3D bioprinted multilayered cerebrovascular conduits to study cancer extravasation mechanism related with vascular geometry.
Wonbin ParkJae-Seong LeeGe GaoByoung Soo KimDong Woo ChoPublished in: Nature communications (2023)
Cerebral vessels are composed of highly complex structures that facilitate blood perfusion necessary for meeting the high energy demands of the brain. Their geometrical complexities alter the biophysical behavior of circulating tumor cells in the brain, thereby influencing brain metastasis. However, recapitulation of the native cerebrovascular microenvironment that shows continuities between vascular geometry and metastatic cancer development has not been accomplished. Here, we apply an in-bath 3D triaxial bioprinting technique and a brain-specific hybrid bioink containing an ionically crosslinkable hydrogel to generate a mature three-layered cerebrovascular conduit with varying curvatures to investigate the physical and molecular mechanisms of cancer extravasation in vitro. We show that more tumor cells adhere at larger vascular curvature regions, suggesting that prolongation of tumor residence time under low velocity and wall shear stress accelerates the molecular signatures of metastatic potential, including endothelial barrier disruption, epithelial-mesenchymal transition, inflammatory response, and tumorigenesis. These findings provide insights into the underlying mechanisms driving brain metastases and facilitate future advances in pharmaceutical and medical research.
Keyphrases
- papillary thyroid
- small cell lung cancer
- resting state
- white matter
- circulating tumor cells
- epithelial mesenchymal transition
- inflammatory response
- squamous cell
- brain metastases
- squamous cell carcinoma
- cerebral ischemia
- functional connectivity
- healthcare
- stem cells
- mental health
- drug delivery
- childhood cancer
- high resolution
- computed tomography
- lymph node metastasis
- endothelial cells
- young adults
- magnetic resonance imaging
- gold nanoparticles
- transforming growth factor
- lipopolysaccharide induced
- dna methylation
- blood brain barrier
- contrast enhanced
- single molecule
- blood flow