For: | Lamberti MJ, Vittar NBR, Rivarola VA. Breast cancer as photodynamic therapy target: Enhanced therapeutic efficiency by overview of tumor complexity. World J Clin Oncol 2014; 5(5): 901-907 [PMID: 25493228 DOI: 10.5306/wjco.v5.i5.901] |
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URL: | https://www.wjgnet.com/2218-4333/full/v5/i5/901.htm |
Number | Citing Articles |
1 |
Dejun Zhang, Huaming Liu, Qiong Wei, Qibing Zhou. Structure–activity relationship study of anticancer thymidine–quinoxaline conjugates under the low radiance of long wavelength ultraviolet light for photodynamic therapy. European Journal of Medicinal Chemistry 2016; 107: 180 doi: 10.1016/j.ejmech.2015.11.006
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2 |
Serena Duchi, Sara Ramos-Romero, Barbara Dozza, Marta Guerra-Rebollo, Luca Cattini, Marco Ballestri, Paolo Dambruoso, Andrea Guerrini, Giovanna Sotgiu, Greta Varchi, Enrico Lucarelli, Jeronimo Blanco. Development of near-infrared photoactivable phthalocyanine-loaded nanoparticles to kill tumor cells: An improved tool for photodynamic therapy of solid cancers. Nanomedicine: Nanotechnology, Biology and Medicine 2016; 12(7): 1885 doi: 10.1016/j.nano.2016.04.014
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3 |
Otávio A. Chaves, Rui J.S. Loureiro, Carlos Serpa, Pedro F. Cruz, Aurélio B.B. Ferreira, José Carlos Netto-Ferreira. Increasing the polarity of β-lapachone does not affect its binding capacity with bovine plasma protein. International Journal of Biological Macromolecules 2024; 263: 130279 doi: 10.1016/j.ijbiomac.2024.130279
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4 |
Milena J. Szafraniec, Leszek Fiedor. One ring is not enough to rule them all. Albumin-dependent ABCG2-mediated transport of chlorophyll-derived photosensitizers. European Journal of Pharmaceutical Sciences 2021; 167: 106001 doi: 10.1016/j.ejps.2021.106001
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5 |
Paula Morales, Laura Moreno, Javier Fernández-Ruiz, Nadine Jagerovic. Synthesis of a novel CB2 cannabinoid-porphyrin conjugate based on an antitumor chromenopyrazoledione. Journal of Porphyrins and Phthalocyanines 2017; 21(01): 67 doi: 10.1142/S1088424617500092
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6 |
Rebecca L. Yanovsky, Diana W. Bartenstein, Gary S. Rogers, Steven J. Isakoff, Steven T. Chen. Photodynamic therapy for solid tumors: A review of the literature. Photodermatology, Photoimmunology & Photomedicine 2019; 35(5): 295 doi: 10.1111/phpp.12489
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7 |
Yolande Ikala Openda, Balaji Babu, Tebello Nyokong. Novel cationic-chalcone phthalocyanines for photodynamic therapy eradication of S. aureus and E. coli bacterial biofilms and MCF-7 breast cancer. Photodiagnosis and Photodynamic Therapy 2022; 38: 102863 doi: 10.1016/j.pdpdt.2022.102863
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8 |
Seungbeom Ko, Joo Yeon Park, Yu-Kyoung Oh. A Microbial Siderophore-Inspired Self-Gelling Hydrogel for Noninvasive Anticancer Phototherapy. Cancer Research 2019; 79(24): 6178 doi: 10.1158/0008-5472.CAN-19-0975
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9 |
Eurico Lima, Renato E. Boto, Diana Ferreira, José R. Fernandes, Paulo Almeida, Luis F. V. Ferreira, Eliana B. Souto, Amélia M. Silva, Lucinda V. Reis. Quinoline- and Benzoselenazole-Derived Unsymmetrical Squaraine Cyanine Dyes: Design, Synthesis, Photophysicochemical Features and Light-Triggerable Antiproliferative Effects against Breast Cancer Cell Lines. Materials 2020; 13(11): 2646 doi: 10.3390/ma13112646
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10 |
Khatereh Khorsandi, Reza Hosseinzadeh, Fedora Khatibi Shahidi. Photodynamic treatment with anionic nanoclays containing curcumin on human triple‐negative breast cancer cells: Cellular and biochemical studies. Journal of Cellular Biochemistry 2019; 120(4): 4998 doi: 10.1002/jcb.27775
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11 |
José Francisco Algorri, Mario Ochoa, Pablo Roldán-Varona, Luís Rodríguez-Cobo, José Miguel López-Higuera. Photodynamic Therapy: A Compendium of Latest Reviews. Cancers 2021; 13(17): 4447 doi: 10.3390/cancers13174447
