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Published on: July 25, 2020
Identification of novel therapeutic targets in microdissected clear cell ovarian cancers
Michael P Stany1, Vinod Vathipadiekal, Laurent Ozbun
1Walter Reed Army Medical Center, Washington DC, United States of America.
Abstract:
Clear cell ovarian cancer is an epithelial ovarian cancer histotype that is less responsive to chemotherapy and carries poorer prognosis than serous and endometrioid histotypes. Despite this, patients with these tumors are treated in a similar fashion as all other ovarian cancers. Previous genomic analysis has suggested that clear cell cancers represent a unique tumor subtype. Here we generated the first whole genomic expression profiling using epithelial component of clear cell ovarian cancers and normal ovarian surface specimens isolated by laser capture microdissection. All the arrays were analyzed using BRB ArrayTools and PathwayStudio software to identify the signaling pathways. Identified pathways validated using serous, clear cell cancer cell lines and RNAi technology. In vivo validations carried out using an orthotopic mouse model and liposomal encapsulated siRNA. Patient-derived clear cell and serous ovarian tumors were grafted under the renal capsule of NOD-SCID mice to evaluate the therapeutic potential of the identified pathway. We identified major activated pathways in clear cells involving in hypoxic cell growth, angiogenesis, and glucose metabolism not seen in other histotypes. Knockdown of key genes in these pathways sensitized clear cell ovarian cancer cell lines to hypoxia/glucose deprivation. In vivo experiments using patient derived tumors demonstrate that clear cell tumors are exquisitely sensitive to antiangiogenesis therapy (i.e. sunitinib) compared with serous tumors. We generated a histotype specific, gene signature associated with clear cell ovarian cancer which identifies important activated pathways critical for their clinicopathologic characteristics. These results provide a rational basis for a radically different treatment for ovarian clear cell patients.
Insights
Clear cell ovarian cancer exhibits unique pathways in hypoxia, angiogenesis, and glucose metabolism. Targeting these pathways, particularly with anti-angiogenesis therapy, offers a new treatment strategy for this distinct ovarian cancer subtype.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Clear cell ovarian cancer (CCOC) is an aggressive epithelial ovarian cancer subtype with poor prognosis and resistance to chemotherapy.
- Current treatments for CCOC do not account for its unique biological characteristics, differing from serous and endometrioid histotypes.
Purpose of the Study:
- To identify unique molecular pathways and gene signatures in CCOC.
- To evaluate the therapeutic potential of targeting identified pathways in CCOC.
Main Methods:
- Whole genomic expression profiling of CCOC and normal ovarian surface epithelium using laser capture microdissection.
- Bioinformatic analysis (BRB ArrayTools, PathwayStudio) to identify signaling pathways.
- Validation using cell lines, RNAi, in vivo mouse models, and patient-derived tumors.
Main Results:
- Identified major activated pathways in CCOC related to hypoxic cell growth, angiogenesis, and glucose metabolism.
- Knockdown of key genes sensitized CCOC cell lines to hypoxia/glucose deprivation.
- CCOC tumors showed exquisite sensitivity to anti-angiogenesis therapy (sunitinib) compared to serous tumors.
Conclusions:
- Generated a histotype-specific gene signature for CCOC, highlighting critical activated pathways.
- Results provide a rationale for developing distinct treatment strategies for CCOC patients.
- Anti-angiogenesis therapy shows significant therapeutic potential for clear cell ovarian cancer.
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