Mechanically tunable coaxial electrospun models of YAP/TAZ mechanoresponse and IGF-1R activation in osteosarcoma

Eric R Molina1, Letitia K Chim1, Maria C Salazar1

  • 1Department of Bioengineering, Rice University, Houston, TX, United States.

Acta Biomaterialia
|September 23, 2019
PubMed

Insights

This study developed 3D tumor models with tunable stiffness to investigate cancer biology. Decreased stiffness in 3D models altered cell mechanics and increased resistance to targeted therapies, highlighting the importance of the tumor microenvironment.

Area of Science:

  • Biomedical Engineering
  • Cancer Biology
  • Mechanobiology

Background:

  • Current in vitro cancer models lack crucial tumor microenvironment features, limiting understanding of mechanotransduction.
  • Existing models often fail to control physical properties, impacting studies on how substrate stiffness affects tumor biology.

Purpose of the Study:

  • To engineer three-dimensional (3D) osteosarcoma models with tunable mechanical properties.
  • To investigate the impact of substrate stiffness and tissue architecture on cancer cell behavior and therapeutic response.
  • To elucidate the role of mechanotransduction in osteosarcoma pathogenesis.

Main Methods:

  • Coaxial electrospinning was used to create 3D tumor models with controlled mechanical properties.
  • Macroscale (uniaxial tensile testing) and microscale (atomic force microscopy) methods characterized substrate stiffness.
  • Osteosarcoma cells were cultured in 3D models to assess Hippo pathway (YAP/TAZ) and IGF-1R/mTOR signaling.

Main Results:

  • Osteosarcoma cells showed increased nuclear YAP/TAZ localization with decreasing substrate stiffness in 3D.
  • A downregulation of the IGF-1R/mTOR axis was observed in all 3D models.
  • 3D models exhibited increased resistance to combination chemotherapy and IGF-1R/mTOR targeted agents compared to 2D controls.

Conclusions:

  • Mechanical cues, including stiffness and architecture, are critical for understanding cancer biology and therapeutic resistance.
  • The developed 3D models offer a versatile platform for studying the influence of physical cues on tumor pathogenesis.
  • Mechanotransduction in 3D culture is complex, necessitating advanced models to recapitulate the tumor microenvironment.