Zinc porphyrin photosensitizers incorporated with heavy-atom halogens for in vitro photodynamic therapy
Zinc porphyrin photosensitizers incorporated with heavy-atom halogens for in vitro photodynamic therapy
- Research Article
331
- 10.1111/j.1751-1097.1986.tb05647.x
- Jun 1, 1986
- Photochemistry and Photobiology
Porphyrin photosensitization and phototherapy.
- Research Article
115
- 10.1016/j.jphotochem.2008.08.006
- Aug 22, 2008
- Journal of Photochemistry and Photobiology A: Chemistry
Photophysical characterization of imidazolium-substituted Pd(II), In(III), and Zn(II) porphyrins as photosensitizers for photodynamic therapy
- Research Article
9
- 10.1016/j.jphotobiol.2024.112904
- Apr 3, 2024
- Journal of Photochemistry and Photobiology B: Biology
The fluorescence lifetime of a porphyrinic photosensitizer (PS) is an important parameter to assess the aggregation state of the PS even in complex biological environments. Aggregation-induced quenching of the PS can significantly reduce the yield of singlet oxygen generation and thus its efficiency as a medical drug in photodynamic therapy (PDT) of diseased tissues. Hydrophobicity and the tendency to form aggregates pose challenges on the development of efficient PSs and often require carrier systems. A systematic study was performed to probe the impact of PS structure and encapsulation into polymeric carriers on the fluorescence lifetime in solution and in the intracellular environment. Five different porphyrinic PSs including chlorin e6 (Ce6) derivatives and tetrakis(m-hydroxyphenyl)-porphyrin and -chlorin were studied in free form and combined with polyvinylpyrrolidone (PVP) or micelles composed of triblock-copolymers or Cremophor. Following incubation of HeLa cells with these systems, fluorescence lifetime imaging combined with phasor analysis and image segmentation was applied to study the lifetime distribution in the intracellular surrounding. The data suggest that for free PSs, the structure-dependent cell uptake pathways determine their state and emission lifetimes. PS localization in the plasma membrane yielded mostly monomers with long fluorescence lifetimes whereas the endocytic pathway with subsequent lysosomal deposition adds a short-lived component for hydrophilic anionic PSs. Prolonged incubation times led to increasing contributions from short-lived components that derive from aggregates mainly localized in the cytoplasm. Encapsulation of PSs into polymeric carriers led to monomerization and mostly fluorescence emission decays with long fluorescence lifetimes in solution. However, the efficiency depended on the binding strength that was most pronounced for PVP. In the cellular environment, PVP was able to maintain monomeric long-lived species over prolonged incubation times. This was most pronounced for Ce6 derivatives with a logP value around 4.5. Micellar encapsulation led to faster release of the PSs resulting in multiple components with long and short fluorescence lifetimes. The hydrophilic hardly aggregating PS exhibited a mostly stable invariant lifetime distribution over time with both carriers. The presented data are expected to contribute to optimized PDT treatment protocols and improved PS-carrier design for preventing intracellular fluorescence quenching. In conclusion, amphiphilic and concurrent hydrophobic PSs with high membrane affinity as well as strong binding to the carrier have best prospects to maintain their photophysical properties in vivo and serve thus as efficient photodynamic diagnosis and PDT drugs.
