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3D bioprinted microfluidic based osteosarcoma-on-a chip model as a physiomimetic pre-clinical drug testing platform
Chitra Jaiswal1, Souradeep Dey2, Jayant Prasad3
1Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati 781 039, Assam, India.
Abstract:
Standard chemotherapeutic regimen for osteosarcoma (OS) treatment often leads to poor therapeutic outcome, primarily due to lack of an adequate representative model reflecting native OS structural and cellular complexity, posing a translational gap. Three-dimensional bioprinting (3D-BP) represents an efficient and advanced technique for precise recapitulation of the structural and cellular complexity of OS tumor microenvironment (TME). In the present study, we employed a dual extrusion-based 3D-BP method to develop an improved in vitro OS model consisting of both tumor and stromal components. Additionally, a human physiomimetic microfluidic bioreactor is introduced to mimic the dynamic TME and provide physiologically relevant mechanical stimulation to the cells. The model named TC-OS Dynamic model, demonstrated close resemblance to native OS-TME, validated by in vitro studies. Continuous media flow provided mechanical stimulation in the form of shear stress, positively influencing the growth and aggressiveness of OS. Further, drug screening with the model anticancer drugs (doxorubicin, cis-platin, sorafenib) demonstrated enhanced sensitivity in TC-OS Dynamic model as compared to TC-OS Static model, emphasizing enhanced mass transfer, availability and distribution of anticancer drug due to continuous media flow. Overall, TC-OS Dynamic model holds significant potential as a platform in future for high throughput pre-clinical screening of anticancer drugs.
Insights
A novel 3D bioprinted osteosarcoma (OS) model in a dynamic bioreactor enhances drug screening. This advanced model better mimics the tumor microenvironment, improving preclinical evaluations for new cancer therapies.
Area of Science:
- Biotechnology
- Oncology
- Biomaterials
Background:
- Standard osteosarcoma (OS) chemotherapy faces challenges due to inadequate in vitro models.
- A translational gap exists between current models and the complex OS tumor microenvironment (TME).
Purpose of the Study:
- To develop an advanced, in vitro three-dimensional bioprinted (3D-BP) osteosarcoma model.
- To incorporate dynamic physiological stimuli mimicking the native TME for improved preclinical drug screening.
Main Methods:
- Utilized dual extrusion-based 3D-BP to create a model with tumor and stromal components.
- Integrated a physiomimetic microfluidic bioreactor to simulate dynamic TME conditions and mechanical stimulation.
- Validated the model's resemblance to native OS-TME through in vitro studies.
Main Results:
- The TC-OS Dynamic model closely replicated the native OS-TME.
- Continuous media flow induced shear stress, positively impacting OS cell growth and aggressiveness.
- Drug screening showed enhanced anticancer drug sensitivity in the dynamic model compared to a static model, attributed to improved mass transfer.
Conclusions:
- The TC-OS Dynamic model accurately mimics the osteosarcoma tumor microenvironment.
- Dynamic mechanical stimulation and improved mass transfer enhance drug efficacy in this model.
- This 3D-bioprinted model shows promise for high-throughput preclinical anticancer drug screening.
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