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Role of Photoactive Phytocompounds in Photodynamic Therapy of Cancer

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Role of Photoactive Phytocompounds in Photodynamic Therapy of Cancer ( role-photoactive-phytocompounds-photodynamic-therapy-cancer )

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Molecules 2020, 25, 4102 22 of 22 153. Seigler,D.S.PlantSecondaryMetabolism;SpringerScience&BusinessMedia:Berlin,Germany,1998. 154. Gutiérrez,I.;Bertolotti,S.G.;Biasutti,M.;Soltermann,A.T.;García,N.A.Quinonesandhydroxyquinonesas generators and quenchers of singlet molecular oxygen. Can. J. Chem. 1997, 75, 423–428. [CrossRef] 155. Pawłowska,J.;Tarasiuk,J.;Wolf,C.R.;Paine,M.J.I.;Borowski,E.DifferentialAbilityofCytostaticsFrom Anthraquinone Group to Generate Free Radicals in Three Enzymatic Systems: NADH Dehydrogenase, NADPH Cytochrome P450 Reductase, and Xanthine Oxidase. Oncol. Res. Featur. Preclin. Clin. Cancer Ther. 2003, 13, 245–252. [CrossRef] [PubMed] 156. Singh,A.HerbalDrugsasTherapeuticAgents;CRCPress:BocaRaton,FL,USA,2014. 157. Montoya,S.C.N.;Comini,L.;Vittar,B.R.;Fernández,I.M.;Rivarola,V.A.;Cabrera,J.L.Phototoxiceffectsof Heterophyllaea pustulata (Rubiaceae). Toxicon 2008, 51, 1409–1415. [CrossRef] [PubMed] 158. Comini,L.;Fernandez,I.;Vittar,N.R.;Montoya,S.N.;Cabrera,J.L.;Rivarola,V.A.Photodynamicactivityof anthraquinones isolated from Heterophyllaea pustulata Hook f. (Rubiaceae) on MCF-7c3 breast cancer cells. Phytomedicine 2011, 18, 1093–1095. [CrossRef] [PubMed] 159. Vittar, N.B.R.; Awruch, J.; Azizuddin, K.; Rivarola, V.A. Caspase-independent apoptosis, in human MCF-7c3 breast cancer cells, following photodynamic therapy, with a novel water-soluble phthalocyanine. Int. J. Biochem. Cell Boil. 2010, 42, 1123–1131. [CrossRef] 160. Pirillo, J.; De Simone, B.C.; Russo, N. Photophysical properties prediction of selenium- and tellurium-substituted thymidine as potential UVA chemotherapeutic agents. Theor. Chem. Accounts 2015, 135, 8. [CrossRef] 161. Mazzone,G.;Alberto,M.E.;DeSimone,B.C.;Marino,T.;Russo,N.CanExpandedBacteriochlorinsActas Photosensitizers in Photodynamic Therapy? Good News from Density Functional Theory Computations. Molecules 2016, 21, 288. [CrossRef] [PubMed] 162. Mansoori, B.; Mohammadi, A.; Doustvandi, M.A.; Mohammadnejad, F.; Kamari, F.; Gjerstorff, M.F.; Baradaran, B.; Hamblin, M.R. Photodynamic therapy for cancer: Role of natural products. Photodiagnosis Photodyn. Ther. 2019, 26, 395–404. [CrossRef] [PubMed] 163. Pandey,R.K.;Goswami,L.N.;Chen,Y.;Gryshuk,A.;Missert,J.R.;Oseroff,A.;Dougherty,T.J.Nature:Arich source for developing multifunctional agents. tumor-imaging and photodynamic therapy. Lasers Surg. Med. 2006, 38, 445–467. [CrossRef] © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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