- Research Article
27
- 10.1016/j.juro.2011.03.039
- May 20, 2011
- Journal of Urology
Preclinical Study of the Novel Vascular Occluding Agent, WST11, for Photodynamic Therapy of the Canine Prostate
- Research Article
29
- 10.1016/j.bbamem.2011.02.011
- Feb 18, 2011
- Biochimica et Biophysica Acta (BBA) - Biomembranes
Interactions between selected photosensitizers and model membranes: an NMR classification
- Research Article
50
- 10.1016/j.actbio.2021.05.048
- May 31, 2021
- Acta Biomaterialia
Mitochondria-targeting and ROS-sensitive smart nanoscale supramolecular organic framework for combinational amplified photodynamic therapy and chemotherapy
- Research Article
13
- 10.1016/j.tet.2018.04.025
- Apr 11, 2018
- Tetrahedron
Meso-substituted porphyrin photosensitizers with enhanced near-infrared absorption: Synthesis, characterization and biological evaluation for photodynamic therapy
- Research Article
32
- 10.1016/j.saa.2022.121447
- May 30, 2022
- Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy
New porphyrin photosensitizers—Synthesis, singlet oxygen yield, photophysical properties and application in PDT
- Research Article
66
- 10.1016/j.biomaterials.2019.119576
- Oct 24, 2019
- Biomaterials
Central metal-derived co-assembly of biomimetic GdTPP/ZnTPP porphyrin nanocomposites for enhanced dual-modal imaging-guided photodynamic therapy
- Research Article
34
- 10.3390/pharmaceutics13091512
- Sep 18, 2021
- Pharmaceutics
The development of new photodynamic therapy (PDT) agents designed for bladder cancer (BC) treatments is of utmost importance to prevent its recurrence and progression towards more invasive forms. Here, three different porphyrinic photosensitizers (PS) (TMPyP, Zn-TMPyP, and P1-C5) were non-covalently loaded onto graphene oxide (GO) or graphene quantum dots (GQDs) in a one-step process. The cytotoxic effects of the free PS and of the corresponding hybrids were compared upon blue (BL) and red-light (RL) exposure on T24 human BC cells. In addition, intracellular reactive oxygen species (ROS) and singlet oxygen generation were measured. TMPyP and Zn-TMPyP showed higher efficiency under BL (IC50: 0.42 and 0.22 μm, respectively), while P1-C5 was more active under RL (IC50: 0.14 μm). In general, these PS could induce apoptotic cell death through lysosomes damage. The in vitro photosensitizing activity of the PS was not compromised after their immobilization onto graphene-based nanomaterials, with Zn-TMPyP@GQDs being the most promising hybrid system under RL (IC50: 0.37 μg/mL). Overall, our data confirm that GO and GQDs may represent valid platforms for PS delivery, without altering their performance for PDT on BC cells.
- Research Article
25
- 10.1016/j.jconrel.2019.10.010
- Nov 2, 2019
- Journal of Controlled Release
Evaluation of polyvinylpyrrolidone and block copolymer micelle encapsulation of serine chlorin e6 and chlorin e4 on their reactivity towards albumin and transferrin and their cell uptake
- Research Article
724
- 10.1016/j.jphotobiol.2003.10.002
- Nov 27, 2003
- Journal of Photochemistry and Photobiology B: Biology
Research advances in the use of tetrapyrrolic photosensitizers for photodynamic therapy
- Research Article
1
- 10.5857/rcp.2015.4.2.37
- Jun 30, 2015
- Rapid Communication in Photoscience
To examine the photosensitized biomolecules damaging activity, dimethoxyP(V)tetrakis(2-naphthyl)porphyrin (NP) and dimethoxyP(V)tetraphenylporphyrin (PP) were synthesized. The naphthyl moiety of NP hardly deactivated the photoexcited P(V)porphyrin ring in ethanol. In aqueous solution, the naphthyl moiety showed the quenching effect on the photoexcited porphyrin ring, possibly through electron transfer and self-quenching by a molecular association. Binding interaction between human serum albumin (HSA), a water soluble protein, and these porphyrins could be confirmed by the absorption spectral change. The apparent association constant of NP was larger than that of PP. It is explained by that more hydrophobic NP can easily bind into the hydrophobic pockets of HSA. The photoexcited PP effectively induced damage of the tryptophan residue of HSA, through electron transfer-mediated oxidation and singlet oxygen generation. NP also induced HSA damage during photo-irradiation and the contributions of the electron transfer and singlet oxygen mechanisms were speculated. The electron transfer-mediated mechanism to the photosensitized protein damage should be advantageous for photodynamic therapy in hypoxic condition. The quantum yield of the HSA photodamage by PP was significantly larger than that of NP. The quenching effect of the naphthyl moiety is considered to suppress the photosensitized protein damage. In conclusion, the naphthalene substitution to the P(V)porphyrins can enhance the binding interaction with hydrophobic biomacromolecules such as protein, however, this substitution may reduce the photodynamic effect of P(V)porphyrin ring in aqueous media.
- Abstract
- 10.1016/s1572-1000(08)70080-2
- Aug 1, 2008
- Photodiagnosis and Photodynamic Therapy
78 PEROPERATIVE OPTICAL AUTOFLUORESCENCE BIOPSY OF RESECTION MARGINS IN PATIENTS WITH LOW-POSITIONED COLORECTAL CARCINOMA
- Research Article
227
- 10.1067/gien.2001.0003
- Dec 1, 2001
- Gastrointestinal Endoscopy
Combined endoscopic mucosal resection and photodynamic therapy for esophageal neoplasia within Barrett's esophagus