Decellularized organ biomatrices facilitate quantifiable in vitro 3D cancer metastasis models

Sabrina N VandenHeuvel1, Heather A Farris1, Dillon A Noltensmeyer1

  • 1Department of Biomedical Engineering, Texas A&M University, College Station, TX, USA.

Soft Matter
|July 27, 2022
PubMed

Insights

Engineered 3D models mimic cancer metastasis in liver and lung, revealing increased chemoresistance and invasion. These biomimetic models offer new avenues for studying and treating therapy-resistant metastatic cancers.

Area of Science:

  • Biomedical Engineering
  • Cancer Biology
  • Translational Oncology

Background:

  • Metastatic cancers exhibit chemoresistance due to complex interactions between cancer cells and the tumor microenvironment.
  • Current metastasis models lack the 3D architecture and extracellular matrix crucial for accurately studying invasion and colonization.
  • Biomimetic 3D *in vitro* models are needed to recapitulate the metastatic cascade in distant organs.

Purpose of the Study:

  • To engineer reproducible and quantifiable 3D *in vitro* models of colorectal cancer liver metastasis and breast cancer lung metastasis.
  • To utilize 3D tumor spheroids and decellularized organ biomatrices to simulate metastatic seeding and colonization.
  • To assess the therapeutic resistance and metastatic behavior of cancer cells within these engineered microenvironments.

Main Methods:

  • Engineered 3D tumor spheroids (HCT116 colorectal, MDA-MB-231 breast cancer) were used as metastatic seeds.
  • Decellularized porcine liver and lung tissues served as biomatrix scaffolds for metastatic soil.
  • Spheroids were seeded into biomatrix scaffolds, and colonization, invasion, gene expression (EMT), and chemoresistance were evaluated over 7 days using multiphoton microscopy and drug treatment.

Main Results:

  • HCT116 and MDA-MB-231 spheroids successfully colonized liver and lung biomatrices, forming cellular nests.
  • At least 15% of seeded cells invaded over 20 μm into the biomatrix, with increased expression of epithelial to mesenchymal transition (EMT) genes.
  • Engineered metastatic nests showed over 3-fold greater chemoresistance to oxaliplatin compared to 3D spheroids, and matrix metalloproteinase-9 inhibition reduced invasion.

Conclusions:

  • The engineered 3D *in vitro* models accurately recapitulate key aspects of the metastatic cascade, including invasion, colonization, and proliferation in liver and lung environments.
  • These models demonstrate increased chemoresistance and metastatic potential of cancer cells within a biomimetic 3D microenvironment.
  • This approach holds potential for identifying novel therapeutic targets to combat chemoresistant metastatic cancers.

Related Concept Videos