Effect of Metalation on Porphyrin-Based Bifunctional Agents in Tumor Imaging and Photodynamic Therapy
- PMID: 26735143
- PMCID: PMC8185909
- DOI: 10.1021/acs.bioconjchem.5b00656
Effect of Metalation on Porphyrin-Based Bifunctional Agents in Tumor Imaging and Photodynamic Therapy
Abstract
Herein we report the syntheses and comparative photophysical, electrochemical, in vitro, and in vivo biological efficacy of 3-(1'-hexyloxy)ethyl-3-devinylpyropheophorbide-cyanine dye (HPPH-CD) and the corresponding indium (In), gallium (Ga), and palladium (Pd) conjugates. The insertion of a heavy metal in the HPPH moiety makes a significant difference in FRET (Förster resonance energy transfer) and electrochemical properties, which correlates with singlet oxygen production [a key cytotoxic agent for photodynamic therapy (PDT)] and long-term in vivo PDT efficacy. Among the metalated analogs, the In(III) HPPH-CD showed the best cancer imaging and PDT efficacy. Interestingly, in contrast to free base HPPH-CD, which requires a significantly higher therapeutic dose (2.5 μmol/kg) than imaging dose (0.3 μmol/kg), the corresponding In(III) HPPH-CD showed excellent imaging and therapeutic potential at a remarkably low dose (0.3 μmol/kg) in BALB/c mice bearing Colon26 tumors. A comparative study of metalated and corresponding nonmetalated conjugates further confirmed that STAT-3 dimerization can be used as a biomarker for determining the level of photoreaction and tumor response.
Conflict of interest statement
The authors declare no competing financial interest.
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References
-
- Jori G (1996) Tumour photosensitizers: approaches to enhance the selectivity and efficiency of photodynamic therapy. J. Photochem. Photobiol., B 36 (2), 87–93. - PubMed
-
- Dougherty TJ (1996) A brief history of clinical photodynamic therapy development at Roswell Park Cancer Institute. J. Clin. Laser Med. Surg. 14 (5), 219–21. - PubMed
-
- Mallidi S, Huang H-C, Liu JY, Mensah L, Mai Z, and Hasan T (2013) Photoacoustic guided photodynamic therapy of glioblastoma. Cancer Res. 73, 3923.
-
- Eljamel S (2010) Photodynamic applications in brain tumors: a comprehensive review of the literature. Photodiagn. Photodyn. Ther. 7 (2), 76–85. - PubMed
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