedicines for combinational cancer immunotherapy, Angew Chem Int Ed Engl, 59, 11717
Yin, 2017, Delivery technologies for genome editing, Nat Rev Drug Discov, 16, 387, 10.1038/nrd.2016.280
Chen, 2014, Recent progress in development of new sonosensitizers for sonodynamic cancer therapy, Drug Discov Today, 19, 502, 10.1016/j.drudis.2014.01.010
Yang, 2019, Photo- and sono-dynamic therapy: a review of mechanisms and considerations for pharmacological agents used in therapy incorporating light and sound, Curr Pharmaceut Des, 25, 401, 10.2174/1381612825666190123114107
Rai, 2010, Development and applications of photo-triggered theranostic agents, Adv Drug Deliv Rev, 62, 1094, 10.1016/j.addr.2010.09.002
Lucky, 2015, Nanoparticles in photodynamic therapy, Chem Rev, 115, 1990, 10.1021/cr5004198
Gao, 2014, Nanotechnology-based intelligent drug design for cancer metastasis treatment, Biotechnol Adv, 32, 761, 10.1016/j.biotechadv.2013.10.013
Peng, 2020, Potential drug delivery nanosystems for improving tumor penetration, Eur J Pharm Biopharm, 151, 220, 10.1016/j.ejpb.2020.04.009
Zheng, 2020, Nanoparticle-based drug delivery systems for controllable photodynamic cancer therapy, Eur J Pharmaceut Sci, 144, 105213, 10.1016/j.ejps.2020.105213
Li, 2019, Recent progress in drug delivery, Acta Pharm Sin B, 9, 1145, 10.1016/j.apsb.2019.08.003
Luo, 2019, Development and application of hyaluronic acid in tumor targeting drug delivery, Acta Pharm Sin B, 9, 1099, 10.1016/j.apsb.2019.06.004
Zhang, 2017, Modulating the tumor microenvironment to enhance tumor nanomedicine delivery, Front Pharmacol, 8, 952, 10.3389/fphar.2017.00952
Foote, 1991, Definition of type I and type II photosensitized oxidation, Photochem Photobiol, 54, 659, 10.1111/j.1751-1097.1991.tb02071.x
Wang, 2019, Type I photodynamic therapy by organic–inorganic hybrid materials: from strategies to applications, Coord Chem Rev, 395, 46, 10.1016/j.ccr.2019.05.016
Zhang, 2018, An updated overview on the development of new photosensitizers for anticancer photodynamic therapy, Acta Pharm Sin B, 8, 137, 10.1016/j.apsb.2017.09.003
Allison, 2013, Photodynamic therapy (PDT): PDT mechanisms, Clin Endosc, 46, 24, 10.5946/ce.2013.46.1.24
Rosenthal, 2004, Sonodynamic therapy—a review of the synergistic effects of drugs and ultrasound, Ultrason Sonochem, 11, 349, 10.1016/j.ultsonch.2004.03.004
Liu, 2015, Current status and future perspectives of sonodynamic therapy and sonosensitiers, Asian Pac J Cancer Prev, 16, 4489, 10.7314/APJCP.2015.16.11.4489
Pan, 2018, Sonodynamic therapy (SDT): a novel strategy for cancer nanotheranostics, Sci China Life Sci, 61, 415, 10.1007/s11427-017-9262-x
Ebrahiminia, 2016, Dual frequency cavitation event sensor with iodide dosimeter, Ultrason Sonochem, 28, 276, 10.1016/j.ultsonch.2015.07.005
Pang, 2016, Natural products in the discovery of novel sonosensitizers, Pharmacol Ther, 162, 144, 10.1016/j.pharmthera.2015.12.004
Kolarova, 2007, In vitro study of reactive oxygen species production during photodynamic therapy in ultrasound-pretreated cancer cells, Physiol Res, 56, S27, 10.33549/physiolres.931298
Jin, 2000, Combination effect of photodynamic and sonodynamic therapy on experimental skin squamous cell carcinoma in C3H/HeN mice, J Dermatol, 27, 294, 10.1111/j.1346-8138.2000.tb02171.x
Li, 2014, Efficacy of chlorin e6-mediated sono-photodynamic therapy on 4T1 cells, Cancer Biother Radiopharm, 29, 42, 10.1089/cbr.2013.1526
Li, 2014, The effects of Ce6-mediated sono-photodynamic therapy on cell migration, apoptosis and autophagy in mouse mammary 4T1 cell line, Ultrasonics, 54, 981, 10.1016/j.ultras.2013.11.009
Wang, 2015, Changes in cell migration due to the combined effects of sonodynamic therapy and photodynamic therapy on MDA-MB-231 cells, Laser Phys Lett, 12, 10.1088/1612-2011/12/3/035603
Liu, 2007, Comparison between sonodynamic effect with protoporphyrin IX and hematoporphyrin on sarcoma 180, Cancer Chemother Pharmacol, 60, 671, 10.1007/s00280-006-0413-4
Kim, 2014, Photodynamic therapy (PDT) resistance by PARP1 regulation on PDT-induced apoptosis with autophagy in head and neck cancer cells, J Oral Pathol Med, 43, 675, 10.1111/jop.12195
Hoi, 2012, Photodynamic therapy of pheophorbide a inhibits the proliferation of human breast tumour via both caspase-dependent and -independent apoptotic pathways in in vitro and in vivo models, Phytother Res, 26, 734, 10.1002/ptr.3607
Umemura, 1996, Sonodynamically induced antitumor effect of pheophorbide a, Cancer Lett, 102, 151, 10.1016/0304-3835(96)04174-2
Xu, 2013, The ABCG2 transporter is a key molecular determinant of the efficacy of sonodynamic therapy with photofrin in glioma stem-like cells, Ultrasonics, 53, 232, 10.1016/j.ultras.2012.06.005
Qiu, 2016, Macroscopic singlet oxygen modeling for dosimetry of photofrin-mediated photodynamic therapy: an in-vivo study, J Biomed Optic, 21, 88002, 10.1117/1.JBO.21.8.088002
Li, 2013, In vitro study of low intensity ultrasound combined with different doses of PDT: effects on C6 glioma cells, Oncol Lett, 5, 702, 10.3892/ol.2012.1060
