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The Biophysics Microgravity InitiativeBiophysical microgravity research on the International Space Station using biological materials has been ongoing for several decades. The well-documented substantive effects of long duration microgravity include the facilitation of the assembly of biological macromolecules into large structures, e.g., formation of large protein crystals under micro-gravity. NASA is invested not only in understanding the possible physical mechanisms of crystal growth, but also promoting two flight investigations to determine the influence of μ-gravity on protein crystal quality. In addition to crystal growth, flight investigations to determine the effects of shear on nucleation and subsequent formation of complex structures (e.g., crystals, fibrils, etc.) are also supported. It is now considered that long duration microgravity research aboard the ISS could also make possible the formation of large complex biological and biomimetic materials. Investigations of various materials undergoing complex structure formation in microgravity will not only strengthen NASA science programs, but may also provide invaluable insight towards the construction of large complex tissues, organs, or biomimetic materials on Earth.
Document ID
20160009724
Acquisition Source
Marshall Space Flight Center
Document Type
Abstract
Authors
Gorti, S.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Date Acquired
August 1, 2016
Publication Date
July 2, 2016
Subject Category
Exobiology
Report/Patent Number
M16-5331
Report Number: M16-5331
Meeting Information
Meeting: ICCBM-16 International Conference on the Crystallization of Biological Macromolecules
Location: Prague
Country: Czechoslovakia
Start Date: July 2, 2016
End Date: July 7, 2016
Sponsors: International Union of Crystallography
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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