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Microfluidics Empowering Breast Cancer Drug Discovery

1. High-Throughput Drug Screening

Microfluidic chips allow researchers to miniaturize and multiplex drug screening platforms. This has enabled:

  • Rapid testing of cytostatic and small-molecule inhibitors across breast cancer subtypes.

  • Evaluation of drug resistance mechanisms in 3D tumor models and patient-derived cells.

  • Real-time imaging of cellular response to therapeutics under controlled microenvironments.

2. Nanoparticle & Liposome-Based Drug Delivery

Formulating drugs into nanoparticles or liposomes requires precision engineering—something microfluidics excels at. Applications include:

  • Consistent droplet formation for encapsulating cytostatic drugs.

  • Nanoparticle localization and transport within tumor-on-chip models.

  • Targeted delivery studies using organ-specific microfluidic platforms.

3. Monoclonal Antibody Screening & Extraction

Microfluidic immunoassays are revolutionizing antibody development:

  • On-chip antibody screening and affinity profiling.

  • Spatial localization of therapeutic antibodies in tumor-mimicking microchannels.

  • Integration with AI-driven image analysis for precision profiling.


🔬 New Frontiers in Immunotherapy & Virology

4. CAR-T Cell Profiling on Chip

CAR-T therapy demands high-resolution phenotyping and functional validation. Microfluidic systems support:

  • Profiling of engineered T-cells against breast cancer cells in co-culture chips.

  • Monitoring cytokine response and cytotoxicity in real time.

  • Miniaturized bioreactors for ex vivo CAR-T expansion and functional testing.

5. Virotherapy Monitoring and Optimization

Microfluidic platforms facilitate:

  • Visualization of oncolytic virus infection dynamics.

  • Quantification of viral load and bystander effects at single-cell level.

  • Safety assessment via controlled flow-based systems.


💉 Enabling Precision Vaccinology

Microfluidics is also making waves in vaccine research, enabling:

  • Controlled insertion of antigens (e.g., α-lactalbumin, MUC1 peptides) into delivery vectors.

  • Microdroplet-based synthesis of adjuvant formulations.

  • Multiplex immunogenicity testing using blood-on-chip platforms.


Our Expertise

At Microfluidic.Tech, we specialize in:

  • Laser-based bonding and sealing of microfluidic chips, including PC (polycarbonate) and hybrid materials.

  • Prototyping of custom organ-on-chip and tumor-on-chip platforms.

  • Collaborative development for drug screening, nanoparticle delivery, and immunotherapy assays.

We work closely with academic, clinical, and biotech partners to translate microfluidic innovation into real-world cancer solutions.

https://pmc.ncbi.nlm.nih.gov/articles/PMC8877872/#sec3-micromachines-13-00152

 

Hanieh Rezaee

Author Hanieh Rezaee

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