Induction of intensive tumor suppression by antiangiogenic photodynamic therapy using polycation‐modified liposomal photosensitizer
Open Access
- 1 April 2003
- Vol. 97 (8) , 2027-2034
- https://doi.org/10.1002/cncr.11283
Abstract
BACKGROUND: The authors previously observed that antiangiogenic scheduling of photodynamic therapy (PDT) was effective in causing tumor regression through hemostasis. It would thus be expected that photosensitizer entrapped in polycation liposomes (PCLs) would be efficiently taken up in tumor‐derived angiogenic vascular endothelial cells due to the strong electrostatic adhesion between the polycation and the plasma membrane, thus resulting in enhanced phototherapeutic efficacy.METHODS: Tumors and angiogenesis were induced by subcutaneous injection of Meth‐A sarcoma cells into 5‐week‐old male BALB/c mice. PDT treatment was performed by an intravenous (i.v.) injection of benzoporphyrin derivative monoacid ring A (BPD‐MA)‐entrapped liposomes or the PCLs (0.25 mg/kg in terms of BPD‐MA), followed by exposure to a laser light of 689 nm with 150 J/cm2 of fluence 15 minutes post injection.RESULTS: As a result of PDT on angiogenesis‐model mice prepared by the dorsal air sac technique, neovascular destruction after laser irradiation was observed when BPD‐MA entrapped in PCLs was used. Furthermore, strong suppression of tumor growth was identified by the PCL‐mediated PDT treatment along with a prolonged life span for the mice. Destruction of angiogenic vessels and subsequent tumor cell apoptosis were observed after PCL‐mediated PDT treatment in an immunofluorescence study. Interestingly, the biodistribution of the injected BPD‐MA that was delivered by PCLs indicated invariable photosensitization levels in tumor tissues.CONCLUSIONS: The study revealed that antiangiogenic PDT treatment using a low dose of BPD‐MA entrapped in PCLs efficiently induced the destruction of angiogenic vessels and subsequent tumor suppression by vessel occlusion. Cancer 2003;97:2027–34. © 2003 American Cancer Society.DOI 10.1002/cncr.11283Keywords
This publication has 25 references indexed in Scilit:
- Do VHL and HIF-1 mirror p53 and Mdm-2? Degradation-transactivation loops of oncoproteins and tumor suppressorsOncogene, 2001
- Changing therapeutic paradigms for exudative age-related macular degeneration: antiangiogenic agents and photodynamic therapyExpert Opinion on Investigational Drugs, 1999
- Liposome-delivered 131I-labelled Zn(II)-phthalocyanine as a radiodiagnostic agent for tumoursCancer Letters, 1996
- Tumor-localizing activity of porphyrin and its affinity to LDL, transferrinCancer Letters, 1995
- Tumor cell-enhanced sensitivity of vascular endothelial cells to photodynamic therapyLasers in Surgery and Medicine, 1994
- LIPID‐ASSOCIATED METHYLPHEOPHORBIDE‐A (HEXYL‐ETHER) AS A PHOTODYNAMIC AGENT IN TUMOR‐BEARING MICEPhotochemistry and Photobiology, 1993
- Properties of incorporation, redistribution, and integrity of porphyrin-low-density lipoprotein complexesBiochemistry, 1993
- HOW DOES PHOTODYNAMIC THERAPY WORK?Photochemistry and Photobiology, 1992
- PRECLINICAL EXAMINATION OF FIRST and SECOND GENERATION PHOTOSENSITIZERS USED IN PHOTODYNAMIC THERAPYPhotochemistry and Photobiology, 1991
- In vitro interaction of the photoactive anticancer porphyrin derivative photofrin II with low density lipoprotein, and its delivery to cultured human fibroblastsFEBS Letters, 1986