Wang, 2013, Ultrasound enhances the efficacy of chlorin e6-mediated photodynamic therapy in MDA-MB-231 cells, Ultrasound Med Biol, 39, 1713, 10.1016/j.ultrasmedbio.2013.03.017
Wang, 2015, Anti-metastatic and pro-apoptotic effects elicited by combination photodynamic therapy with sonodynamic therapy on breast cancer both in vitro and in vivo, Ultrason Sonochem, 23, 116, 10.1016/j.ultsonch.2014.10.027
Tserkovsky, 2012, Effects of combined sonodynamic and photodynamic therapies with photolon on a glioma C6 tumor model, Exp Oncol, 34, 332
Liu, 2016, Sinoporphyrin sodium triggered sono-photodynamic effects on breast cancer both in vitro and in vivo, Ultrason Sonochem, 31, 437, 10.1016/j.ultsonch.2016.01.038
Bakhshizadeh, 2017, Sonophotodynamic therapy mediated by liposomal zinc phthalocyanine in a colon carcinoma tumor model: role of irradiating arrangement, Iran J Basic Med Sci, 20, 1088
Tomankova, 2009, Study of cytotoxic effect of photodynamically and sonodynamically activated sensitizers in vitro, Toxicol Vitro, 23, 1465, 10.1016/j.tiv.2009.07.006
Tomankova, 2008, Study of photodynamic and sonodynamic effect on A549 cell line by AFM and measurement of ROS production, Phys Status Solidi, 205, 1472, 10.1002/pssa.200778119
Chen, 2018, Synthesis and biological characterization of novel rose bengal derivatives with improved amphiphilicity for sono-photodynamic therapy, Eur J Med Chem, 145, 86, 10.1016/j.ejmech.2017.12.091
Nomikou, 2012, The effects of ultrasound and light on indocyanine-green-treated tumour cells and tissues, ChemMedChem, 7, 1465, 10.1002/cmdc.201200233
McEwan, 2016, Comparing the efficacy of photodynamic and sonodynamic therapy in non-melanoma and melanoma skin cancer, Bioorg Med Chem, 24, 3023, 10.1016/j.bmc.2016.05.015
Shimamura, 2016, 5-aminolevulinic acid enhances ultrasound-mediated antitumor activity via mitochondrial oxidative damage in breast cancer, Anticancer Res, 36, 3607
He, 2019, Effects of notch signaling pathway in cervical cancer by curcumin mediated photodynamic therapy and its possible mechanisms in vitro and in vivo, J Cancer, 10, 4114, 10.7150/jca.30690
Wang, 2013, The sonodynamic effect of curcumin on THP-1 cell-derived macrophages, BioMed Res Int, 2013, 737264
Petrellis, 2019, Proinflammatory effects of photoactivated methylene blue on rat model of Walker 256 carcinosarcoma, Exp Oncol, 41, 112, 10.32471/exp-oncology.2312-8852.vol-41-no-2.13047
Komori, 2009, The sonodynamic antitumor effect of methylene blue on sarcoma180 cells in vitro, Anticancer Res, 29, 2411
Ji, 2016, Cytoprotective role of nitric oxide in HepG2 cell apoptosis induced by hypocrellin B photodynamic treatment, J Photochem Photobiol, B, 163, 366, 10.1016/j.jphotobiol.2016.09.006
Liu, 2019, Comparison of hypocrellin B-mediated sonodynamic responsiveness between sensitive and multidrug-resistant human gastric cancer cell lines, J Med Ultrason, 46, 15, 10.1007/s10396-018-0899-5
Xiao, 2011, Porous silicon nanoparticle photosensitizers for singlet oxygen and their phototoxicity against cancer cells, ACS Nano, 5, 3651, 10.1021/nn1035262
Sviridov, 2015, Lowering of the cavitation threshold in aqueous suspensions of porous silicon nanoparticles for sonodynamic therapy applications, Appl Phys Lett, 107, 123107, 10.1063/1.4931728
Wang, 2011, Induction of cytotoxicity by photoexcitation of TiO2 can prolong survival in glioma-bearing mice, Mol Biol Rep, 38, 523, 10.1007/s11033-010-0136-9
Harada, 2011, Ultrasound activation of TiO2 in melanoma tumors, J Control Release, 149, 190, 10.1016/j.jconrel.2010.10.012
Li, 2020, Red blood cell membrane-enveloped O2 self-supplementing biomimetic nanoparticles for tumor imaging-guided enhanced sonodynamic therapy, Theranostics, 10, 867, 10.7150/thno.37930
Cheng, 2019, Hitherto-unexplored photodynamic therapy of Ag2S and enhanced regulation based on polydopamine in vitro and vivo, Chemistry, 25, 7553, 10.1002/chem.201900718
Bernard, 2014, Combined effect of silver nanoparticles and therapeutical ultrasound on ovarian carcinoma cells A2780, J Appl Biomed, 12, 137, 10.1016/j.jab.2014.01.002
Erdogan, 2019, Green synthesis of silver nanoparticles via Cynara scolymus leaf extracts: the characterization, anticancer potential with photodynamic therapy in MCF7 cells, PLoS One, 14, 10.1371/journal.pone.0216496
Sazgarnia, 2013, Therapeutic effects of acoustic cavitation in the presence of gold nanoparticles on a colon tumor model, J Ultrasound Med, 32, 475, 10.7863/jum.2013.32.3.475
Wang, 2015, Ultrathin black phosphorus nanosheets for efficient singlet oxygen generation, J Am Chem Soc, 137, 11376, 10.1021/jacs.5b06025
Li, 2020, Piezoelectric materials as sonodynamic sensitizers to safely ablate tumors: a case study using black phosphorus, J Phys Chem Lett, 11, 1228, 10.1021/acs.jpclett.9b03769
Berg, 2005, Porphyrin-related photosensitizers for cancer imaging and therapeutic applications, J Microsc, 218, 133, 10.1111/j.1365-2818.2005.01471.x
