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Updated: Jun 30, 2026

Surface-enhanced Resonance Raman Scattering Nanoprobe Ratiometry for Detecting Microscopic Ovarian Cancer via Folate Receptor Targeting
Published on: March 25, 2019
Applying Precision Medicine to Ovarian Cancer: Proof-of-Principle for a "Molecular Second Look"
Objectives:
The objectives of this study were to assess if targeted investigation for tumor-specific mutations by ultradeep DNA sequencing of peritoneal washes of ovarian cancer patients after primary surgical debulking and chemotherapy, and clinically diagnosed as disease free, provides a more sensitive and specific method to assess actual treatment response and tailor future therapy and to compare this "molecular second look" with conventional cytology and histopathology-based findings.
Methods/Materials:
We identified 10 patients with advanced-stage, high-grade serous ovarian cancer who had undergone second-look laparoscopy and for whom DNA could be isolated from biobanked paired blood, primary and recurrent tumor, and second-look peritoneal washes. A targeted 56 gene cancer-relevant panel was used for next-generation sequencing (average coverage, >6500×). Mutations were validated using either digital droplet polymerase chain reaction (ddPCR) or Sanger sequencing.
Results:
A total of 25 tumor-specific mutations were identified (median, 2/patient; range, 1-8). TP53 mutations were identified in at least 1 sample from all patients. All 5 pathology-based second-look positive patients were confirmed positive by molecular second look. Genetic analysis revealed that 3 of the 5 pathology-based negative second looks were actually positive. In the 2 patients, the second-look mutations were present in either the original primary or recurrent tumors. In the third, 2 high-frequency, novel frameshift mutations in MSH6 and HNF1A were identified.
Conclusions:
The molecular second look detects tumor-specific evidence of residual disease and provides genetic insight into tumor evolution and future recurrences beyond standard pathology. In the precision medicine era, detecting and genetically characterizing residual disease after standard treatment will be invaluable for improving patient outcomes.
Insights
Molecular second look using ultradeep sequencing of peritoneal washes detects residual ovarian cancer more sensitively than standard pathology. This approach aids in tailoring future therapies and understanding tumor evolution for improved patient outcomes.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Ovarian cancer recurrence is common after initial treatment.
- Accurate assessment of residual disease is crucial for treatment response evaluation and future therapy planning.
- Conventional methods like cytology and histopathology have limitations in detecting minimal residual disease.
Purpose of the Study:
- To evaluate ultradeep DNA sequencing of peritoneal washes as a sensitive method for detecting residual ovarian cancer after primary treatment.
- To compare the efficacy of this "molecular second look" with conventional pathology.
- To assess the potential of molecular profiling to guide future treatment strategies.
Main Methods:
- 10 patients with advanced high-grade serous ovarian cancer were studied.
- Next-generation sequencing of a 56-gene panel was performed on DNA from blood, primary tumors, recurrent tumors, and peritoneal washes.
- Mutations were validated using digital droplet polymerase chain reaction (ddPCR) or Sanger sequencing.
Main Results:
- 25 tumor-specific mutations were identified across patients.
- TP53 mutations were found in all patients.
- Molecular second look confirmed all pathology-positive cases and identified 3 pathology-negative cases as positive for residual disease.
- Novel mutations in MSH6 and HNF1A were detected in one patient.
Conclusions:
- Molecular second look offers a more sensitive method for detecting residual ovarian cancer compared to conventional pathology.
- This technique provides genetic insights into tumor evolution and potential recurrence.
- Genomic characterization of residual disease is vital for advancing precision medicine in ovarian cancer treatment.
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