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Heterotypic Three-dimensional In Vitro Modeling of Stromal-Epithelial Interactions During Ovarian Cancer Initiation and Progression
Published on: August 28, 2012
Ki-67 as a molecular target for therapy in an in vitro three-dimensional model for ovarian cancer
Ramtin Rahmanzadeh1, Prakash Rai, Jonathan P Celli
1Wellman Center for Photomedicine, Massachusetts General Hospital, Harvard Medical School, Boston, Massachusetts 02114, USA.
Abstract:
Targeting molecular markers and pathways implicated in cancer cell growth is a promising avenue for developing effective therapies. Although the Ki-67 protein (pKi-67) is a key marker associated with aggressively proliferating cancer cells and poor prognosis, its full potential as a therapeutic target has never before been successfully shown. In this regard, its nuclear localization presents a major hurdle because of the need for intracellular and intranuclear delivery of targeting and therapeutic moieties. Using a liposomally encapsulated construct, we show for the first time the specific delivery of a Ki-67-directed antibody and subsequent light-triggered death in the human ovarian cancer cell line OVCAR-5. Photoimmunoconjugate-encapsulating liposomes (PICEL) were constructed from anti-pKi-67 antibodies conjugated to fluorescein 5(6)-isothiocyanate, as a photoactivatable agent, followed by encapsulation in noncationic liposomes. Nucleolar localization of the PICELs was confirmed by confocal imaging. Photodynamic activation with PICELs specifically killed pKi-67-positive cancer cells both in monolayer and in three-dimensional (3D) cultures of OVCAR-5 cells, with the antibody TuBB-9 targeting a physiologically active form of pKi-67 but not with MIB-1, directed to a different epitope. This is the first demonstration of (a) the exploitation of Ki-67 as a molecular target for therapy and (b) specific delivery of an antibody to the nucleolus in monolayer cancer cells and in an in vitro 3D model system. In view of the ubiquity of pKi-67 in proliferating cells in cancer and the specificity of targeting in 3D multicellular acini, these findings are promising and the approach merits further investigation.
Insights
Researchers developed a novel liposome delivery system to target the Ki-67 protein in ovarian cancer cells. This innovative approach successfully triggered cancer cell death using light activation, demonstrating a new therapeutic strategy for Ki-67-positive cancers.
Area of Science:
- Oncology
- Nanomedicine
- Molecular Biology
Background:
- Ki-67 protein (pKi-67) is a marker of aggressive cancer proliferation and poor prognosis.
- Targeting pKi-67 is challenging due to its nuclear localization, requiring intracellular delivery.
- Previous therapeutic strategies have not fully exploited pKi-67's potential.
Purpose of the Study:
- To demonstrate the therapeutic potential of targeting the Ki-67 protein.
- To develop a method for specific intracellular and intranuclear delivery of therapeutic moieties.
- To investigate light-triggered cancer cell death using a novel delivery system.
Main Methods:
- Construction of photoimmunoconjugate-encapsulating liposomes (PICELs) with anti-pKi-67 antibodies and a photoactivatable agent.
- Encapsulation of PICELs in noncationic liposomes for targeted delivery.
- Confirmation of nucleolar localization via confocal imaging and assessment of cancer cell killing upon photodynamic activation in vitro.
Main Results:
- PICELs successfully delivered anti-pKi-67 antibodies to the nucleolus of OVCAR-5 ovarian cancer cells.
- Photodynamic activation of PICELs specifically killed pKi-67-positive cancer cells in both monolayer and 3D cultures.
- Targeting a specific epitope on pKi-67 with the TuBB-9 antibody was effective, unlike targeting a different epitope with MIB-1.
Conclusions:
- This study presents the first successful exploitation of Ki-67 as a molecular target for cancer therapy.
- Specific antibody delivery to the nucleolus was achieved in both 2D and 3D cancer cell models.
- The findings suggest a promising new therapeutic approach for pKi-67-expressing cancers, warranting further investigation.

