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Photophysicochemical Light Antiproliferative vs cancer

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Photophysicochemical Light Antiproliferative vs cancer ( photophysicochemical-light-antiproliferative-vs-cancer )

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Materials 2020, 13, 2646 22 of 24 35. Treibs, A.; Jacob, K. Cyclotrimethine Dyes Derived from Squaric Acid. Angew. Chem. Int. Ed. 1965, 4, 694. [CrossRef] 36. Avirah, R.R.; Jayaram, D.T.; Adarsh, N.; Ramaiah, D. Squaraine dyes in PDT: From basic design to in vivo demonstration. Org. Biomol. Chem. 2012, 10, 911–920. [CrossRef] [PubMed] 37. Friães, S.; Silva, A.M.; Boto, R.E.; Ferreira, D.; Fernandes, J.R.; Souto, E.B.; Almeida, P.; Ferreira, L.F.V.; Reis, L.V. Synthesis, spectroscopic characterization and biological evaluation of unsymmetrical aminosquarylium cyanine dyes. Bioorg. Med. Chem. 2017, 25, 3803–3814. [CrossRef] [PubMed] 38. Terpetschnig, E.; Szmacinski, H.; Lakowicz, J.R. An investigation of squaraines as a new class of fluorophores with long-wavelength excitation and emission. J. Fluoresc. 1993, 3, 153–155. [CrossRef] [PubMed] 39. Reis, L.V.; Serrano, J.P.; Almeida, P.; Santos, P.F. New Synthetic Approach to Aminosquarylium Cyanine Dyes. Synlett 2002, 1617–1620. [CrossRef] 40. Santos, P.F.; Reis, L.V.; Almeida, P.; Oliveira, A.S.; Ferreira, L.F.V. Singlet oxygen generation ability of squarylium cyanine dyes. J. Photochem. Photobiol. Chem. 2003, 160, 159–161. [CrossRef] 41. Lima, E.; Ferreira, O.; Silva, J.F.; Santos, A.O.; Boto, R.E.; Fernandes, J.R.; Almeida, P.; Silvestre, S.M.; Reis, L.V. Photodynamic activity of indolenine-based aminosquaraine cyanine dyes: Synthesis and in vitro photobiological evaluation. Dye Pigm. 2020, 174, 108024. [CrossRef] 42. Reis, L.V.; Serrano, J.; Almeida, P.; Santos, P.F. The synthesis and characterization of novel, aza-substituted squarylium cyanine dyes. Dye Pigm. 2009, 81, 197–202. [CrossRef] 43. Volkova, K.D.; Kovalska, V.B.; Losytskyy, M.Y.; Reis, L.V.; Santos, P.F.; Almeida, P.; Lynch, D.E.; Yarmoluk, S.M. Aza-substituted squaraines for the fluorescent detection of albumins. Dye Pigm. 2011, 90, 41–47. [CrossRef] 44. Babu, P.S.S.; Manu, P.M.; Dhanya, T.J.; Tapas, P.; Meera, R.N.; Surendran, A.; Aneesh, K.A.; Vadakkancheril, S.J.; Ramaiah, D.; Nair, S.A.; et al. Bis (3,5-diiodo-2,4,6-trihydroxyphenyl) squaraine photodynamic therapy disrupts redox homeostasis and induce mitochondria-mediated apoptosis in human breast cancer cells. Sci. Rep. 2017, 7, 42126. [CrossRef] [PubMed] 45. Ramaiah, D.; Joy, A.; Chandrasekhar, N.; Eldho, N.V.; Das, S.; George, M.V. Halogenated Squaraine Dyes as Potential Photochemotherapeutic Agents. Synthesis and Study of Photophysical Properties and Quantum Efficiencies of Singlet Oxygen Generation. Photochem. Photobiol. 1997, 65, 783–790. [CrossRef] 46. Amarego, W.L.F.; Perrin, D.D. Purification of Laboratory Chemicals, 4th ed.; Butterworth-Heinemann: Oxford, UK, 1996; ISBN 0-7506-3761-7. 47. Pardal, A.; Ramos, S.S.; Santos, P.F.; Reis, L.V.; Almeida, P. Synthesis and Spectroscopic Characterisation of N-Alkyl Quaternary Ammonium Salts Typical Precursors of Cyanines. Molecules 2002, 7, 320–330. [CrossRef] 48. Friães, S.; Lima, E.; Boto, R.E.; Ferreira, D.; Fernandes, J.R.; Ferreira, L.F.V.; Silva, A.M.; Reis, L.V. Photophysicochemical Properties and In Vitro Phototherapeutic Effects of Iodoquinoline—And Benzothiazole-Derived Unsymmetrical Squaraine Cyanine Dyes. Appl. Sci. 2019, 9, 5414. [CrossRef] 49. Souto, E.B.; Doktorovova, S.; Campos, J.R.; Martins-Lopes, P.; Silva, A.M. Surface-tailored anti-HER2/neu-solid lipid nanoparticles for site-specific targeting MCF-7 and BT-474 breast cancer cells. Eur. J. Pharm. Sci. 2019, 128, 27–35. [CrossRef] [PubMed] 50. Andreani, T.; Kiill, C.P.; De Souza, A.L.R.; Fangueiro, J.; Fernandes, L.S.G.; Doktorovova, S.; Santos, D.; Garcia, M.L.; Gremião, M.P.D.; Souto, E.B.; et al. Surface engineering of silica nanoparticles for oral insulin delivery: Characterization and cell toxicity studies. Colloids Surf. B Biointerfaces 2014, 123, 916–923. [CrossRef] [PubMed] 51. Silva, A.M.; Martins-Gomes, C.; Coutinho, T.E.; Fangueiro, J.F.; Sánchez-López, E.; Pashirova, T.N.; Andreani, T.; Souto, E.B. Soft Cationic Nanoparticles for Drug Delivery: Production and Cytotoxicity of Solid Lipid Nanoparticles (SLNs). Appl. Sci. 2019, 9, 4438. [CrossRef] 52. Da ̨browski, J.M.; Arnaut, L.G. Photodynamic therapy (PDT) of cancer: From local to systemic treatment. Photochem. Photobiol. Sci. 2015, 14, 1765–1780. [CrossRef] [PubMed] 53. Diwu, Z.; Lown, J.W. Phototherapeutic potential of alternative photosensitizers to porphyrins. Pharmacol. Ther. 1994, 63, 1–35. [CrossRef] 54. Deng, H.; Li, T.; Xie, J.; Huang, N.; Gu, Y.; Zhao, J. Synthesis and bio-evaluation of novel hypocrellin derivatives: Potential photosensitizers for photodynamic therapy of age-related macular degeneration. Dye Pigm. 2013, 99, 930–939. [CrossRef]

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