O'Connor, 2009, Porphyrin and nonporphyrin photosensitizers in oncology: preclinical and clinical advances in photodynamic therapy, Photochem Photobiol, 85, 1053, 10.1111/j.1751-1097.2009.00585.x
Yao, 2016, Novel porphyrin-Schiff base conjugates: synthesis, characterization and in vitro photodynamic activities, RSC Adv, 6, 45681, 10.1039/C6RA05682B
Liang, 2019, Intelligent hollow Pt–CuS Janus architecture for synergistic catalysis-enhanced sonodynamic and photothermal cancer therapy, Nano Lett, 19, 4134, 10.1021/acs.nanolett.9b01595
Musser, 1984, Inability to elicit rapid cytocidal effects on L1210 cells derived from porphyrin-injected mice following in vitro photoirradiation, J Natl Cancer Inst, 72, 427
Li, 2020, Fluorinated chitosan to enhance transmucosal delivery of sonosensitizer-conjugated catalase for sonodynamic bladder cancer treatment post-intravesical instillation, ACS Nano, 14, 1586, 10.1021/acsnano.9b06689
Song, 2007, Intraperitoneal photodynamic therapy for an ovarian cancer ascite model in Fischer 344 rat using hematoporphyrin monomethyl ether, Cancer Sci, 98, 1959, 10.1111/j.1349-7006.2007.00628.x
Li, 2008, In vitro study of haematoporphyrin monomethyl ether-mediated sonodynamic effects on C6 glioma cells, Neurol Sci, 29, 229, 10.1007/s10072-008-0972-8
Li, 2013, Effect of hematoporphyrin monomethyl ether-mediated PDT on the mitochondria of canine breast cancer cells, Photodiagnosis Photodyn Ther, 10, 414, 10.1016/j.pdpdt.2013.03.005
Miyoshi, 1992, Relative yield of active oxygens produced by various sensitizers in vitro, 15
Yumita, 1997, Sonodynamically induced antitumor effect of gallium–porphyrin complex by focused ultrasound on experimental kidney tumor, Cancer Lett, 112, 79, 10.1016/S0304-3835(96)04548-X
Sadanala, 2014, Sono-photodynamic combination therapy: a review on sensitizers, Anticancer Res, 34, 4657
Gomaa, 2012, Chlorophyll derivative mediated PDT versus methotrexate: an in vitro study using MCF-7 cells, Photodiagnosis Photodyn Ther, 9, 362, 10.1016/j.pdpdt.2012.04.001
Wang, 2009, Sonodynamic and photodynamic therapy in advanced breast carcinoma: a report of 3 cases, Integr Cancer Ther, 8, 283, 10.1177/1534735409343693
Lewis, 2010, Toxicity and cytopathogenic properties toward human melanoma cells of activated cancer therapeutics in zebra fish, Integr Cancer Ther, 9, 84, 10.1177/1534735409355171
Wang, 2008, The tumoricidal effect of sonodynamic therapy (SDT) on S-180 sarcoma in mice, Integr Cancer Ther, 7, 96, 10.1177/1534735408319065
Kenyon, 2011, Outcome measures following sonodynamic photodynamic therapy—a case series, Curr Drug Ther, 6, 12, 10.2174/157488511794079059
Chin, 2008, Improved formulation of photosensitizer chlorin e6 polyvinylpyrrolidone for fluorescence diagnostic imaging and photodynamic therapy of human cancer, Eur J Pharm Biopharm, 69, 1083, 10.1016/j.ejpb.2008.02.013
Ali-Seyed, 2011, Photolon™—photosensitization induces apoptosis via ROS-mediated cross-talk between mitochondria and lysosomes, Int J Oncol, 39, 821
Tserkovsky, 2011, Photolon enhancement of ultrasound cytotoxicity, Exp Oncol, 33, 107
Wang, 2015, Analysis of the in vivo and in vitro effects of photodynamic therapy on breast cancer by using a sensitizer, sinoporphyrin sodium, Theranostics, 5, 772, 10.7150/thno.10853
Bottari, 2015, Phthalocyanine-nanocarbon ensembles: from discrete molecular and supramolecular systems to hybrid nanomaterials, Acc Chem Res, 48, 900, 10.1021/ar5004384
Roguin, 2019, Zinc(II) phthalocyanines as photosensitizers for antitumor photodynamic therapy, Int J Biochem Cell Biol, 114, 105575, 10.1016/j.biocel.2019.105575
Milowska, 2005, Synergistic effect of ultrasound and phthalocyanines on nucleated erythrocytes in vitro, Ultrasound Med Biol, 31, 1707, 10.1016/j.ultrasmedbio.2005.07.018
Kolarova, 2007, Sensitivity of different cell lines to phototoxic effect of disulfonated chloroaluminium phthalocyanine, Toxicol Vitro, 21, 1304, 10.1016/j.tiv.2007.08.017
Sugita, 2007, Synthesis of amphiphilic derivatives of rose bengal and their tumor accumulation, Bioconjugate Chem, 18, 866, 10.1021/bc060189p
Gao, 2015, Self-assembled chitosan/rose bengal derivative nanoparticles for targeted sonodynamic therapy: preparation and tumor accumulation, RSC Adv, 5, 17915, 10.1039/C4RA15347B
Nomikou, 2012, Microbubble-sonosensitiser conjugates as therapeutics in sonodynamic therapy, Chem Commun, 48, 8332, 10.1039/c2cc33913g
Newton, 2019, Optimization of second window indocyanine green for intraoperative near-infrared imaging of thoracic malignancy, J Am Coll Surg, 228, 188, 10.1016/j.jamcollsurg.2018.11.003
Yuan, 2013, Far-red to near infrared analyte-responsive fluorescent probes based on organic fluorophore platforms for fluorescence imaging, Chem Soc Rev, 42, 622, 10.1039/C2CS35313J
Gharesi, 2017, Effect of photodynamic therapy based on indocyanine green on expression of apoptosis-related genes in human gingival fibroblast cells, Photodiagnosis Photodyn Ther, 19, 33, 10.1016/j.pdpdt.2017.04.007
