Photobleaching kinetics, photoproduct formation, and dose estimation during ALA induced PpIX PDT of MLL cells under well oxygenated and hypoxic conditions

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作者
Jonathan S. Dysart
Michael S. Patterson
机构
[1] Physics Research,Juravinski Cancer Centre
[2] McMaster University,Department of Medical Physics and Applied Radiation Sciences
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Photochemical & Photobiological Sciences | 2006年 / 5卷
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摘要
Fluorescence photobleaching and photoproduct formation were investigated during δ-aminolevulinic acid (ALA) induced protoporphyrin IX (PpIX) PDT of MLL cells in vitro. Cells were incubated in either 0.1 or 1.0 mM ALA for 4 h and were treated with 532 nm or 635 nm light under well oxygenated or hypoxic conditions. Fluorescence spectra were acquired during treatment. Photobleaching and photoproduct formation were quantified using singular value decomposition fitting of fluorescence spectra to experimentally determined basis spectra for PpIX, photoprotoporphyrin (Ppp), product II (peak at 655 nm), and product III (peak at 618 nm). PpIX photobleaching occurred under both normal and hypoxic conditions. The photobleaching kinetics could not be explained by purely first- or second-order photobleaching kinetics, and were attributed to differences in PpIX binding at the two ALA incubation concentrations. Ppp was the main photoproduct and accumulated in higher levels in the absence of oxygen, likely a result of reduced Ppp photobleaching under hypoxia. Increases in product II fluorescence occurred mainly in the presence of oxygen. To assess potential fluorescence based PDT dose metrics, cell viability was measured at select times during treatment using a colony formation assay. Cell survival correlated well to changes in product II fluorescence, independent of oxygenation, sensitizer concentration, and treatment wavelength, suggesting that this product is primarily a result of singlet oxygen mediated reactions and may potentially be useful to quantify singlet oxygen dose during PDT.
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页码:73 / 81
页数:8
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共 153 条
[1]  
Fukuda H(2005)Aminolevulinic acid: from its unique biological function to its star role in photodynamic therapy Int. J. Biochem. Cell Biol. 37 272-276
[2]  
Casas A(1996)- J. Photochem. Photobiol., B 36 121-126
[3]  
Batlle A(1990) investigation of ALA-induced protoporphyrin IX J. Photochem. Photobiol., B 6 143-148
[4]  
Krammer B(1998)Photodynamic therapy with endogenous protoporphyrin IX: basic principles and present clinical experience Br. J. Cancer 77 1621-1627
[5]  
Uberriegler K(2000)The influence of hypoxia and pH on aminolaevulinic acid-induced photodynamic therapy in bladder cancer cells J. Photochem. Photobiol., B 54 72-80
[6]  
Kennedy J C(1999)5-Aminolevulinic acid and its derivatives: physical chemical properties and protoporphyrin IX formation in cultured cells Br. J. Cancer 79 1372-7
[7]  
Pottier R H(2002)Hypoxia significantly reduces aminolaevulinic acid-induced protoporphyrin IX synthesis in EMT6 cells Photochem. Photobiol. 76 452-456
[8]  
Pross D C(1996)Temperature effect on accumulation of protoporphyrin IX after topical application of 5-aminolevulinic acid and its methylester and hexylester derivatives in normal mouse skin J. Photochem. Photobiol., B 33 225-231
[9]  
Wyld L(1997)Formation of water-soluble porphyrins and protoporphyrin IX in 5-aminolevulinic-acid-incubated carcinoma cells Br. J. Cancer 76 705-712
[10]  
Reed M W(2003)Factors affecting aminolaevulinic acid-induced generation of protoporphyrin IX Photochem. Photobiol. 78 271-277