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Updated: Sep 6, 2025

Analyzing Tumor and Tissue Distribution of Target Antigen Specific Therapeutic Antibody
Published on: May 16, 2020
Development of Clinical-Grade Antibodies against Tumor-Specific Mutations to Target Neuroblastoma
Stephanie C Pero1, Abhinav B Nagulapally2, Linda Mei1
1Department of Surgery and University of Vermont Cancer Center, Larner College of Medicine, University of Vermont, Burlington, VT.
Objective:
Tumor heterogeneity is a fundamental problem in treating cancer with monotargeting therapy, including chemical, antibody, and T cell therapies. Our goal is to target multiple mutated peptides found in a patient's cancer to increase antibody therapy effectiveness.
Methods:
Tumor samples were derived from patients with neuroblastoma. Whole-exome sequencing was performed of tumor and normal cells. Mutated proteins with missense mutations were selected from the patient tumor. These mutated proteins were further selected for the presence of missense mutations in the outer cell surface. Peptides representing a mutated section of the proteins were used for vaccinating rabbits and generating anti-peptide antibodies. The binding of individual polyclonal antibodies (pAbs) and the mixtures of pAbs were determined against the patient's tumor as cultured neuroblastoma cells and in a murine xenograft model. Antibodies were prepared according to FDA requirements of a phase I clinical protocol.
Results:
All of the generated rabbit pAbs bound with high affinity to the corresponding peptide used for vaccination. The pAbs also bound to low passage neuroblastoma cells. Mixed as cocktails, the pAbs had substantially increased binding to cells and bound well to the xenograft tissue. No binding was observed to the panel of normal human tissues. Preparation of pAbs by an academic lab to clinical-grade was approved by FDA for phase I clinical trial.
Conclusion:
We describe a new strategy to make customized antibodies for individual cancer patients and present the data required to meet FDA specifications to begin a phase I clinical trial.
Insights
This study developed customized antibody therapies targeting multiple cancer mutations, showing increased effectiveness against neuroblastoma. These novel polyclonal antibodies (pAbs) are FDA-approved for a Phase I clinical trial.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Tumor heterogeneity poses a significant challenge for single-target cancer therapies.
- Monotargeting approaches like chemical, antibody, and T cell therapies have limitations in treating diverse cancers.
Purpose of the Study:
- To enhance antibody therapy effectiveness by targeting multiple mutated peptides specific to a patient's cancer.
- To develop a personalized antibody generation strategy for improved cancer treatment outcomes.
Main Methods:
- Neuroblastoma tumor samples underwent whole-exome sequencing to identify missense mutations.
- Mutated proteins on the cell surface were selected to generate patient-specific anti-peptide antibodies in rabbits.
- Polyclonal antibodies (pAbs) were tested for binding affinity to tumor cells and in a murine xenograft model.
Main Results:
- Generated rabbit pAbs demonstrated high affinity binding to target peptides and neuroblastoma cells.
- Cocktails of pAbs showed significantly enhanced binding to tumor cells and xenograft tissue.
- No significant binding was observed against normal human tissues, indicating specificity.
Conclusions:
- A novel strategy for creating customized, multi-peptide targeting antibodies for individual cancer patients was established.
- Data supporting FDA approval for a Phase I clinical trial of these patient-specific antibodies were successfully generated.
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