Sagir, 2012, Photodynamic activities of protoporphyrin IX and its dopamine conjugate against cancer and bacterial cell viability, Med Chem Res, 21, 4499, 10.1007/s00044-011-9951-3
Su, 2016, Sonodynamic therapy induces apoptosis of human leukemia HL-60 cells in the presence of protoporphyrin IX, Gen Physiol Biophys, 35, 155, 10.4149/gpb_2015051
Li, 2014, Sonodynamically induced anti-tumor effect of 5-aminolevulinic acid on pancreatic cancer cells, Ultrasound Med Biol, 40, 2671, 10.1016/j.ultrasmedbio.2014.07.003
Foglietta, 2013, In vitro study of sonodynamic and photodynamic treatment on human cancer cell lines, Clin Therapeut, 35, 51, 10.1016/j.clinthera.2013.07.141
Xu, 2018, Bioactivity, health benefits, and related molecular mechanisms of curcumin: current progress, challenges, and perspectives, Nutrients, 10, 1553, 10.3390/nu10101553
Anand, 2007, Bioavailability of curcumin: problems and promises, Mol Pharm, 4, 807, 10.1021/mp700113r
Park, 2007, Photosensitizer effect of curcumin on UVB-irradiated HaCaT cells through activation of caspase pathways, Oncol Rep, 17, 537
Wang, 2011, Ultrasound induces cellular destruction of nasopharyngeal carcinoma cells in the presence of curcumin, Ultrasonics, 51, 165, 10.1016/j.ultras.2010.07.006
Wang, 2012, TEM observation of ultrasound-induced mitophagy in nasopharyngeal carcinoma cells in the presence of curcumin, Exp Ther Med, 3, 146, 10.3892/etm.2011.365
Suzuki, 2007, Antitumor effect of acridine orange under ultrasonic irradiation in vitro, Anticancer Res, 27, 4179
Osman, 2018, Acridine orange as a novel photosensitizer for photodynamic therapy in glioblastoma, World Neurosurgery, 114, e1310, 10.1016/j.wneu.2018.03.207
Wang, 2016, Self-assembled IR780-loaded transferrin nanoparticles as an imaging, targeting and PDT/PTT agent for cancer therapy, Sci Rep, 6, 27421, 10.1038/srep27421
Li, 2016, IR-780 dye as a sonosensitizer for sonodynamic therapy of breast tumor, Sci Rep, 6, 25968, 10.1038/srep25968
Mroz, 2007, Functionalized fullerenes mediate photodynamic killing of cancer cells: type I versus Type II photochemical mechanism, Free Radic Biol Med, 43, 711, 10.1016/j.freeradbiomed.2007.05.005
Bosi, 2003, Fullerene derivatives: an attractive tool for biological applications, Eur J Med Chem, 38, 913, 10.1016/j.ejmech.2003.09.005
Vileno, 2005, Singlet oxygen (1Δg)-mediated oxidation of cellular and subcellular components: ESR and AFM assays, J Phys-condens Mat, 17, S1471, 10.1088/0953-8984/17/18/005
Yumita, 2014, Involvement of reactive oxygen species in the enhancement of membrane lipid peroxidation by sonodynamic therapy with functionalized fullerenes, Anticancer Res, 34, 6481
Yumita, 2013, Sonodynamically-induced anticancer effects by functionalized fullerenes, Anticancer Res, 33, 3145
Cullis, 1997, The structural and luminescence properties of porous silicon, J Appl Phys, 82, 909, 10.1063/1.366536
Canham, 1990, Silicon quantum wire array fabrication by electrochemical and chemical dissolution of wafers, Appl Phys Lett, 57, 1046, 10.1063/1.103561
Fujii, 2004, Generation of singlet oxygen at room temperature mediated by energy transfer from photoexcited porousSi, Phys Rev B, 70, 85311, 10.1103/PhysRevB.70.085311
Osminkina, 2015, Porous silicon nanoparticles as efficient sensitizers for sonodynamic therapy of cancer, Microporous Mesoporous Mater, 210, 169, 10.1016/j.micromeso.2015.02.037
Ninomiya, 2014, Enhanced OH radical generation by dual-frequency ultrasound with TiO2 nanoparticles: its application to targeted sonodynamic therapy, Ultrason Sonochem, 21, 289, 10.1016/j.ultsonch.2013.05.005
Ninomiya, 2012, Targeted sonodynamic therapy using protein-modified TiO2 nanoparticles, Ultrason Sonochem, 19, 607, 10.1016/j.ultsonch.2011.09.009
Moosavi Nejad, 2016, Acute effects of sono-activated photocatalytic titanium dioxide nanoparticles on oral squamous cell carcinoma, Ultrason Sonochem, 32, 95, 10.1016/j.ultsonch.2016.02.026
You, 2016, ROS-generating TiO2 nanoparticles for non-invasive sonodynamic therapy of cancer, Sci Rep, 6, 23200, 10.1038/srep23200
Rasmussen, 2010, Zinc oxide nanoparticles for selective destruction of tumor cells and potential for drug delivery applications, Expet Opin Drug Deliv, 7, 1063, 10.1517/17425247.2010.502560
Zhang, 2014, A comparison of TiO2 and ZnO nanoparticles as photosensitizers in photodynamic therapy for cancer, J Biomed Nanotechnol, 10, 1450, 10.1166/jbn.2014.1961
Vighetto, 2019, The synergistic effect of nanocrystals combined with ultrasound in the generation of reactive oxygen species for biomedical applications, Front Bioeng Biotechnol, 7, 374, 10.3389/fbioe.2019.00374
Liu, 2020, Defect modified zinc oxide with augmenting sonodynamic reactive oxygen species generation, Biomaterials, 251, 120075, 10.1016/j.biomaterials.2020.120075
Kouhnavard, 2014, A review of semiconductor materials as sensitizers for quantum dot-sensitized solar cells, Renew Sustain Energy Rev, 37, 397, 10.1016/j.rser.2014.05.023