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12 |
Deepika Yadav, Pramod Sharma, Prem Mishra, Rishabha Malviya. Management of Cancer using Photodynamic Therapy: Advancement and
Applications. Current Cancer Therapy Reviews 2024; 20(4): 357 doi: 10.2174/0115733947239258231003091058
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13 |
Wojciech Domka, Dorota Bartusik-Aebisher, Izabela Rudy, Klaudia Dynarowicz, Karolina Pięta, David Aebisher. Photodynamic therapy in brain cancer: mechanisms, clinical and preclinical studies and therapeutic challenges. Frontiers in Chemistry 2023; 11 doi: 10.3389/fchem.2023.1250621
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14 |
Jiefu Jin, Balaji Krishnamachary, Yelena Mironchik, Hisataka Kobayashi, Zaver M. Bhujwalla. Phototheranostics of CD44-positive cell populations in triple negative breast cancer. Scientific Reports 2016; 6(1) doi: 10.1038/srep27871
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15 |
Paulo Emilio Feuser, Arthur Poester Cordeiro, Gustavo de Bem Silveira, Maria Eduarda Anastácio Borges Corrêa, Paulo Cesar Lock Silveira, Claudia Sayer, Pedro Henrique Hermes de Araújo, Ricardo Andrez Machado-de-Ávila, Alexandre Gonçalves Dal Bó. Co-encapsulation of sodium diethyldithiocarbamate (DETC) and zinc phthalocyanine (ZnPc) in liposomes promotes increases phototoxic activity against (MDA-MB 231) human breast cancer cells. Colloids and Surfaces B: Biointerfaces 2021; 197: 111434 doi: 10.1016/j.colsurfb.2020.111434
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16 |
Cristina J. Dias, Luisa Helguero, Maria Amparo F. Faustino. Current Photoactive Molecules for Targeted Therapy of Triple-Negative Breast Cancer. Molecules 2021; 26(24): 7654 doi: 10.3390/molecules26247654
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17 |
Gyeong Hong, Ji-Eun Chang. Enhancing Cancer Treatment Through Combined Approaches: Photodynamic Therapy in Concert with Other Modalities. Pharmaceutics 2024; 16(11): 1420 doi: 10.3390/pharmaceutics16111420
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18 |
Laura Privitera, Irene Paraboschi, Kate Cross, Stefano Giuliani. Above and Beyond Robotic Surgery and 3D Modelling in Paediatric Cancer Surgery. Frontiers in Pediatrics 2021; 9 doi: 10.3389/fped.2021.777840
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19 |
Ashutosh Gupta, Kumar Nishchaya, Moumita Saha, Gaurisha Alias Resha Ramnath Naik, Sarika Yadav, Shreya Srivastava, Amrita Arup Roy, Sudheer Moorkoth, Srinivas Mutalik, Namdev Dhas. Recent advancements in nanoconstructs for the theranostics applications for triple negative breast cancer. Journal of Drug Delivery Science and Technology 2024; 93: 105401 doi: 10.1016/j.jddst.2024.105401
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20 |
R. I. Rakhimzhanova, N. A. Shanazarov, D. E. Turzhanova. Photodynamic therapy of intradermal metastatic breast cancer (literature review). Biomedical Photonics 2019; 8(3): 36 doi: 10.24931/2413-9432-2019-8-3-36-42
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21 |
Yedi Herdiana, Nasrul Wathoni, Shaharum Shamsuddin, I Made Joni, Muchtaridi Muchtaridi. Chitosan-Based Nanoparticles of Targeted Drug Delivery System in Breast Cancer Treatment. Polymers 2021; 13(11): 1717 doi: 10.3390/polym13111717
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22 |
Joanna Gustalik, David Aebisher, Dorota Bartusik-Aebisher. Photodynamic therapy in breast cancer treatment. Journal of Applied Biomedicine 2022; 20(3): 98 doi: 10.32725/jab.2022.013
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23 |
Başak Sezgi Bilen, Mukaddes Özçeşmeci, Mustafa Akın, Büşra Çakır, Karrar Ali Mohammed Hasan Alsakini, Ayşe Nalbantsoy, Neslihan Şaki, Esin Hamuryudan. 3′,3′,4′,4′,5′,5′,6′,6′,6′-nonafluoro-hexyloxy groups substituted phthalocyanines: Synthesis, characterization and their biological properties. Dyes and Pigments 2024; 221: 111814 doi: 10.1016/j.dyepig.2023.111814
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24 |
Luis Exequiel Ibarra, Simona Camorani, Lisa Agnello, Emilia Pedone, Luciano Pirone, Carlos Alberto Chesta, Rodrigo Emiliano Palacios, Monica Fedele, Laura Cerchia. Selective Photo-Assisted Eradication of Triple-Negative Breast Cancer Cells through Aptamer Decoration of Doped Conjugated Polymer Nanoparticles. Pharmaceutics 2022; 14(3): 626 doi: 10.3390/pharmaceutics14030626
