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Biomedical subjects

Andres J Garcia

Publications and source records attributed to Andres J Garcia.

2 recordsLinked to original sources

Scaffold-based bone engineering by using genetically modified cells.

The first generation of clinically applied tissue engineering concepts in the area of skin, cartilage and bone marrow regeneration was based on the isolation, expansion and implantation of cells from the patient's own tissue. Although successful in selective treatments, tissue engineering needs to overcome major challenges to allow widespread clinical application with predictable outcomes. One challenge is to present the cells in a matrix to the implantation site to allow the cells to survive the wound healing contraction forces, tissue remodeling in certain tissues such as bone and biomechanical loading. Hence, several tissue engineering strategies focus on the development of load-bearing scaffold/cell constructs. From a cell source point of view, bone engineers face challenges to isolate and expand cells with the highest potential to form osseous tissue along with harvesting tissue without extensive donor site morbidity. A major hurdle to tissue engineering is de-differentiation and limited ability to control cell phenotype following in vitro expansion. Due to early successes with genetic engineering, bone tissue engineers have used different strategies to genetically alter various types of mesenchymal cells to enhance the mineralization capacity of tissue-engineered scaffold/cell constructs. Although the development of multi-component scaffold/osteogenic cell constructs requires a combination of interdisciplinary research strategies, the following review is limited to describe the general aspects of bone engineering and to present overall directions of technology platforms, which include a genetic engineering component. This paper reviews the most recent work in the field and discusses the concepts developed and executed by a collaborative effort of the multi-disciplinary teams of the two authors.

Animals↗

Hot embossing for micropatterned cell substrates.

This paper reports the development of a technique for preparing microtextured polymer substrates for cell growth and studies the response of osteoblast cells grown on these surfaces. The surfaces were manufactured with hot embossing, where a silicon micromachined printing master was pressed into a thermoplastic polymer substrate at elevated temperature, forming a regular microgroove pattern in the polymer. The grooves were approximately 5 microm deep, 4 microm wide, and had a periodicity of 34 microm. The polymer substrate was polyimide, which can be spincast and printed in its uncured form, and is mechanically rigid and chemically nonreactive after full cure. Osteoblast cells were grown on the textured polymer substrate and their responses to grooved and smooth surfaces were observed with fluorescence microscopy. Alignment and aspect ratio were analyzed for the cell body, cell nucleus, and focal adhesions. Cell membrane body, cell nucleus, and focal adhesions all strongly aligned with the microgrooves, while only the cell body shape changed on the microgrooved surface. This novel substrate preparation technique offers the opportunity for low-cost and rapid manufacture of microtextured surfaces that can be used to control cell shape and alignment.

3T3 Cells↗