Engineered fibrous tissues consisting of cells encapsulated within collagen gels are widely used three-dimensional in vitro models of morphogenesis and wound healing. Although cell-mediated matrix remodeling that occurs within these scaffolds has been extensively studied, less is known about the mesoscale physical principles governing the dynamics of tissue shape. Here, we show both experimentally and by using computer simulations how surface contraction through the development of surface stresses (analogous to surface tension in fluids) coordinates with bulk contraction to drive shape evolution in constrained three-dimensional microtissues. We used microelectromechanical systems technology to generate arrays of fibrous microtissues and rob...
Mechanical forces are responsible for facilitating various biological functions. Single cells are th...
The growth of tissue is an essential process controlling morphogenesis and regeneration of organs. I...
AbstractUnderstanding how physical signals guide biological processes requires qualitative and quant...
Planar in vitro models have been invaluable tools to identify the mechanical basis of wound closure....
AbstractCell-mediated contraction plays a critical role in many physiological and pathological proce...
Tissue morphogenetic remodeling plays an important role in tissue repair and homeostasis and is ofte...
Cell spatial remodelling in tensile connective tissue is at the base of fundamental biological proce...
Many cell types remodel the extracellular matrix of the tissues they inhabit in response to a wide r...
A recent goal of tissue engineering has been to develop tissue-equivalent constructs to aid in wound...
Wound contraction is an ancient survival mechanism of vertebrates that results from tensile forces s...
Cellular contractility, migration, and extracellular matrix (ECM) mechanics are critical for a wide ...
Physical forces generated by cells drive morphologic changes during development and can feedback to ...
Tissue Engineering has gained increasing attention as a promising means to repair or replace defecti...
Two-dimensional (2D) studies have revealed that mechanical forces drive cell migration and can feedb...
The self-organization of cells into complex tissues during growth and regeneration is a combination ...
Mechanical forces are responsible for facilitating various biological functions. Single cells are th...
The growth of tissue is an essential process controlling morphogenesis and regeneration of organs. I...
AbstractUnderstanding how physical signals guide biological processes requires qualitative and quant...
Planar in vitro models have been invaluable tools to identify the mechanical basis of wound closure....
AbstractCell-mediated contraction plays a critical role in many physiological and pathological proce...
Tissue morphogenetic remodeling plays an important role in tissue repair and homeostasis and is ofte...
Cell spatial remodelling in tensile connective tissue is at the base of fundamental biological proce...
Many cell types remodel the extracellular matrix of the tissues they inhabit in response to a wide r...
A recent goal of tissue engineering has been to develop tissue-equivalent constructs to aid in wound...
Wound contraction is an ancient survival mechanism of vertebrates that results from tensile forces s...
Cellular contractility, migration, and extracellular matrix (ECM) mechanics are critical for a wide ...
Physical forces generated by cells drive morphologic changes during development and can feedback to ...
Tissue Engineering has gained increasing attention as a promising means to repair or replace defecti...
Two-dimensional (2D) studies have revealed that mechanical forces drive cell migration and can feedb...
The self-organization of cells into complex tissues during growth and regeneration is a combination ...
Mechanical forces are responsible for facilitating various biological functions. Single cells are th...
The growth of tissue is an essential process controlling morphogenesis and regeneration of organs. I...
AbstractUnderstanding how physical signals guide biological processes requires qualitative and quant...