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Effect of dye aggregation on triarylmethane-mediated photoinduced damage of hexokinase and DNA
Lavinia M Lewis1, Guilherme L Indig
1University of Wisconsin, School of Pharmacy, Madison 53705 2222, USA.
Abstract:
The observation that enhanced mitochondrial membrane potential is a prevalent cancer cell phenotype has provided the conceptual basis for the development of mitochondrial targeting as a novel therapeutic strategy for both chemo- and photochemotherapy of neoplastic diseases. Cationic triarylmethane (TAM(+)) dyes represent a series of photosensitizers whose phototoxic effects develop at least in part at the mitochondrial level. In this report we describe how the molecular structure of four representative TAM(+) dyes (Crystal Violet, Ethyl Violet, Victoria blue R, and Victoria pure blue BO) affects their efficiency as mediators of the photoinduced inactivation of two model mitochondrial targets, hexokinase (HK) and DNA. Our results have indicated that TAM(+) dyes efficiently bind to HK and DNA in aqueous media both as dye monomers and aggregates, with the degree of aggregation increasing with increasing the lipophilic character of the photosensitizer. The efficiency with which HK and DNA are damaged upon 532 nm photolysis of biopolymer-TAM(+) complexes was found to decrease upon increasing the degree of dye aggregation over these macromolecular templates. Comparative experiments carried out both in water and in D(2)O, and in air-equilibrated and nitrogen-purged samples have also indicated that, at least when Crystal Violet is used as the photosensitizer, the mechanism of macromolecular damage does not require the involvement of molecular oxygen to operate. This finding makes Crystal Violet a potential candidate for use in photochemotherapy of hypoxic or poorly perfused tumor areas.
Insights
Cationic triarylmethane dyes target mitochondria for cancer therapy. Dye aggregation reduces photodynamic damage efficiency, but Crystal Violet shows potential for hypoxic tumors due to its oxygen-independent mechanism.
Area of Science:
- Biochemistry
- Photochemistry
- Cancer Therapeutics
Background:
- Enhanced mitochondrial membrane potential is common in cancer cells.
- Mitochondrial targeting is a promising strategy for cancer therapy.
- Cationic triarylmethane (TAM(+)) dyes are photosensitizers acting at the mitochondrial level.
Purpose of the Study:
- To investigate how the molecular structure of TAM(+) dyes influences their efficiency in photoinactivating mitochondrial targets.
- To compare the effects of dye aggregation on photosensitizer efficiency.
- To explore the mechanism of macromolecular damage induced by TAM(+) dyes.
Main Methods:
- Studied four TAM(+) dyes: Crystal Violet, Ethyl Violet, Victoria blue R, and Victoria pure blue BO.
- Assessed dye binding and photoinduced inactivation of hexokinase (HK) and DNA.
- Photolysis was performed at 532 nm.
- Investigated the role of molecular oxygen and solvent (H2O vs. D2O).
Main Results:
- TAM(+) dyes bind to HK and DNA as monomers and aggregates, with aggregation increasing with lipophilicity.
- Dye aggregation on macromolecular templates decreased the efficiency of photoinduced damage.
- Crystal Violet-induced macromolecular damage did not require molecular oxygen.
Conclusions:
- The degree of TAM(+) dye aggregation inversely affects their efficiency in photoinactivating mitochondrial targets.
- Crystal Violet's oxygen-independent mechanism makes it a potential candidate for photochemotherapy in hypoxic tumors.
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