Shanmuganathan, 2019, Synthesis of silver nanoparticles and their biomedical applications—a comprehensive review, Curr Pharmaceut Des, 25, 2650, 10.2174/1381612825666190708185506
Vankayala, 2014, Gold nanoshells-mediated bimodal photodynamic and photothermal cancer treatment using ultra-low doses of near infra-red light, Biomaterials, 35, 5527, 10.1016/j.biomaterials.2014.03.065
Shanei, 2019, Investigating the sonodynamic-radiosensitivity effect of gold nanoparticles on HeLa cervical cancer cells, J Kor Med Sci, 34, 10.3346/jkms.2019.34.e243
Ma, 2014, A new Cu–cysteamine complex: structure and optical properties, J Mater Chem C, 2, 4239, 10.1039/C4TC00114A
Pandey, 2019, A facile method for the synthesis of copper-cysteamine nanoparticles and study of ROS production for cancer treatment, J Mater Chem B, 7, 6630, 10.1039/C9TB01566C
Liu, 2017, Investigation of copper cysteamine nanoparticles as a new type of radiosensitiers for colorectal carcinoma treatment, Sci Rep, 7, 9290, 10.1038/s41598-017-09375-y
Wang, 2018, Nanosonosensitization by using copper-cysteamine nanoparticles augmented sonodynamic cancer treatment, Part Part Syst Char, 35, 1700378, 10.1002/ppsc.201700378
Zhang, 2016, Switchable PDT for reducing skin photosensitization by a NIR dye inducing self-assembled and photo-disassembled nanoparticles, Biomaterials, 107, 23, 10.1016/j.biomaterials.2016.08.037
Yu, 2019, Sequentially responsive biomimetic nanoparticles with optimal size in combination with checkpoint blockade for cascade synergetic treatment of breast cancer and lung metastasis, Biomaterials, 217, 119309, 10.1016/j.biomaterials.2019.119309
Bidkar, 2020, Transferrin-conjugated red blood cell membrane-coated poly(lactic-co-glycolic acid) nanoparticles for the delivery of doxorubicin and methylene blue, Acs Applied Nano Materials, 3, 3807, 10.1021/acsanm.0c00502
Yang, 2018, Tumor-pH-responsive dissociable albumin–tamoxifen nanocomplexes enabling efficient tumor penetration and hypoxia relief for enhanced cancer photodynamic therapy, Small, 14, 10.1002/smll.201803262
Sun, 2014, Integration of nanoassembly functions for an effective delivery cascade for cancer drugs, Adv Mater, 26, 7615, 10.1002/adma.201401554
Liu, 2019, Folate-targeted and oxygen/indocyanine green-loaded lipid nanoparticles for dual-mode imaging and photo-sonodynamic/photothermal therapy of ovarian cancer in vitro and in vivo, Mol Pharm, 16, 4104, 10.1021/acs.molpharmaceut.9b00339
Liu, 2019, Multifunctional nanocapsules on a seesaw balancing sonodynamic and photodynamic therapies against superficial malignant tumors by effective immune-enhancement, Biomaterials, 218, 119251, 10.1016/j.biomaterials.2019.119251
Liu, 2020, Light and sound to trigger the Pandora's box against breast cancer: a combination strategy of sonodynamic, photodynamic and photothermal therapies, Biomaterials, 232, 119685, 10.1016/j.biomaterials.2019.119685
Feng, 2018, pH/ultrasound dual-responsive gas generator for ultrasound imaging-guided therapeutic inertial cavitation and sonodynamic therapy, Adv Healthc Mater, 7, 2192, 10.1002/adhm.201700957
Zhang, 2019, An in situ microenvironmental nano-regulator to inhibit the proliferation and metastasis of 4T1 tumor, Theranostics, 9, 3580, 10.7150/thno.33141
Chen, 2018, Dual-mode imaging and therapeutic effects of drug-loaded phase-transition nanoparticles combined with near-infrared laser and low-intensity ultrasound on ovarian cancer, Drug Deliv, 25, 1683, 10.1080/10717544.2018.1507062
Lee, 2013, Ursodeoxycholic acid-conjugated chitosan for photodynamic treatment of HuCC-T1 human cholangiocarcinoma cells, Int J Pharm, 454, 74, 10.1016/j.ijpharm.2013.06.035
Wang, 2015, Microbubbles enhance the antitumor effects of sinoporphyrin sodium mediated sonodynamic therapy both in vitro and in vivo, Int J Biol Sci, 11, 1401, 10.7150/ijbs.12802
Sun, 2019, Tumor targeting DVDMS-nanoliposomes for an enhanced sonodynamic therapy of gliomas, Biomater Sci, 7, 985, 10.1039/C8BM01187G
Hou, 2020, In situ conversion of rose bengal microbubbles into nanoparticles for ultrasound imaging guided sonodynamic therapy with enhanced antitumor efficacy, Biomater Sci, 8, 2526, 10.1039/C9BM02046B
Zhang, 2019, Mitochondria-targeted and ultrasound-activated nanodroplets for enhanced deep-penetration sonodynamic cancer therapy, ACS Appl Mater Interfaces, 11, 9355, 10.1021/acsami.8b21968
Ren, 2017, Oxygen self-enriched nanoparticles functionalized with erythrocyte membranes for long circulation and enhanced phototherapy, Acta Biomater, 59, 269, 10.1016/j.actbio.2017.06.035
Wu, 2017, Design and proof of programmed 5-aminolevulinic acid prodrug nanocarriers for targeted photodynamic cancer therapy, ACS Appl Mater Interfaces, 9, 14596, 10.1021/acsami.6b15853
Hou, 2016, MMP2-targeting and redox-responsive PEGylated chlorin e6 nanoparticles for cancer near-infrared imaging and photodynamic therapy, ACS Appl Mater Interfaces, 8, 1447, 10.1021/acsami.5b10772
