Literature DB >> 26502410

Photodynamic therapy as an effective therapeutic approach in MAME models of inflammatory breast cancer.

Neha Aggarwal1, Ann Marie Santiago2, David Kessel3, Bonnie F Sloane4,5.   

Abstract

Photodynamic therapy (PDT) is a minimally invasive, FDA-approved therapy for treatment of endobronchial and esophageal cancers that are accessible to light. Inflammatory breast cancer (IBC) is an aggressive and highly metastatic form of breast cancer that spreads to dermal lymphatics, a site that would be accessible to light. IBC patients have a relatively poor survival rate due to lack of targeted therapies. The use of PDT is underexplored for breast cancers but has been proposed for treatment of subtypes for which a targeted therapy is unavailable. We optimized and used a 3D mammary architecture and microenvironment engineering (MAME) model of IBC to examine the effects of PDT using two treatment protocols. The first protocol used benzoporphyrin derivative monoacid A (BPD) activated at doses ranging from 45 to 540 mJ/cm(2). The second PDT protocol used two photosensitizers: mono-L-aspartyl chlorin e6 (NPe6) and BPD that were sequentially activated. Photokilling by PDT was assessed by live-dead assays. Using a MAME model of IBC, we have shown a significant dose-response in photokilling by BPD-PDT. Sequential activation of NPe6 followed by BPD is more effective in photokilling of tumor cells than BPD alone. Sequential activation at light doses of 45 mJ/cm(2) for each agent resulted in >90 % cell death, a response only achieved by BPD-PDT at a dose of 360 mJ/cm(2). Our data also show that effects of PDT on a volumetric measurement of 3D MAME structures reflect efficacy of PDT treatment. Our study is the first to demonstrate the potential of PDT for treating IBC.

Entities:  

Keywords:  3D; Inflammatory breast cancer; MAME cultures; Photodynamic therapy

Mesh:

Substances:

Year:  2015        PMID: 26502410      PMCID: PMC4753063          DOI: 10.1007/s10549-015-3618-6

Source DB:  PubMed          Journal:  Breast Cancer Res Treat        ISSN: 0167-6806            Impact factor:   4.872


  75 in total

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8.  [A proposal for the use of tridimensional reconstruction in oncology to better assess tumor stage and response to therapy].

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9.  Inflammatory breast cancer (IBC) and patterns of recurrence: understanding the biology of a unique disease.

Authors:  Massimo Cristofanilli; Vicente Valero; Aman U Buzdar; Shu-Wan Kau; Kristine R Broglio; Ana Maria Gonzalez-Angulo; Nour Sneige; Rabiul Islam; Naoto T Ueno; Thomas A Buchholz; Sonja E Singletary; Gabriel N Hortobagyi
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10.  Two combined photosensitizers: a goal for more effective photodynamic therapy of cancer.

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Authors:  Karin L Lee; Bradley L Carpenter; Amy M Wen; Reza A Ghiladi; Nicole F Steinmetz
Journal:  ACS Biomater Sci Eng       Date:  2016-03-23

3.  Trafficking of a Single Photosensitizing Molecule to Different Intracellular Organelles Demonstrates Effective Hydroxyl Radical-Mediated Photodynamic Therapy in the Endoplasmic Reticulum.

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4.  Catch and Release Photosensitizers: Combining Dual-Action Ruthenium Complexes with Protease Inactivation for Targeting Invasive Cancers.

Authors:  Karan Arora; Mackenzie Herroon; Malik H Al-Afyouni; Nicholas P Toupin; Thomas N Rohrabaugh; Lauren M Loftus; Izabela Podgorski; Claudia Turro; Jeremy J Kodanko
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5.  Listeria innocua Dps as a nanoplatform for bioluminescence based photodynamic therapy utilizing Gaussia princeps luciferase and zinc protoporphyrin IX.

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6.  Modeling Tumor: Lymphatic Interactions in Lymphatic Metastasis of Triple Negative Breast Cancer.

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  7 in total

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