Literature DB >> 7917904

Cellular levels of photosensitisers in tumours: the role of proximity to the blood supply.

M Korbelik1, G Krosl.   

Abstract

Flow cytometry using the tumour perfusion probe Hoechst 33342 was employed to examine the distribution of photosensitisers in tumour cells located at different distances from the blood supply. Two tumour models, the SCCVII squamous cell carcinoma and FsaR fibrosarcoma growing in C3H/HeN mice, were used in the experiments. Among the photosensitisers tested, only BPD (benzoporphyrin derivative monoacid) exhibited uniform distribution in tumour cells irrespective of their distance from the vasculature. In this respect, 5-aminolaevulinic acid (i.e. its metabolite protoporphyrin IX), di- and tetrasulphonated aluminium phthalocyanines (A1PcS2 and AlPcS4), di- and tetrasulphonated tetraphenylporphines (TPPS2 and TPPS4), Photofrin and bacteriochlorophyll-a (i.e. its metabolite bacteriopheophytin-a) followed BPD in decreasing order in their efficacy of accumulation in tumour cells remote from the blood supply. This photosensitiser property appeared not to depend on tumour type, tumour size, route of photosensitiser administration, time after the administration, photosensitiser lipophilicity or on the presence of host cell infiltrate in the tumour. Following treatment with photodynamic therapy (PDT) in vivo, tumour cells were sorted based on their blood vessel proximity and their survival was determined by colony formation assay. The data demonstrate that the direct killing of tumour cells by Photofrin- and A1PcS2-based PDT decreases with increasing distance of the cells from the blood supply.

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Year:  1994        PMID: 7917904      PMCID: PMC2033422          DOI: 10.1038/bjc.1994.358

Source DB:  PubMed          Journal:  Br J Cancer        ISSN: 0007-0920            Impact factor:   7.640


  14 in total

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Authors:  R E Durand; D J Chaplin; P L Olive
Journal:  Methods Cell Biol       Date:  1990       Impact factor: 1.441

2.  Porphyrin-lipoprotein association as a factor in porphyrin localization.

Authors:  D Kessel
Journal:  Cancer Lett       Date:  1986-11       Impact factor: 8.679

3.  Localization of potent photosensitizers in human tumor LOX by means of laser scanning microscopy.

Authors:  Q Peng; J Moan; G Farrants; H E Danielsen; C Rimington
Journal:  Cancer Lett       Date:  1990-09       Impact factor: 8.679

4.  Photodynamic therapy with endogenous protoporphyrin IX: basic principles and present clinical experience.

Authors:  J C Kennedy; R H Pottier; D C Pross
Journal:  J Photochem Photobiol B       Date:  1990-06       Impact factor: 6.252

5.  Intermittent blood flow in a murine tumor: radiobiological effects.

Authors:  D J Chaplin; P L Olive; R E Durand
Journal:  Cancer Res       Date:  1987-01-15       Impact factor: 12.701

6.  Distribution of disulfonated and tetrasulfonated aluminum phthalocyanine between malignant and host cell populations of a murine fibrosarcoma.

Authors:  M Korbelik
Journal:  J Photochem Photobiol B       Date:  1993-10       Impact factor: 6.252

7.  Distribution and elimination of Photofrin II in mice.

Authors:  D A Bellnier; Y K Ho; R K Pandey; J R Missert; T J Dougherty
Journal:  Photochem Photobiol       Date:  1989-08       Impact factor: 3.421

8.  Oxygen limitation of direct tumor cell kill during photodynamic treatment of a murine tumor model.

Authors:  B W Henderson; V H Fingar
Journal:  Photochem Photobiol       Date:  1989-03       Impact factor: 3.421

9.  Cell selection from a murine tumour using the fluorescent probe Hoechst 33342.

Authors:  D J Chaplin; R E Durand; P L Olive
Journal:  Br J Cancer       Date:  1985-04       Impact factor: 7.640

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Authors:  P L Olive; D J Chaplin; R E Durand
Journal:  Br J Cancer       Date:  1985-11       Impact factor: 7.640

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  8 in total

Review 1.  Photodynamic therapy in the management of pre-malignant head and neck mucosal dysplasia and microinvasive carcinoma.

Authors:  Harry Quon; Craig E Grossman; Jarod C Finlay; Timothy C Zhu; Clarice S Clemmens; Kelly M Malloy; Theresa M Busch
Journal:  Photodiagnosis Photodyn Ther       Date:  2011-06       Impact factor: 3.631

2.  The impact of macrophage-cancer cell interaction on the efficacy of photodynamic therapy.

Authors:  Mladen Korbelik; Michael R Hamblin
Journal:  Photochem Photobiol Sci       Date:  2015-01-26       Impact factor: 3.982

3.  Mechanisms in photodynamic therapy: Part three-Photosensitizer pharmacokinetics, biodistribution, tumor localization and modes of tumor destruction.

Authors:  Ana P Castano; Tatiana N Demidova; Michael R Hamblin
Journal:  Photodiagnosis Photodyn Ther       Date:  2005-08-10       Impact factor: 3.631

Review 4.  Photodynamic therapy.

Authors:  T J Dougherty; C J Gomer; B W Henderson; G Jori; D Kessel; M Korbelik; J Moan; Q Peng
Journal:  J Natl Cancer Inst       Date:  1998-06-17       Impact factor: 13.506

5.  Verteporfin- and sodium porfimer-mediated photodynamic therapy enhances pancreatic cancer cell death without activating stromal cells in the microenvironment.

Authors:  Jingjing Lu; Bhaskar Roy; Marlys Anderson; Cadman L Leggett; Michael J Levy; Brian Pogue; Tayyaba Hasan; Kenneth K Wang
Journal:  J Biomed Opt       Date:  2019-11       Impact factor: 3.170

Review 6.  Photodynamic Therapy-Current Limitations and Novel Approaches.

Authors:  Gurcan Gunaydin; M Emre Gedik; Seylan Ayan
Journal:  Front Chem       Date:  2021-06-10       Impact factor: 5.221

7.  Interstitial photodynamic therapy with the second-generation photosensitizer bacteriochlorin a in a rat model for liver metastases.

Authors:  J P Rovers; J J Schuitmaker; A L Vahrmeijer; J H van Dierendonck; O T Terpstra
Journal:  Br J Cancer       Date:  1998-06       Impact factor: 7.640

8.  Photofrin accumulation in malignant and host cell populations of various tumours.

Authors:  M Korbelik; G Krosl
Journal:  Br J Cancer       Date:  1996-02       Impact factor: 7.640

  8 in total

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