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25 |
Nallely P. Jiménez-Mancilla, Liliana Aranda-Lara, Enrique Morales-Ávila, Miguel A. Camacho-López, Blanca E. Ocampo-García, Eugenio Torres-García, José A. Estrada-Guadarrama, Clara L. Santos-Cuevas, Keila Isaac-Olivé. Electron transfer reactions in rhodamine: Potential use in photodynamic therapy. Journal of Photochemistry and Photobiology A: Chemistry 2021; 409: 113131 doi: 10.1016/j.jphotochem.2021.113131
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26 |
Valentina Rapozzi, Francesca Moret, Luca Menilli, Andrea Guerrini, Daniele Tedesco, Marina Naldi, Manuela Bartolini, Mariachiara Gani, Sonia Zorzet, Marta Columbaro, Celeste Milani, Cecilia Martini, Claudia Ferroni, Greta Varchi. HSA-Binding Prodrugs-Based Nanoparticles Endowed with Chemo and Photo-Toxicity against Breast Cancer. Cancers 2022; 14(4): 877 doi: 10.3390/cancers14040877
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27 |
Pravena Ramachandran, Chong Yew Lee, Boon Keat Khor, Ruey-An Doong, Chern Ein Oon, Hooi Ling Lee. Synthesis and Study of the Photodynamic Activity of Titanium-based Nanocomposites on MDA-MB-231 Cells. 2020 IEEE 10th International Conference Nanomaterials: Applications & Properties (NAP) 2020; : 02BA01-1 doi: 10.1109/NAP51477.2020.9309691
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28 |
Elisa Gaio, Claudia Conte, Diletta Esposito, Elena Reddi, Fabiana Quaglia, Francesca Moret. CD44 Targeting Mediated by Polymeric Nanoparticles and Combination of Chlorine TPCS2a-PDT and Docetaxel-Chemotherapy for Efficient Killing of Breast Differentiated and Stem Cancer Cells In Vitro. Cancers 2020; 12(2): 278 doi: 10.3390/cancers12020278
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29 |
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30 |
Ali W. Al-Ani, Lei Zhang, Lenny Ferreira, Lyudmila Turyanska, Tracey D. Bradshaw, Neil R. Thomas. Listeria innocua Dps as a nanoplatform for bioluminescence based photodynamic therapy utilizing Gaussia princeps luciferase and zinc protoporphyrin IX. Nanomedicine: Nanotechnology, Biology and Medicine 2019; 20: 102005 doi: 10.1016/j.nano.2019.04.008
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31 |
Maryanne Trafani de Melo, Henrique Luis Piva, Antonio Claudio Tedesco. Design of new protein drug delivery system (PDDS) with photoactive compounds as a potential application in the treatment of glioblastoma brain cancer. Materials Science and Engineering: C 2020; 110: 110638 doi: 10.1016/j.msec.2020.110638
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32 |
María Julia Lamberti, Fátima María Mentucci, Emiliano Roselli, Paula Araya, Viviana Alicia Rivarola, Natalia Belén Rumie Vittar, Mariana Maccioni. Photodynamic Modulation of Type 1 Interferon Pathway on Melanoma Cells Promotes Dendritic Cell Activation. Frontiers in Immunology 2019; 10 doi: 10.3389/fimmu.2019.02614
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33 |
Ivan Sosthene Mfouo Tynga, Heidi Abrahamse. Breast Cancer Biology. 2020; doi: 10.5772/intechopen.84633
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34 |
Prakhar Sengar, Karelid Garcia-Tapia, Kanchan Chauhan, Akhil Jain, Karla Juarez-Moreno, Hugo A. Borbón-Nuñez, Hugo Tiznado, Oscar E. Contreras, Gustavo A. Hirata. Dual-photosensitizer coupled nanoscintillator capable of producing type I and type II ROS for next generation photodynamic therapy. Journal of Colloid and Interface Science 2019; 536: 586 doi: 10.1016/j.jcis.2018.10.090
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35 |
Alexander Trunov, Alexander Belikov. Development of Architectural Realizations of Phototherapy Computer's Systems for Prevention and Treatment. 2019 10th IEEE International Conference on Intelligent Data Acquisition and Advanced Computing Systems: Technology and Applications (IDAACS) 2019; : 334 doi: 10.1109/IDAACS.2019.8924240
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36 |
