Related Experiment Video
Updated: Dec 12, 2025

Expression of Exogenous Antigens in the Mycobacterium bovis BCG Vaccine via Non-genetic Surface Decoration with the Avidin-biotin System
Published on: January 31, 2018
Biotinylated Streptavidin Surface Coating Improves the Efficacy of a PLGA Microparticle-Based Cancer Vaccine
Brett P Gross1, Khanidtha Chitphet2, Amaraporn Wongrakpanich2,3
1Interdisciplinary Graduate Program in Immunology, University of Iowa, Iowa City, Iowa 52242, United States.
Abstract:
Triple-negative breast cancer (TNBC) is an immune-enriched subset of breast cancer that has recently demonstrated clinical responsiveness to combinatorial immunotherapy. However, the lack of targeted interventions against hormone receptors or HER2 continues to limit treatment options for these patients. To begin expanding available interventions for patients with metastatic TNBC, we previously reported a therapeutic vaccine regimen that significantly reduced spontaneous lung metastases in a preclinical TNBC model. This heterologous vaccine approach "primed" mice with tumor lysate antigens encapsulated within poly(lactic-co-glycolic) acid microparticles (PLGA MPs), and then "boosted" mice with tumor lysates plus adjuvant. The use of the PLGA MP prime as monotherapy demonstrated no efficacy, suggesting that improving this component of our therapy would achieve greater vaccine efficacy. Here, we functionally improved the PLGA MP prime by coating microparticles with biotinylated streptavidin-conjugated using 1-ethyl-3-(3-dimethylaminoproplyl) carbodiimide/N-hydroxysuccinimide (EDC/Sulfo-NHS) linkers. This modification enhanced the immunostimulatory potential of our PLGA MPs, as evidenced by increased phagocytosis, maturation, and stimulatory ligand expression by antigen-presenting cells (APCs). Therapeutic prime/boost vaccination of TNBC-bearing mice with surfaced-coated PLGA MPs significantly reduced spontaneous lung metastases by an average of 56% relative to mice primed with unmodified PLGA MPs, and a significant 88% average reduction in spontaneous lung metastases relative to untreated control mice. These findings illustrate that relatively common biotin-streptavidin conjugation formulations can positively affect microparticle-based vaccine immunogenicity resulting in enhanced therapeutic efficacy against established preclinical mammary tumors.
Insights
Researchers enhanced a prime/boost vaccine for triple-negative breast cancer (TNBC) by coating microparticles with biotin-streptavidin. This improved immunotherapy, significantly reducing lung metastases in preclinical models.
Area of Science:
- Oncology
- Immunology
- Biomaterials Science
Background:
- Triple-negative breast cancer (TNBC) is an aggressive cancer subtype with limited targeted treatment options.
- Immunotherapy has shown promise, but further optimization is needed for TNBC.
- Previous vaccine strategies showed potential but required improvement in the prime component.
Purpose of the Study:
- To enhance the immunogenicity and efficacy of a prime/boost vaccine for metastatic TNBC.
- To investigate the impact of surface modification on poly(lactic-co-glycolic) acid microparticle (PLGA MP) vaccine components.
- To evaluate the therapeutic effect of an improved vaccine in a preclinical TNBC model.
Main Methods:
- PLGA MPs were surface-coated with biotinylated streptavidin using EDC/Sulfo-NHS crosslinking.
- Antigen-presenting cells (APCs) were analyzed for phagocytosis, maturation, and ligand expression after interacting with modified MPs.
- TNBC-bearing mice received a prime/boost vaccination regimen using either unmodified or surface-coated PLGA MPs.
Main Results:
- Surface-coated PLGA MPs demonstrated enhanced APC uptake, maturation, and stimulatory ligand expression.
- Vaccination with surface-coated PLGA MPs significantly reduced spontaneous lung metastases by 56% compared to unmodified MPs.
- A significant 88% reduction in lung metastases was observed in mice treated with the enhanced vaccine compared to controls.
Conclusions:
- Biotin-streptavidin conjugation is an effective strategy to improve microparticle-based vaccine immunogenicity.
- Enhanced vaccine efficacy translates to significant reduction of metastatic burden in preclinical TNBC models.
- This approach offers a promising avenue for developing more effective immunotherapies for metastatic TNBC.

