Controlled Fabrication of Bioactive Microtubes for Screening Anti-Tongue Squamous Cell Migration Drugs

Rongbing Tang1, Lu Yang1, Liheng Shen1

  • 1School of Stomatology, Lanzhou University, Lanzhou, China.

Frontiers in Chemistry
|February 7, 2022
PubMed

Insights

A novel 3D microfluidic model using alginate microtubes effectively simulates tumor microenvironments for drug screening. Nimesulide demonstrated significant potential in inhibiting tongue squamous cell carcinoma (TSCC) cell migration.

Area of Science:

  • Biomedical Engineering
  • Oncology
  • Materials Science

Background:

  • Tongue squamous cell carcinoma (TSCC) exhibits aggressive behavior and metastasis, necessitating drugs that inhibit tumor invasion.
  • Traditional 2D cell culture models inadequately mimic the in vivo tumor microenvironment, leading to inaccurate drug response predictions.
  • A 3D in vitro model is crucial for simulating tumor microenvironments and screening effective anti-migration drugs.

Purpose of the Study:

  • To develop a novel 3D in vitro microfluidic model for simulating tumor microenvironments.
  • To establish a method for screening anti-migration drugs against tongue squamous cell carcinoma (TSCC).

Main Methods:

  • Fabrication of a hollow alginate hydrogel microtube using a microfluidic device with a coaxial needle, silicone hose, and syringes.
  • Distribution of TSCC cells (Cal27) within the microtubes using controlled liquid flow, confirmed by fluorescence and laser scanning confocal microscopy (LSCM).
  • Quantitative analysis of tumor cell migration by tracking cell position within the microtube cross-section and testing NSAIDs (aspirin, indomethacin, nimesulide).

Main Results:

  • The microfluidic device successfully created a 3D cell migration model with evenly distributed TSCC cells in alginate microtubes.
  • Cells cultured in the artificial microtubes with extracellular matrix (ECM) proteins exhibited good growth and motility resembling in vivo conditions.
  • Nimesulide demonstrated significant anti-migration potential against TSCC cells, consistent with conventional migration experiments.

Conclusions:

  • The developed microfluidic alginate microtube model provides a more accurate in vitro simulation of the tumor microenvironment for cell migration studies.
  • This model facilitates efficient screening of anti-migration drugs, with nimesulide showing promise for TSCC treatment.
  • The cost-effective and modular microfluidic device holds potential for broader applications in anti-cancer drug discovery.

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