Literature DB >> 16024640

Multiepitope HER2 targeting enhances photoimmunotherapy of HER2-overexpressing cancer cells with pyropheophorbide-a immunoconjugates.

Mark D Savellano1, Brian W Pogue, P Jack Hoopes, Ellen S Vitetta, Keith D Paulsen.   

Abstract

Multi-targeting strategies improve the efficacy of antibody and immunotoxin therapies but have not yet been thoroughly explored for HER2-based cancer treatments. We investigated multi-epitope HER2 targeting to boost photosensitizer immunoconjugate uptake as a way of enhancing photoimmunotherapy. Photoimmunotherapy may allow targeted photodynamic destruction of malignancies and may also potentiate anticancer antibodies. However, one obstacle preventing its clinical use is the delivery of enough photosensitizer immunoconjugates to target cells. Anti-HER2 photosensitizer immunoconjugates were constructed from two monoclonal antibodies (mAb), HER50 and HER66, using a novel method originally developed to label photosensitizer immunoconjugates with the photosensitizer, benzoporphyrin derivative verteporfin. Photosensitizer immunoconjugates were labeled instead with a promising alternative photosensitizer, pyropheophorbide-a (PPa), which required only minor changes to the conjugation procedure. Uptake and phototoxicity experiments using human cancer cells were conducted with the photosensitizer immunoconjugates and, for comparison, with free PPa. SK-BR-3 and SK-OV-3 cells served as HER2-overexpressing target cells. MDA-MB-468 cells served as HER2-nonexpressing control cells. Photosensitizer immunoconjugates with PPa/mAb molar ratios up to approximately 10 specifically targeted and photodynamically killed HER2-overexpressing cells. On a per mole basis, photosensitizer immunoconjugates were less phototoxic than free PPa, but photosensitizer immunoconjugates were selective for target cells whereas free PPa was not. Multiepitope targeted photoimmunotherapy with a HER50 and HER66 photosensitizer immunoconjugate mixture was significantly more effective than single-epitope targeted photoimmunotherapy with a single anti-HER2 photosensitizer immunoconjugate, provided photosensitizer immunoconjugate binding was saturated. This study shows that multiepitope targeting enhances HER2-targeted photoimmunotherapy and maintains a high degree of specificity. Consequently, it seems that multitargeted photoimmunotherapy should also be useful against cancers that overexpress other receptors.

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Year:  2005        PMID: 16024640     DOI: 10.1158/0008-5472.CAN-05-0426

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  23 in total

1.  Prostate-specific membrane antigen-targeted photodynamic therapy induces rapid cytoskeletal disruption.

Authors:  Tiancheng Liu; Lisa Y Wu; Clifford E Berkman
Journal:  Cancer Lett       Date:  2010-05-08       Impact factor: 8.679

2.  Targeting mutant p53 protein and the tumor vasculature: an effective combination therapy for advanced breast tumors.

Authors:  Yayun Liang; Cynthia Besch-Williford; Indira Benakanakere; Philip E Thorpe; Salman M Hyder
Journal:  Breast Cancer Res Treat       Date:  2010-03-27       Impact factor: 4.872

3.  Targeting cancer cells by using an antireceptor antibody-photosensitizer fusion protein.

Authors:  Ekaterina O Serebrovskaya; Eveline F Edelweiss; Oleg A Stremovskiy; Konstantin A Lukyanov; Dmitry M Chudakov; Sergey M Deyev
Journal:  Proc Natl Acad Sci U S A       Date:  2009-05-20       Impact factor: 11.205

Review 4.  Photodynamic therapy for prostate cancer--a review of current status and future promise.

Authors:  Caroline M Moore; Doug Pendse; Mark Emberton
Journal:  Nat Clin Pract Urol       Date:  2009-01

Review 5.  Optical and x-ray technology synergies enabling diagnostic and therapeutic applications in medicine.

Authors:  Brian W Pogue; Brian C Wilson
Journal:  J Biomed Opt       Date:  2018-10       Impact factor: 3.170

6.  Epidermal growth factor receptor-targeted photosensitizer selectively inhibits EGFR signaling and induces targeted phototoxicity in ovarian cancer cells.

Authors:  Adnan O Abu-Yousif; Anne C E Moor; Xiang Zheng; Mark D Savellano; Weiping Yu; Pål K Selbo; Tayyaba Hasan
Journal:  Cancer Lett       Date:  2012-01-18       Impact factor: 8.679

7.  A PSMA-targeted theranostic agent for photodynamic therapy.

Authors:  Ying Chen; Samit Chatterjee; Ala Lisok; Il Minn; Mrudula Pullambhatla; Bryan Wharram; Yuchuan Wang; Jiefu Jin; Zaver M Bhujwalla; Sridhar Nimmagadda; Ronnie C Mease; Martin G Pomper
Journal:  J Photochem Photobiol B       Date:  2016-12-18       Impact factor: 6.252

Review 8.  Breast cancer as photodynamic therapy target: Enhanced therapeutic efficiency by overview of tumor complexity.

Authors:  María Julia Lamberti; Natalia Belén Rumie Vittar; Viviana Alicia Rivarola
Journal:  World J Clin Oncol       Date:  2014-12-10

9.  In vitro targeted photodynamic therapy with a pyropheophorbide--a conjugated inhibitor of prostate-specific membrane antigen.

Authors:  Tiancheng Liu; Lisa Y Wu; Joseph K Choi; Clifford E Berkman
Journal:  Prostate       Date:  2009-05-01       Impact factor: 4.104

10.  A fiberoptic (photodynamic therapy type) device with a photosensitizer and singlet oxygen delivery probe tip for ovarian cancer cell killing.

Authors:  Dorota Bartusik; David Aebisher; Ashwini Ghogare; Goutam Ghosh; Inna Abramova; Tayyaba Hasan; Alexander Greer
Journal:  Photochem Photobiol       Date:  2013-04-22       Impact factor: 3.421

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