He, 2019, Tumor targeting strategies of smart fluorescent nanoparticles and their applications in cancer diagnosis and treatment, Adv Mater, 31, 10.1002/adma.201902409
Huang, 2018, Nanosonosensitizers for highly efficient sonodynamic cancer theranostics, Theranostics, 8, 6178, 10.7150/thno.29569
Lin, 2020, Aptamer-guided upconversion nanoplatform for targeted drug delivery and near-infrared light-triggered photodynamic therapy, J Biomater Appl, 34, 875, 10.1177/0885328219882152
Lucky, 2016, In vivo biocompatibility, biodistribution and therapeutic efficiency of titania coated upconversion nanoparticles for photodynamic therapy of solid oral cancers, Theranostics, 6, 1844, 10.7150/thno.15088
Yang, 2019, Boosting the photodynamic therapy efficiency with a mitochondria-targeted nanophotosensitizer, Chin Chem Lett, 30, 1293, 10.1016/j.cclet.2019.03.032
Lin, 2019, Ultrasound-induced reactive oxygen species generation and mitochondria-specific damage by sonodynamic agent/metal ion-doped mesoporous silica, RSC Adv, 9, 39924, 10.1039/C9RA08142A
Wan, 2020, Nucleus-targeting near-infrared nanoparticles based on TAT peptide-conjugated IR780 for photo-chemotherapy of breast cancer, Chem Eng J, 380, 122458, 10.1016/j.cej.2019.122458
Wu, 2020, Fluorescence imaging-guided multifunctional liposomes for tumor-specific phototherapy for laryngeal carcinoma, Biomater Sci, 8, 3443, 10.1039/D0BM00249F
Li, 2019, Cell penetrating peptide-modified nanoparticles for tumor targeted imaging and synergistic effect of sonodynamic/HIFU therapy, Int J Nanomed, 14, 5875, 10.2147/IJN.S212184
Tong, 2016, Programmed photosensitizer conjugated supramolecular nanocarriers with dual targeting ability for enhanced photodynamic therapy, Chem Commun, 52, 11935, 10.1039/C6CC06439F
Yu, 2020, Size-tunable strategies for a tumor targeted drug delivery system, ACS Cent Sci, 6, 100, 10.1021/acscentsci.9b01139
Yang, 2019, A hypoxia-responsive albumin-based nanosystem for deep tumor penetration and excellent therapeutic efficacy, Adv Mater, 31, 10.1002/adma.201901513
Wang, 2020, Size-switchable nanoparticles with self-destructive and tumor penetration characteristics for site-specific phototherapy of cancer, ACS Appl Mater Interfaces, 12, 6933, 10.1021/acsami.9b21525
Yang, 2019, Hierarchical tumor acidity-responsive self-assembled magnetic nanotheranostics for bimodal bioimaging and photodynamic therapy, J Control Release, 301, 157, 10.1016/j.jconrel.2019.03.019
Yang, 2018, Smart nanoreactors for pH-responsive tumor homing, mitochondria-targeting, and enhanced photodynamic-immunotherapy of cancer, Nano Lett, 18, 2475, 10.1021/acs.nanolett.8b00040
Li, 2017, Ultrasound-triggered release of sinoporphyrin sodium from liposome-microbubble complexes and its enhanced sonodynamic toxicity in breast cancer, Nano Research, 11, 1038, 10.1007/s12274-017-1719-8
Wang, 2016, Biomimetic HDL nanoparticle mediated tumor targeted delivery of indocyanine green for enhanced photodynamic therapy, Colloids Surf B Biointerfaces, 148, 533, 10.1016/j.colsurfb.2016.09.037
Thakur, 2018, Self-assembled gold nanoparticle–lipid nanocomposites for on-demand delivery, tumor accumulation, and combined photothermal–photodynamic therapy, ACS Applied Bio Materials, 2, 349, 10.1021/acsabm.8b00618
Li, 2019, A phase-change material packaged within hollow copper sulfide nanoparticles carrying doxorubicin and chlorin e6 for fluorescence-guided trimodal therapy of cancer, ACS Appl Mater Interfaces, 11, 417, 10.1021/acsami.8b19667
Cao, 2020, Enhanced photodynamic therapy based on an amphiphilic branched copolymer with pendant vinyl groups for simultaneous GSH depletion and Ce6 release, J Mater Chem B, 8, 478, 10.1039/C9TB02120E
Zhang, 2017, Redox- and light-responsive alginate nanoparticles as effective drug carriers for combinational anticancer therapy, Nanoscale, 9, 3304, 10.1039/C7NR00005G
Hou, 2016, pH-sensitive Self-assembling nanoparticles for tumor near-infrared fluorescence imaging and chemo-photodynamic combination therapy, Nanoscale, 8, 104, 10.1039/C5NR06842H
Wang, 2018, Tumor-targeting core–shell structured nanoparticles for drug procedural controlled release and cancer sonodynamic combined therapy, J Control Release, 286, 74, 10.1016/j.jconrel.2018.07.028
Shen, 2017, pH-Responsive aerobic nanoparticles for effective photodynamic therapy, Theranostics, 7, 4537, 10.7150/thno.19546
Dong, 2016, CaCO3 nanoparticles as an ultra-sensitive tumor-pH-responsive nanoplatform enabling real-time drug release monitoring and cancer combination therapy, Biomaterials, 110, 60, 10.1016/j.biomaterials.2016.09.025
Yan, 2020, Chitosan capped pH-responsive hollow mesoporous silica nanoparticles for targeted chemo-photo combination therapy, Carbohydr Polym, 231, 115706, 10.1016/j.carbpol.2019.115706
Ren, 2014, A hematoporphyrin-based delivery system for drug resistance reversal and tumor ablation, Biomaterials, 35, 2462, 10.1016/j.biomaterials.2013.12.004