Fatima Noor, Ayesha Noor, Ali Raza Ishaq, Iqra Farzeen, Muhammad Hamzah Saleem, Kanwal Ghaffar, Muhammad Farhan Aslam, Sidra Aslam, Jen-Tsung Chen. Recent Advances in Diagnostic and Therapeutic Approaches for Breast Cancer: A Comprehensive Review. Current Pharmaceutical Design 2021; 27(20): 2344 doi: 10.2174/1381612827666210303141416
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37 |
Zachary K. Lyles, Mubin Tarannum, Cayli Mena, Natalia M. Inada, Vanderlei S. Bagnato, Juan L. Vivero‐Escoto. Biodegradable Silica‐Based Nanoparticles with Improved and Safe Delivery of Protoporphyrin IX for the In Vivo Photodynamic Therapy of Breast Cancer. Advanced Therapeutics 2020; 3(7) doi: 10.1002/adtp.202000022
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38 |
Nityanand Srivastava, Salman Sadullah Usmani, Rajasekaran Subbarayan, Rashmi Saini, Pranav Kumar Pandey. Hypoxia: syndicating triple negative breast cancer against various therapeutic regimens. Frontiers in Oncology 2023; 13 doi: 10.3389/fonc.2023.1199105
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39 |
Idrisa Rahman, Barry Liang, Andaleeb Sajid, Suresh V. Ambudkar, Huang‐Chiao Huang. Photodynamic priming modulates cellular ATP levels to overcome P‐glycoprotein‐mediated drug efflux in chemoresistant triple‐negative breast cancer. Photochemistry and Photobiology 2024; doi: 10.1111/php.13970
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40 |
María Julia Lamberti, Annunziata Nigro, Fátima María Mentucci, Natalia Belén Rumie Vittar, Vincenzo Casolaro, Jessica Dal Col. Dendritic Cells and Immunogenic Cancer Cell Death: A Combination for Improving Antitumor Immunity. Pharmaceutics 2020; 12(3): 256 doi: 10.3390/pharmaceutics12030256
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41 |
Fatimah S. Ismael, Hani Amasha, Wesam Bachir. Optimized Cylindrical Diffuser Powers for Interstitial PDT Breast Cancer Treatment Planning: A Simulation Study. BioMed Research International 2020; 2020: 1 doi: 10.1155/2020/2061509
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42 |
Shameer Pillarisetti, Veena Vijayan, Jayakumar Rangasamy, Rizia Bardhan, Saji Uthaman, In-Kyu Park. A multi-stimuli responsive alginate nanogel for anticancer chemo-photodynamic therapy. Journal of Industrial and Engineering Chemistry 2023; 123: 361 doi: 10.1016/j.jiec.2023.03.053
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43 |
Ping Wang, Suhui Sun, Huide Ma, Sujuan Sun, Duo Zhao, Shumin Wang, Xiaolong Liang. Treating tumors with minimally invasive therapy: A review. Materials Science and Engineering: C 2020; 108: 110198 doi: 10.1016/j.msec.2019.110198
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44 |
Magdalena Czarnecka-Czapczyńska, David Aebisher, Piotr Oleś, Barbara Sosna, Magdalena Krupka-Olek, Klaudia Dynarowicz, Wojciech Latos, Grzegorz Cieślar, Aleksandra Kawczyk-Krupka. The role of photodynamic therapy in breast cancer – A review of in vitro research. Biomedicine & Pharmacotherapy 2021; 144: 112342 doi: 10.1016/j.biopha.2021.112342
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45 |
Mariza Aires-Fernandes, Camila Fernanda Amantino, Stéphanie Rochetti do Amaral, Fernando Lucas Primo. Tissue Engineering and Photodynamic Therapy: A New Frontier of Science for Clinical Application -An Up-To-Date Review. Frontiers in Bioengineering and Biotechnology 2022; 10 doi: 10.3389/fbioe.2022.837693
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46 |
Gregory Benedetto, C. Greer Vestal, Christine Richardson. Aptamer-Functionalized Nanoparticles as “Smart Bombs”: The Unrealized Potential for Personalized Medicine and Targeted Cancer Treatment. Targeted Oncology 2015; 10(4): 467 doi: 10.1007/s11523-015-0371-z
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47 |
Hanieh Montaseri, Cherie Ann Kruger, Heidi Abrahamse. Review: Organic nanoparticle based active targeting for photodynamic therapy treatment of breast cancer cells. Oncotarget 2020; 11(22): 2120 doi: 10.18632/oncotarget.27596
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48 |
Rasanpreet Kaur, Alok Bhardwaj, Saurabh Gupta. Cancer treatment therapies: traditional to modern approaches to combat cancers. Molecular Biology Reports 2023; 50(11): 9663 doi: 10.1007/s11033-023-08809-3
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