Microgravity and bone cell mechanosensitivity

被引:64
作者
Klein-Nulend, J [1 ]
Bacabac, RG [1 ]
Veldhuijzen, JP [1 ]
Van Loon, JJWA [1 ]
机构
[1] Vrije Univ Amsterdam, Dept Oral Cell Biol, Dutch Expt Support Ctr, NL-1081 BT Amsterdam, Netherlands
来源
SPACE LIFE SCIENCES: GRAVITATIONAL BIOLOGY: 2002 | 2003年 / 32卷 / 08期
关键词
D O I
10.1016/S0273-1177(03)90395-4
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The capacity of bone tissue to alter its mass and structure in response to mechanical demands has long been recognized but the cellular mechanisms involved remained poorly understood. Bone not only develops as a structure designed specifically for mechanical tasks, but it can adapt during life toward more efficient mechanical performance. Mechanical adaptation of bone is a cellular process and needs a biological system that senses the mechanical loading. The loading information must then be communicated to the effector cells that form new bone or destroy old bone. The in vivo operating cell stress derived from bone loading is likely the flow of interstitial fluid along the surface of osteocytes and lining cells. The response of bone cells in culture to fluid flow includes prostaglandin (PG) synthesis and expression of prostaglandin G/H synthase inducible cyclooxygenase (COX-2). Cultured bone cells also rapidly produce nitric oxide (NO) in response to fluid flow as a result of activation of endothelial nitric oxide synthase (ecNOS), which enzyme also mediates the adaptive response of bone tissue to mechanical loading. Earlier studies have shown that the disruption of the actin-cytoskeleton abolishes the response to stress, suggesting that the cytoskeleton is involved in cellular mechanotransduction. Microgravity, or better near weightlessness, is associated with the loss of bone in astronauts, and has catabolic effects on mineral metabolism in bone organ cultures. This might be explained as resulting from an exceptional form of disuse under near weightlessness conditions. However, under near weightlessness conditions the assembly of cytoskeletal elements may be altered since it has been shown that the direction of the gravity vector determines microtubular pattern formation in vivo. We found earlier that the transduction of mechanical signals in bone cells also involves the cytoskeleton and is related to PGE(2) production. Therefore it is possible that the mechanosensitivity of bone cells is altered under near weightlessness conditions, and that this abnormal mechanosensation contributes to disturbed bone metabolism observed in astronauts. In our current project for the International Space Station, we wish to test this hypothesis experimentally using an in vitro model. The specific aim of our research project is to test whether near weightlessness decreases the sensitivity of bone cells for mechanical stress through a decrease in early signaling molecules (NO, PGs) that are involved in the mechanical loading-induced osteogenic response. Bone cells are cultured with or without gravity prior to and during mechanical loading, using our modified in vitro oscillating fluid flow apparatus. In this "FlowSpace" project we are developing a cell culture module that is used to provide further insight in the mechanism of mechanotransduction in bone. (C) 2003 COSPAR. Published by Elsevier Ltd. All rights reserved.
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页码:1551 / 1559
页数:9
相关论文
共 50 条
[41]   Vibrational force alters mRNA expression in osteoblasts [J].
Tjandrawinata, RR ;
Vincent, VL ;
HughesFulford, M .
FASEB JOURNAL, 1997, 11 (06) :493-497
[42]  
TURNER CH, 1994, J BONE MINER RES, V9, P87
[43]  
VANDENBERGH LC, 1996, ESA
[44]  
VANDERPLAS A, 1992, J BONE MINER RES, V7, P389
[45]  
VANLOON JJW, 1995, BIOL MED RES SPACE, V10, P550
[46]  
VANLOON JJW, 1993, P 44 INT ASTR C
[47]   DEVELOPMENT OF TISSUE-CULTURE TECHNIQUES AND HARDWARE TO STUDY MINERALIZATION UNDER MICROGRAVITY CONDITIONS [J].
VANLOON, JJWA ;
VELDHUIJZEN, JP ;
WINDGASSEN, EJ ;
BROUWER, T ;
WATTEL, K ;
VANVILSTEREN, M ;
MAAS, P .
LIFE SCIENCES AND SPACE RESEARCH XXV (1): GRAVITATIONAL BIOLOGY, 1994, 14 (08) :289-298
[48]   MECHANOTRANSDUCTION ACROSS THE CELL-SURFACE AND THROUGH THE CYTOSKELETON [J].
WANG, N ;
BUTLER, JP ;
INGBER, DE .
SCIENCE, 1993, 260 (5111) :1124-1127
[49]   A MODEL FOR THE EXCITATION OF OSTEOCYTES BY MECHANICAL LOADING-INDUCED BONE FLUID SHEAR STRESSES [J].
WEINBAUM, S ;
COWIN, SC ;
ZENG, Y .
JOURNAL OF BIOMECHANICS, 1994, 27 (03) :339-360
[50]   Differential stimulation of prostaglandin G/H synthase-2 in osteocytes and other osteogenic cells by pulsating fluid flow [J].
Westbroek, I ;
Ajubi, NE ;
Alblas, MJ ;
Semeins, CM ;
Klein-Nulend, J ;
Burger, EH ;
Nijweide, PJ .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2000, 268 (02) :414-419