Yadav, 2019, Magnetic and photocatalytic curcumin bound carbon nitride nanohybrids for enhanced glioma cell death, ACS Biomater Sci Eng, 5, 6590, 10.1021/acsbiomaterials.9b01224
John, 2016, Dual stimuli-responsive vesicular nanospheres fabricated by lipopolymer hybrids for tumor-targeted photodynamic therapy, Biomacromolecules, 17, 20, 10.1021/acs.biomac.5b01474
Jing, 2019, pH/redox dual-stimuli-responsive cross-linked polyphosphazene nanoparticles for multimodal imaging-guided chemo-photodynamic therapy, Nanoscale, 11, 9457, 10.1039/C9NR01194C
Chu, 2016, Redox-responsive nanophotosensitizer composed of chlorin e6-conjugated dextran for photodynamic treatment of colon cancer cells, J Nanomater, 2016, 1
Li, 2020, Hypoxia/pH dual-responsive nitroimidazole-modified chitosan/rose bengal derivative nanoparticles for enhanced photodynamic anticancer therapy, Dyes Pigments, 179, 108395, 10.1016/j.dyepig.2020.108395
Zhang, 2016, Multitriggered tumor-responsive drug delivery vehicles based on protein and polypeptide coassembly for enhanced photodynamic tumor ablation, Small, 12, 5936, 10.1002/smll.201602339
Song, 2017, Nanomaterials for cancer immunotherapy, Biomaterials, 148, 16, 10.1016/j.biomaterials.2017.09.017
Ding, 2020, Manganese oxide nanomaterials: synthesis, properties, and theranostic applications, Adv Mater, 32, 10.1002/adma.201905823
Mroz, 2011, Stimulation of anti-tumor immunity by photodynamic therapy, Expet Rev Clin Immunol, 7, 75, 10.1586/eci.10.81
Xie, 2019, The destruction of laser-induced phase-transition nanoparticles triggered by low-intensity ultrasound: an innovative modality to enhance the immunological treatment of ovarian cancer cells, Int J Nanomed, 14, 9377, 10.2147/IJN.S208404
Senthebane, 2017, The role of tumor microenvironment in chemoresistance: to survive, keep your enemies closer, Int J Mol Sci, 18, 1586, 10.3390/ijms18071586
Kumari, 2020, Hypoxia-responsive nanoparticle based drug delivery systems in cancer therapy: an up-to-date review, J Control Release, 319, 135, 10.1016/j.jconrel.2019.12.041
Li, 2019, Fluorinated polyethylenimine to enable transmucosal delivery of photosensitizer-conjugated catalase for photodynamic therapy of orthotopic bladder tumors postintravesical instillation, Adv Funct Mater, 29, 1901932, 10.1002/adfm.201901932
Wang, 2019, Light-enhanced O2-evolving nanoparticles boost photodynamic therapy to elicit antitumor immunity, ACS Appl Mater Interfaces, 11, 16367, 10.1021/acsami.9b03541
Wu, 2019, Ferric hydroxide-modified upconversion nanoparticles for 808 nm NIR-triggered synergetic tumor therapy with hypoxia modulation, ACS Appl Mater Interfaces, 11, 385, 10.1021/acsami.8b18427
Zhang, 2020, Hollow magnetic nanosystem-boosting synergistic effect between magnetic hyperthermia and sonodynamic therapy via modulating reactive oxygen species and heat shock proteins, Chem Eng J, 390, 124521, 10.1016/j.cej.2020.124521
Liu, 2019, Smart NIR-light-mediated nanotherapeutic agents for enhancing tumor accumulation and overcoming hypoxia in synergistic cancer therapy, ACS Applied Bio Materials, 2, 1225, 10.1021/acsabm.8b00790
Liang, 2020, A novel Pt-TiO2 heterostructure with oxygen-deficient layer as bilaterally enhanced sonosensitizer for synergistic chemo-sonodynamic cancer therapy, Adv Funct Mater, 30, 1908598, 10.1002/adfm.201908598
Wang, 2020, Au2Pt-PEG-Ce6 nanoformulation with dual nanozyme activities for synergistic chemodynamic therapy/phototherapy, Biomaterials, 252, 120093, 10.1016/j.biomaterials.2020.120093
Lin, 2018, O2-generating MnO2 nanoparticles for enhanced photodynamic therapy of bladder cancer by ameliorating hypoxia, Theranostics, 8, 990, 10.7150/thno.22465
Zhao, 2018, Photosensitive nanoparticles combining vascular-independent intratumor distribution and on-demand oxygen-depot delivery for enhanced cancer photodynamic therapy, Small, 14
Wang, 2020, A nanosystem loaded with perfluorohexane and rose bengal coupled upconversion nanoparticles for multimodal imaging and synergetic chemo-photodynamic therapy of cancer, Biomater Sci, 8, 2488, 10.1039/C9BM02081K
Chen, 2017, Oxygen-self-produced nanoplatform for relieving hypoxia and breaking resistance to sonodynamic treatment of pancreatic cancer, ACS Nano, 11, 12849, 10.1021/acsnano.7b08225
Xie, 2018, O2-loaded pH-responsive multifunctional nanodrug carrier for overcoming hypoxia and highly efficient chemo-photodynamic cancer therapy, Chem Mater, 31, 483, 10.1021/acs.chemmater.8b04321
Liu, 2018, Aggressive man-made red blood cells for hypoxia-resistant photodynamic therapy, Adv Mater, 30
Yang, 2020, Defeating relapsed and refractory malignancies through a nano-enabled mitochondria-mediated respiratory inhibition and damage pathway, Biomaterials, 229, 119580, 10.1016/j.biomaterials.2019.119580
An, 2020, A pH/ultrasound dual-response biomimetic nanoplatform for nitric oxide gas-sonodynamic combined therapy and repeated ultrasound for relieving hypoxia, Biomaterials, 230, 119636, 10.1016/j.biomaterials.2019.119636
