Tissue-engineered constructs have great potential in many intervention strategies. In order for these constructs to function optimally, they should ideally mimic the cellular alignment and orientation found in the tissues to be treated. Here we present a simple and reproducible method for the production of cell-laden pure fibrin micro-fibers with longitudinal topography. The micro-fibers were produced using a molding technique and longitudinal topography was induced by a single initial stretch. Using this method, fibers up to 1 m in length and with diameters of 0.2-3 mm could be produced. The micro-fibers were generated with embedded endothelial cells, smooth muscle cell/fibroblasts or Schwann cells. Polarized light and scanning electron mi...
<div><p>In microvascular vessels, endothelial cells are aligned longitudinally whereas several compo...
ABSTRACT For regenerative medicine applications, we need to expand our understanding of the mechanis...
Developing an artificial extracellular matrix that closely mimics the native tissue microenvironment...
Tissue-engineered constructs have great potential in many intervention strategies. In order for thes...
Techniques developed for the in vitro reproduction of three-dimensional (3D) biomimetic tissue will ...
In the clinical and pharmacological fields, there is a need for the production of tissue-engineered ...
Many tissues have a distinctly aligned microstructure which is critical for their optimal function s...
Collagen content and organization in developing collagenous tissues can be influenced by local tissu...
Engineered tissues featuring aligned ECM possess superior regenerative capabilities for the healing ...
The nanostructure of the extracellular matrix (ECM) can direct cell attachment, alignment, and organ...
Lab-grown tissues have tremendous potential to accelerate drug discovery and identify some of the un...
Fabrication of biomimetic tissues holds much promise for the regeneration of cells or organs that ar...
The majority of muscles, nerves, and tendons are composed of fiber-like fascicle morphology. Each fa...
\u3cp\u3eFabrication of biomimetic tissues holds much promise for the regeneration of cells or organ...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...
<div><p>In microvascular vessels, endothelial cells are aligned longitudinally whereas several compo...
ABSTRACT For regenerative medicine applications, we need to expand our understanding of the mechanis...
Developing an artificial extracellular matrix that closely mimics the native tissue microenvironment...
Tissue-engineered constructs have great potential in many intervention strategies. In order for thes...
Techniques developed for the in vitro reproduction of three-dimensional (3D) biomimetic tissue will ...
In the clinical and pharmacological fields, there is a need for the production of tissue-engineered ...
Many tissues have a distinctly aligned microstructure which is critical for their optimal function s...
Collagen content and organization in developing collagenous tissues can be influenced by local tissu...
Engineered tissues featuring aligned ECM possess superior regenerative capabilities for the healing ...
The nanostructure of the extracellular matrix (ECM) can direct cell attachment, alignment, and organ...
Lab-grown tissues have tremendous potential to accelerate drug discovery and identify some of the un...
Fabrication of biomimetic tissues holds much promise for the regeneration of cells or organs that ar...
The majority of muscles, nerves, and tendons are composed of fiber-like fascicle morphology. Each fa...
\u3cp\u3eFabrication of biomimetic tissues holds much promise for the regeneration of cells or organ...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...
<div><p>In microvascular vessels, endothelial cells are aligned longitudinally whereas several compo...
ABSTRACT For regenerative medicine applications, we need to expand our understanding of the mechanis...
Developing an artificial extracellular matrix that closely mimics the native tissue microenvironment...