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Updated: Mar 8, 2026

Quantitation of Intra-peritoneal Ovarian Cancer Metastasis
Published on: July 18, 2016
Novel approach for the detection of intraperitoneal micrometastasis using an ovarian cancer mouse model
Ayesha B Alvero1, Dongin Kim2,3, Eydis Lima1
1Division of Reproductive Sciences, Department of Obstetrics, Gynecology and Reproductive Sciences, Yale University School of Medicine, New Haven CT, USA.
Abstract:
Patients with epithelial ovarian cancer have the best overall survival when maximal surgical effort is accomplished. However, despite numerous technological advances, surgery still relies primarily on white-light reflectance and the surgeon's vision. As such, micrometastases are usually missed and most patients clinically classified as a complete responder eventually recur and succumb to the disease. Our objective is to develop optical enhancers which can aid in the visualization of ovarian cancer micrometastasis. To this end we developed a nanoparticle (NP) platform, which is specifically targeted to the tumor microenvironment. Targeting is achieved by coating FDA-approved PLGA-PEG NP with the peptide sequence RGD, which binds with high affinity to αVβ3 integrins present in both the tumor-associated neovasculature and on the surface of ovarian cancer cells. Administration of the NP platform carrying fluorescent dyes to mice bearing intraperitoneal ovarian cancer allowed visualization of tumor-associated vasculature and its contrast against normal blood vessels. More importantly, we demonstrate the visualization of intraperitoneal ovarian cancer micrometastasis as small as 100 μm with optimal resolution. Finally, we demonstrate that the fluorescent dye cargo was able to penetrate intra-tumorally. Such modality could be used to allow microscopic surgical debulking to assure maximal surgical effort.
Insights
This study developed targeted nanoparticles to visualize ovarian cancer micrometastasis, improving surgical precision. These optical enhancers help surgeons detect small tumors, potentially enhancing patient survival rates.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Epithelial ovarian cancer survival depends on maximal surgical debulking.
- Current surgical visualization methods fail to detect micrometastases, leading to recurrence.
- Advanced imaging is needed to enhance the detection of microscopic tumor deposits.
Purpose of the Study:
- To develop nanoparticle-based optical enhancers for visualizing ovarian cancer micrometastasis.
- To target nanoparticles to the tumor microenvironment for improved detection.
- To aid surgeons in achieving complete tumor resection.
Main Methods:
- Developed a nanoparticle (NP) platform coated with RGD peptide for targeting αVβ3 integrins.
- Administered fluorescently labeled NPs to mice with intraperitoneal ovarian cancer.
- Utilized optical imaging to visualize tumor vasculature and micrometastases.
Main Results:
- Demonstrated visualization of tumor-associated vasculature distinct from normal vessels.
- Successfully visualized intraperitoneal ovarian cancer micrometastasis as small as 100 μm.
- Confirmed intra-tumoral penetration of the fluorescent dye cargo.
Conclusions:
- The RGD-targeted NP platform effectively visualizes ovarian cancer micrometastasis.
- This optical enhancement modality can improve surgical detection and debulking.
- Potential to significantly improve overall survival for ovarian cancer patients.

