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Landscape Phage Fusion Protein-mediated Targeting of Nanomedicines Enhances their Prostate Tumor Cell Association and Cytotoxic Efficiency

P.K. Jayannaa, D. Bedia, J.W. Gillespiea, P. DeInnocentesa, T. Wangb, V.P. Torchilinb, R.C. Birda, V.A. PetrenkoaCorresponding Author Informationemail address

Received 22 November 2009; received in revised form 27 December 2009; accepted 7 January 2010. published online 05 February 2010.
Accepted Manuscript

Abstract 

Tumor-specific cytotoxicity of drugs can be enhanced by targeting them to tumor receptors using tumor-specific ligands. Phage display offers a high-throughput approach to screen for the targeting ligands. We have successfully isolated phage fusion peptides selective and specific for PC3 prostate cancer cells. Also, we have demonstrated a novel approach of targeting liposomes through tumor-specific phage fusion coat proteins, exploiting the intrinsic properties of the phage coat protein as an integral membrane protein. Here we describe the production of Rhodamine-labeled liposomes as well as doxorubicin-loaded long circulating liposomes targeted to PC3 prostate tumor cells via PC-specific phage peptides, as an extension of our previous studies. Targeting of labeled liposomes was demonstrated using fluorescence microscopy as well as flow cytometry. Targeting of doxorubicin-loaded liposomes enhanced their cytotoxic effect against PC3 cells in vitro indicating a possible therapeutic advantage. The simplicity of the approach for generating targeted liposomes coupled with the ability to rapidly obtain tumor-specific phage fusion proteins via phage display may contribute to a combinatorial system for the production of targeted liposomal therapeutics for advanced stages of prostate tumor.

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a Department of Pathobiology, Auburn University, AL-36849, USA

b Department of Pharmaceutical Sciences, Northeastern University, Boston, MA-02115, USA

Corresponding Author InformationCorresponding author. Tel.: +334 844 2897; fax: +334 844 2652.

PII: S1549-9634(10)00012-2

doi:10.1016/j.nano.2010.01.005

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