Deng, 2018, Nitric oxide as an all-rounder for enhanced photodynamic therapy: hypoxia relief, glutathione depletion and reactive nitrogen species generation, Biomaterials, 187, 55, 10.1016/j.biomaterials.2018.09.043
Brodin, 2015, Photodynamic therapy and its role in combined modality anticancer treatment, Technol Cancer Res Treat, 14, 355, 10.1177/1533034614556192
Li, 2018, Synergistic sonodynamic/chemotherapeutic suppression of hepatocellular carcinoma by targeted biodegradable mesoporous nanosonosensitizers, Adv Funct Mater, 28, 1800145, 10.1002/adfm.201800145
Han, 2018, Oxygen-deficient black titania for synergistic/enhanced sonodynamic and photoinduced cancer therapy at near infrared-II biowindow, ACS Nano, 12, 4545, 10.1021/acsnano.8b00899
Xu, 2019, Multifunctional albumin-based delivery system generated by programmed assembly for tumor-targeted multimodal therapy and imaging, ACS Appl Mater Interfaces, 11, 38385, 10.1021/acsami.9b11263
Zheng, 2020, Molecular targeted nanotheranostics for future individualized cancer treatment, Expet Opin Drug Deliv, 17, 1059, 10.1080/17425247.2020.1772748
Chen, 2014, Advance of molecular imaging technology and targeted imaging agent in imaging and therapy, BioMed Res Int, 2014, 819324
Kievit, 2011, Cancer nanotheranostics: improving imaging and therapy by targeted delivery across biological barriers, Adv Mater, 23, H217, 10.1002/adma.201102313
Zhang, 2019, Dual-responsive nanosystem for precise molecular subtyping and resistant reversal of EGFR targeted therapy, Chem Eng J, 372, 483, 10.1016/j.cej.2019.04.140
Liu, 2018, Theranostic nanosensitizers for highly efficient MR/fluorescence imaging-guided sonodynamic therapy of gliomas, J Cell Mol Med, 22, 5394, 10.1111/jcmm.13811
Chen, 2019, A multifunctional-targeted nanoagent for dual-mode image-guided therapeutic effects on ovarian cancer cells, Int J Nanomed, 14, 753, 10.2147/IJN.S187929
Yano, 2011, Current states and future views in photodynamic therapy, J Photochem Photobiol C Photochem Rev, 12, 46, 10.1016/j.jphotochemrev.2011.06.001
Lucena, 2015, Combined treatments with photodynamic therapy for non-melanoma skin cancer, Int J Mol Sci, 16, 25912, 10.3390/ijms161025912
Sun, 2016, Curative effect of the recent photofrin photodynamic adjuvant treatment on young patients with advanced colorectal cancer, Oncol Lett, 11, 2071, 10.3892/ol.2016.4179
Hosokawa, 2020, Porfimer sodium-mediated photodynamic therapy in patients with head and neck squamous cell carcinoma, Photodiagnosis Photodyn Ther, 29, 101627, 10.1016/j.pdpdt.2019.101627
Papayan, 2020, Clinical potential of photodynamic diagnosis and therapy of tracheobronchial malignancies in the visible and infrared spectral ranges, Translational Biophotonics, 2, 10.1002/tbio.201900019
Farrakhova, 2019, Trials of a fluorescent endoscopic video system for diagnosis and treatment of the head and neck cancer, J Clin Med, 8, 2229, 10.3390/jcm8122229
Wang, 2013, A prospective pilot study to evaluate combined topical photodynamic therapy and surgery for extramammary Paget's disease, Laser Surg Med, 45, 296, 10.1002/lsm.22142
Jing, 2014, Complete remission of two patients with recurrent and wide spread extramammary Paget disease obtained from 5-aminolevulinic acid-based photodynamic therapy and imiquimod combination treatment, Photodiagnosis Photodyn Ther, 11, 434, 10.1016/j.pdpdt.2014.03.006
Inui, 2014, Case report: a breast cancer patient treated with GcMAF, sonodynamic therapy and hormone therapy, Anticancer Res, 34, 4589
Kenyon, 2009, Activated cancer therapy using light and ultrasound—a case series of sonodynamic photodynamic therapy in 115 patients over a 4 year period, Curr Drug Ther, 4, 179, 10.2174/157488509789055036
Lin, 2020, Ultrasound activated sensitizers and applications, Angew Chem Int Ed Engl, 59, 2, 10.1002/anie.201906823
Niu, 2018, Photodynamic therapy in hypoxia: near-infrared-sensitive, self-supported, oxygen generation nano-platform enabled by upconverting nanoparticles, Chem Eng J, 352, 818, 10.1016/j.cej.2018.07.049
Hsu, 2018, Lanthanide-doped core–shell–shell nanocomposite for dual photodynamic therapy and luminescence imaging by a single X-ray excitation source, ACS Appl Mater Interfaces, 10, 7859, 10.1021/acsami.8b00015
Jiang, 2018, Dual-peak absorbing semiconducting copolymer nanoparticles for first and second near-infrared window photothermal therapy: a comparative study, Adv Mater, 30, 10.1002/adma.201705980
Jiang, 2019, Metabolizable semiconducting polymer nanoparticles for second near-infrared photoacoustic imaging, Adv Mater, 31, 10.1002/adma.201808166
Jiang, 2020, Transformable hybrid semiconducting polymer nanozyme for second near-infrared photothermal ferrotherapy, Nat Commun, 11, 1857, 10.1038/s41467-020-15730-x
Dos Santos, 2019, Photodynamic therapy in cancer treatment—an update review, J Cancer Metastasis and Treatment, 5, 25
Hannani, 2015, Extracorporeal photopheresis: tolerogenic or immunogenic cell death? Beyond current dogma, Front Immunol, 6, 349, 10.3389/fimmu.2015.00349