Your browser doesn't support javascript.
loading
Assessment of flow within developing chicken vasculature and biofabricated vascularized tissues using multimodal imaging techniques.
Padmanaban, Prasanna; Chizari, Ata; Knop, Tom; Zhang, Jiena; Trikalitis, Vasileios D; Koopman, Bart; Steenbergen, Wiendelt; Rouwkema, Jeroen.
Affiliation
  • Padmanaban P; Vascularization Lab, Department of Biomechanical Engineering, Technical Medical Centre, Faculty of Engineering Technology, University of Twente, 7500 AE, Enschede, The Netherlands.
  • Chizari A; Biomedical Photonic Imaging, Technical Medical Centre, Faculty of Science and Technology, University of Twente, 7500 AE, Enschede, The Netherlands.
  • Knop T; Biomedical Photonic Imaging, Technical Medical Centre, Faculty of Science and Technology, University of Twente, 7500 AE, Enschede, The Netherlands.
  • Zhang J; Vascularization Lab, Department of Biomechanical Engineering, Technical Medical Centre, Faculty of Engineering Technology, University of Twente, 7500 AE, Enschede, The Netherlands.
  • Trikalitis VD; Vascularization Lab, Department of Biomechanical Engineering, Technical Medical Centre, Faculty of Engineering Technology, University of Twente, 7500 AE, Enschede, The Netherlands.
  • Koopman B; Vascularization Lab, Department of Biomechanical Engineering, Technical Medical Centre, Faculty of Engineering Technology, University of Twente, 7500 AE, Enschede, The Netherlands.
  • Steenbergen W; Biomedical Photonic Imaging, Technical Medical Centre, Faculty of Science and Technology, University of Twente, 7500 AE, Enschede, The Netherlands. w.steenbergen@utwente.nl.
  • Rouwkema J; Vascularization Lab, Department of Biomechanical Engineering, Technical Medical Centre, Faculty of Engineering Technology, University of Twente, 7500 AE, Enschede, The Netherlands. j.rouwkema@utwente.nl.
Sci Rep ; 11(1): 18251, 2021 09 14.
Article in En | MEDLINE | ID: mdl-34521868
ABSTRACT
Fluid flow shear stresses are strong regulators for directing the organization of vascular networks. Knowledge of structural and flow dynamics information within complex vasculature is essential for tuning the vascular organization within engineered tissues, by manipulating flows. However, reported investigations of vascular organization and their associated flow dynamics within complex vasculature over time are limited, due to limitations in the available physiological pre-clinical models, and the optical inaccessibility and aseptic nature of these models. Here, we developed laser speckle contrast imaging (LSCI) and side-stream dark field microscopy (SDF) systems to map the vascular organization, spatio-temporal blood flow fluctuations as well as erythrocytes movements within individual blood vessels of developing chick embryo, cultured within an artificial eggshell system. By combining imaging data and computational simulations, we estimated fluid flow shear stresses within multiscale vasculature of varying complexity. Furthermore, we demonstrated the LSCI compatibility with bioengineered perfusable muscle tissue constructs, fabricated via molding techniques. The presented application of LSCI and SDF on perfusable tissues enables us to study the flow perfusion effects in a non-invasive fashion. The gained knowledge can help to use fluid perfusion in order to tune and control multiscale vascular organization within engineered tissues.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Blood Circulation / Blood Vessels / Tissue Engineering / Optical Imaging Limits: Animals Language: En Journal: Sci Rep Year: 2021 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Blood Circulation / Blood Vessels / Tissue Engineering / Optical Imaging Limits: Animals Language: En Journal: Sci Rep Year: 2021 Document type: Article Affiliation country: