Background: Standard three-dimensional (3D) in vitro culture techniques, such as those used for mammary epithelial cells, rely on random distribution of cells within hydrogels. Although these systems offer advantages over traditional 2D models, limitations persist owing to the lack of control over cellular placement within the hydrogel. This results in experimental inconsistencies and random organoid morphology. Robust, high-throughput experimentation requires greater standardization of 3D epithelial culture techniques. Methods: Here, we detail the use of a 3D bioprinting platform as an investigative tool to control the 3D formation of organoids through the self-assembly of human mammary epithelial cells. Experimental bioprinting procedur...
Bioprinting is an emerging technique for the fabrication of living tissues that allows cells to be a...
The ability to bioengineer three-dimensional (3D) tissues is a potentially powerful approach to trea...
Previous work from our laboratory has demonstrated the use of an accessible, open- source 3D Bioprin...
Background: Standard three-dimensional (3D) in vitro culture techniques, such as those used for mamm...
Abstract Background Standard three-dimensional (3D) in vitro culture techniques, such as those used ...
Understanding the microenvironmental factors that control cell function, differentiation, and stem c...
Prior work has shown that our bioprinting system can reliably produce human mammary organoids and tu...
(First paragraph) The development of three-dimensional culture scaffolds represents a revolutionary ...
Prior work within our lab has demonstrated the ability to print both murine and human mammary organo...
Extracellular matrix (ECM) is an integral part of breast tissue microenvironment, and it plays impor...
The normal mammary microenvironment can suppress tumorigenesis and redirect cancer cells to adopt a ...
BACKGROUND: Three-dimensional (3D) cultures have proven invaluable for expanding human tissues for b...
Background Three-dimensional (3D) cultures have proven invaluable for expanding human tissues for b...
The precision and repeatability offered by computer-aided design and computer-numerically controlled...
The ability to bioengineer three-dimensional (3D) tissues is a potentially powerful approach to trea...
Bioprinting is an emerging technique for the fabrication of living tissues that allows cells to be a...
The ability to bioengineer three-dimensional (3D) tissues is a potentially powerful approach to trea...
Previous work from our laboratory has demonstrated the use of an accessible, open- source 3D Bioprin...
Background: Standard three-dimensional (3D) in vitro culture techniques, such as those used for mamm...
Abstract Background Standard three-dimensional (3D) in vitro culture techniques, such as those used ...
Understanding the microenvironmental factors that control cell function, differentiation, and stem c...
Prior work has shown that our bioprinting system can reliably produce human mammary organoids and tu...
(First paragraph) The development of three-dimensional culture scaffolds represents a revolutionary ...
Prior work within our lab has demonstrated the ability to print both murine and human mammary organo...
Extracellular matrix (ECM) is an integral part of breast tissue microenvironment, and it plays impor...
The normal mammary microenvironment can suppress tumorigenesis and redirect cancer cells to adopt a ...
BACKGROUND: Three-dimensional (3D) cultures have proven invaluable for expanding human tissues for b...
Background Three-dimensional (3D) cultures have proven invaluable for expanding human tissues for b...
The precision and repeatability offered by computer-aided design and computer-numerically controlled...
The ability to bioengineer three-dimensional (3D) tissues is a potentially powerful approach to trea...
Bioprinting is an emerging technique for the fabrication of living tissues that allows cells to be a...
The ability to bioengineer three-dimensional (3D) tissues is a potentially powerful approach to trea...
Previous work from our laboratory has demonstrated the use of an accessible, open- source 3D Bioprin...