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Updated: Oct 4, 2025

Fabrication of Tongue Extracellular Matrix and Reconstitution of Tongue Squamous Cell Carcinoma In Vitro
Published on: June 20, 2018
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.
Abstract:
The treatment of tongue squamous cell carcinoma (TSCC) faces challenges because TSCC has an aggressive biological behavior and manifests usually as widespread metastatic disease. Therefore, it is particularly important to screen out and develop drugs that inhibit tumor invasion and metastasis. Two-dimensional (2D) cell culture has been used as in vitro models to study cellular biological behavior, but growing evidence now shows that the 2D systems can result in cell bioactivities that deviate appreciably the in vivo response. It is urgent to develop a novel 3D cell migration model in vitro to simulate the tumor microenvironment as much as possible and screen out effective anti-migration drugs. Sodium alginate, has a widely used cell encapsulation material, as significant advantages. We have designed a microfluidic device to fabricate a hollow alginate hydrogel microtube model. Based on the difference in liquid flow rate, TSCC cells (Cal27) were able to be evenly distributed in the hollow microtubes, which was confirmed though fluorescence microscope and laser scanning confocal microscope (LSCM). Our microfluidic device was cheap, and commercially available and could be assembled in a modular way, which are composed of a coaxial needle, silicone hose, and syringes. It was proved that the cells grow well in artificial microtubes with extracellular matrix (ECM) proteins by LSCM and flow cytometry. Periodic motility conferred a different motor state to the cells in the microtubes, more closely resembling the environment in vivo. The quantitative analysis of tumor cell migration could be achieved simply by determining the position of the cell in the microtube cross-section. We verified the anti-migration effects of three NSAIDs drugs (aspirin, indomethacin, and nimesulide) with artificial microtubes, obtaining the same results as conventional migration experiments. The results showed that among the three NSAIDs, nimesulide showed great anti-migration potential against TSCC cells. Our method holds great potential for application in the more efficient screening of anti-migration tumor drugs.
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.

