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Structural and functional remodeling of skeletal muscle microvasculature is induced by simulated microgravityHindlimb unloading of rats results in a diminished ability of skeletal muscle arterioles to constrict in vitro and elevate vascular resistance in vivo. The purpose of the present study was to determine whether alterations in the mechanical environment (i.e., reduced fluid pressure and blood flow) of the vasculature in hindlimb skeletal muscles from 2-wk hindlimb-unloaded (HU) rats induces a structural remodeling of arterial microvessels that may account for these observations. Transverse cross sections were used to determine media cross-sectional area (CSA), wall thickness, outer perimeter, number of media nuclei, and vessel luminal diameter of feed arteries and first-order (1A) arterioles from soleus and the superficial portion of gastrocnemius muscles. Endothelium-dependent dilation (ACh) was also determined. Media CSA of resistance arteries was diminished by hindlimb unloading as a result of decreased media thickness (gastrocnemius muscle) or reduced vessel diameter (soleus muscle). ACh-induced dilation was diminished by 2 wk of hindlimb unloading in soleus 1A arterioles, but not in gastrocnemius 1A arterioles. These results indicate that structural remodeling and functional adaptations of the arterial microvasculature occur in skeletal muscles of the HU rat; the data suggest that these alterations may be induced by reductions in transmural pressure (gastrocnemius muscle) and wall shear stress (soleus muscle).
Document ID
20040141532
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Delp, M. D.
(College Station 77843 United States)
Colleran, P. N.
Wilkerson, M. K.
McCurdy, M. R.
Muller-Delp, J.
Date Acquired
August 22, 2013
Publication Date
June 1, 2000
Publication Information
Publication: American journal of physiology. Heart and circulatory physiology
Volume: 278
Issue: 6
ISSN: 0363-6135
Subject Category
Aerospace Medicine
Distribution Limits
Public
Copyright
Other
Keywords
Non-NASA Center
NASA Discipline Musculoskeletal
NASA Program Fundamental Space Biology

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