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The Effect of Simulated Microgravity Environment of RWV Bioreactors on Surface Reactions and Adsorption of Serum Proteins on Bone-bioactive MicrocarriersBiomimetically modified bioactive materials with bone-like surface properties are attractive candidates for use as microcarriers for 3-D bone-like tissue engineering under simulated microgravity conditions of NASA designed rotating wall vessel (RWV) bioreactors. The simulated microgravity environment is attainable under suitable parametric conditions of the RWV bioreactors. Ca-P containing bioactive glass (BG), whose stimulatory effect on bone cell function had been previously demonstrated, was used in the present study. BG surface modification via reactions in solution, resulting formation of bone-like minerals at the surface and adsorption of serum proteins is critical for obtaining the stimulatory effect. In this paper, we report on the major effects of simulated microgravity conditions of the RWV on the BG reactions surface reactions and protein adsorption in physiological solutions. Control tests at normal gravity were conducted at static and dynamic conditions. The study revealed that simulated microgravity remarkably enhanced reactions involved in the BG surface modification, including BG dissolution, formation of bone-like minerals at the surface and adsorption of serum proteins. Simultaneously, numerical models were developed to simulate the mass transport of chemical species to and from the BG surface under normal gravity and simulated microgravity conditions. The numerical results showed an excellent agreement with the experimental data at both testing conditions.
Document ID
20030060536
Acquisition Source
Marshall Space Flight Center
Document Type
Conference Paper
Authors
Radin, Shula
(Pennsylvania Univ. Philadelphia, PA, United States)
Ducheyne, P.
(Pennsylvania Univ. Philadelphia, PA, United States)
Ayyaswamy, P. S.
(Pennsylvania Univ. Philadelphia, PA, United States)
Date Acquired
September 7, 2013
Publication Date
February 1, 2003
Publication Information
Publication: 2002 Microgravity Materials Science Conference
Subject Category
Life Sciences (General)
Funding Number(s)
CONTRACT_GRANT: NAG8-1483
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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