Photodynamic therapy (PDT): A short review on cellular mechanisms and cancer research applications for PDT

被引:970
作者
Robertson, C. A. [1 ]
Evans, D. Hawkins [1 ]
Abraharnse, H. [1 ]
机构
[1] Univ Johannesburg, Laser Res Grp, ZA-2028 Johannesburg, South Africa
关键词
Photodynamic therapy; PDT mechanisms; Photosensitizers; Photochemistry; Cellular mechanisms; Tumor destruction; MESSENGER-RNA; HUMAN SKIN; MELANOMA; DEATH; MODES; EXPRESSION; HISTORY;
D O I
10.1016/j.jphotobiol.2009.04.001
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Photodynamic therapy (PDT) has been used for many years, but it is only now becoming widely accepted and utilized. Originally it was developed as a tumor therapy and some of its most successful applications are for non-malignant diseases. This article provides a broad review of different parameters used and mechanisms instituted in PDT such as photosensitizers (PS), photochemistry and photophysics, cellular localization, cellular signaling, cell metabolism and modes of cell death that operate on a cellular level, as well as photosensitizer pharmacokinetics, biodistribution, tumor localization and modes of tumor destruction. These specific cellular mechanisms are most commonly applied in PDT and for the most part are often researched and exploited. If the combination of these specific parameters and mechanisms can be optimized within PDT it could possibly be used as a suitable alternative for the treatment and management of specific cancers. (c) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:1 / 8
页数:8
相关论文
共 34 条
[1]   Laser-mediated photodynamic therapy [J].
Alexiades-Armenakas, M .
CLINICS IN DERMATOLOGY, 2006, 24 (01) :16-25
[2]   Clinical photodynamic therapy of head and neck cancers-A review of applications and outcomes [J].
Allison, R. R. ;
Cuenca, R. E. ;
Downie, G. H. ;
Camnitze, P. ;
Brodish, B. ;
Sibata, C. H. .
PHOTODIAGNOSIS AND PHOTODYNAMIC THERAPY, 2005, 2 (03) :205-222
[3]  
ANSTEY A, 2004, MED TREAT MED PUB CO, V32, P24
[4]   The present and future role of photodynamic therapy in cancer treatment [J].
Brown, SB ;
Brown, EA ;
Walker, I .
LANCET ONCOLOGY, 2004, 5 (08) :497-508
[5]   Photodynamic therapy: Off-label and alternative use in dermatological practice [J].
Buggiani, G. ;
Troiano, M. ;
Rossi, R. ;
Lotti, T. .
PHOTODIAGNOSIS AND PHOTODYNAMIC THERAPY, 2008, 5 (02) :134-138
[6]   Molecular effectors of multiple cell death pathways initiated by photodynamic therapy [J].
Buytaert, Esther ;
Dewaele, Michael ;
Agostinis, Patrizia .
BIOCHIMICA ET BIOPHYSICA ACTA-REVIEWS ON CANCER, 2007, 1776 (01) :86-107
[7]   Mechanisms in photodynamic therapy: part two-cellular signaling, cell metabolism and modes of cell death [J].
Castano, Ana P. ;
Demidova, Tatiana N. ;
Hamblin, Michael R. .
PHOTODIAGNOSIS AND PHOTODYNAMIC THERAPY, 2005, 2 (01) :1-23
[8]   Mechanisms in photodynamic therapy: Part three- Photosensitizer pharmacokinetics, biodistribution, tumor localization and modes of tumor destruction [J].
Castano, Ana P. ;
Demidova, Tatiana N. ;
Hamblin, Michael R. .
PHOTODIAGNOSIS AND PHOTODYNAMIC THERAPY, 2005, 2 (02) :91-106
[9]   Mechanisms in photodynamic therapy: part one-photosensitizers, photochemistry and cellular localization [J].
Castano, Ana P. ;
Demidova, Tatiana N. ;
Hamblin, Michael R. .
PHOTODIAGNOSIS AND PHOTODYNAMIC THERAPY, 2004, 1 (04) :279-293
[10]   Hypericin phototoxicity induces different modes of cell death in melanoma and human skin cells [J].
Davids, Lester M. ;
Kleemann, Britta ;
Kacerovska, Denisa ;
Pizinger, Karl ;
Kidson, Susan H. .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY B-BIOLOGY, 2008, 91 (2-3) :67-76