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Neonatal rat heart cells cultured in simulated microgravityIn vitro characteristics of cardiac cells cultured in simulated microgravity are reported. Tissue culture methods performed at unit gravity constrain cells to propagate, differentiate, and interact in a two dimensional (2D) plane. Neonatal rat cardiac cells in 2D culture organize predominantly as bundles of cardiomyocytes with the intervening areas filled by non-myocyte cell types. Such cardiac cell cultures respond predictably to the addition of exogenous compounds, and in many ways they represent an excellent in vitro model system. The gravity-induced 2D organization of the cells, however, does not accurately reflect the distribution of cells in the intact tissue. We have begun characterizations of a three-dimensional (3D) culturing system designed to mimic microgravity. The NASA designed High-Aspect-Ratio-Vessel (HARV) bioreactors provide a low shear environment which allows cells to be cultured in static suspension. HARV-3D cultures were prepared on microcarrier beads and compared to control-2D cultures using a combination of microscopic and biochemical techniques. Both systems were uniformly inoculated and medium exchanged at standard intervals. Cells in control cultures adhered to the polystyrene surface of the tissue culture dishes and exhibited typical 2D organization. Cells in cultured in HARV's adhered to microcarrier beads, the beads aggregated into defined clusters containing 8 to 15 beads per cluster, and the clusters exhibited distinct 3D layers: myocytes and fibroblasts appeared attached to the surfaces of beads and were overlaid by an outer cell type. In addition, cultures prepared in HARV's using alternative support matrices also displayed morphological formations not seen in control cultures. Generally, the cells prepared in HARV and control cultures were similar, however, the dramatic alterations in 3D organization recommend the HARV as an ideal vessel for the generation of tissue-like organizations of cardiac cells in simulated microgravity.
Document ID
19960007787
Acquisition Source
Legacy CDMS
Document Type
Preprint (Draft being sent to journal)
Authors
Akins, Robert E.
(DuPont, Alfred I. Inst. Wilmington, DE., United States)
Schroedl, Nancy A.
(DuPont, Alfred I. Inst. Wilmington, DE., United States)
Gonda, Steve R.
(NASA Lyndon B. Johnson Space Center Houston, TX, United States)
Hartzell, Charles R.
(DuPont, Alfred I. Inst. Wilmington, DE., United States)
Date Acquired
September 6, 2013
Publication Date
January 1, 1994
Subject Category
Life Sciences (General)
Report/Patent Number
NAS 1.15:111146
NIPS-95-06163
NASA-TM-111146
Accession Number
96N14953
Funding Number(s)
CONTRACT_GRANT: NAG9-656
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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