Literature DB >> 11497376

The impact of microgravity on bone metabolism in vitro and in vivo.

P M Loomer1.   

Abstract

Exposure to microgravity has been associated with several physiological changes in astronauts and cosmonauts, including an osteoporosis-like loss of bone mass. In-flight measures used to counteract this, including intensive daily exercise regimens, have been only partially successful in reducing the bone loss and in the process have consumed valuable work time. If this bone loss is to be minimized or, preferably, prevented, more effective treatment strategies are required. This, however, requires a greater understanding of the mechanisms through which bone metabolism is affected by microgravity. Various research strategies have been used to examine this problem, including in vitro studies using bone cells and in vivo studies on humans and rats. These have been conducted both in flight and on the ground, by strategies that produce weightlessness to mimic the effects of microgravity. Overall, the majority of the studies have found that marked decreases in gravitation loading result in the loss of bone mass. The processes of bone formation and bone resorption become uncoupled, with an initial transitory increase in resorption accompanied by a prolonged decrease in formation. Loss of bone mass is not uniform throughout the skeleton, but varies at different sites depending on the type of bone and on the mechanical load received. It appears that the skeletal response is a physiologic adaptation to the space environment which, after long space flights or repeated shorter ones, could eventually lead to significant reductions in the ability of the skeletal tissues to withstand the forces of gravity and increased susceptibility to fracture.

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Year:  2001        PMID: 11497376     DOI: 10.1177/10454411010120030401

Source DB:  PubMed          Journal:  Crit Rev Oral Biol Med        ISSN: 1045-4411


  10 in total

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2.  High-Throughput Sequencing Reveals CXCR4 and IGF1 Behave Different Roles in Weightlessness Osteoporosis.

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3.  The Effect of OSM on MC3T3-E1 Osteoblastic Cells in Simulated Microgravity with Radiation.

Authors:  Jake Goyden; Ken Tawara; Danielle Hedeen; Jeffrey S Willey; Julia Thom Oxford; Cheryl L Jorcyk
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4.  Load Dependency of Postural Control--Kinematic and Neuromuscular Changes in Response to over and under Load Conditions.

Authors:  Ramona Ritzmann; Kathrin Freyler; Elmar Weltin; Anne Krause; Albert Gollhofer
Journal:  PLoS One       Date:  2015-06-08       Impact factor: 3.240

5.  Trabecular bone adaptation to low-magnitude high-frequency loading in microgravity.

Authors:  Antonia Torcasio; Katharina Jähn; Maarten Van Guyse; Pieter Spaepen; Andrea E Tami; Jos Vander Sloten; Martin J Stoddart; G Harry van Lenthe
Journal:  PLoS One       Date:  2014-05-02       Impact factor: 3.240

Review 6.  A cubesat centrifuge for long duration milligravity research.

Authors:  Erik Asphaug; Jekan Thangavelautham; Andrew Klesh; Aman Chandra; Ravi Nallapu; Laksh Raura; Mercedes Herreras-Martinez; Stephen Schwartz
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Review 8.  Gravity and neuronal adaptation, in vitro and in vivo-from neuronal cells up to neuromuscular responses: a first model.

Authors:  Florian P M Kohn; Ramona Ritzmann
Journal:  Eur Biophys J       Date:  2017-06-27       Impact factor: 1.733

9.  Loss of parafollicular cells during gravitational changes (microgravity, hypergravity) and the secret effect of pleiotrophin.

Authors:  Elisabetta Albi; Francesco Curcio; Renza Spelat; Andrea Lazzarini; Remo Lazzarini; Samuela Cataldi; Elisabetta Loreti; Ivana Ferri; Francesco Saverio Ambesi-Impiombato
Journal:  PLoS One       Date:  2012-12-19       Impact factor: 3.240

10.  Virtual Balancing for Studying and Training Postural Control.

Authors:  Daniela Buettner; Daniela Dalin; Isabella K Wiesmeier; Christoph Maurer
Journal:  Front Neurosci       Date:  2017-09-26       Impact factor: 4.677

  10 in total

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