Substrate deformation levels associated with routine physical activity are less stimulatory to bone cells relative to loading-induced oscillatory fluid flow

被引:254
作者
You, J [1 ]
Yellowley, CE [1 ]
Donahue, HJ [1 ]
Zhang, Y [1 ]
Chen, Q [1 ]
Jacobs, CR [1 ]
机构
[1] Penn State Univ, Coll Med, Dept Orthopaed & Rehabil, Musculoskeletal Res Lab, Hershey, PA 17033 USA
来源
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME | 2000年 / 122卷 / 04期
关键词
D O I
10.1115/1.1287161
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Although it is well accepted that bone tissue metabolism is regulated by external mechani cal loads, it remains unclear to what load-induced physical signals bone cells respond. In this study, a novel computer-controlled stretch device and parallel plate flow chamber were employed to investigate cytosolic calcium (Ca-i(2+)) mobilization in response to a range of dynamic substrate strain levels (0.1-10 percent, 1 Hz) and oscillating puidJIow (2 N/m(2), 1 Hz). In addition, we quantified the effect of dynamic substrate strain and oscillating fluid flow on the expression of mRNA for the bone matrix protein osteopontin (OPN). Our data demonstrate that continuum strain levels observed for routine physical activities (<0.5 percent) do not induce Ca-i(2+) responses in osteoblastic cells in vitro. However, there was a significant increase in the number of responding cells at larger strain levels. Moreover, we found no change in osteopontin mRNA level in response to 0.5 percent strain at 1 Hz. In contrast, oscillating fluid flow predicted to occur in the lacunar-canalicular system due to routine physical activities (2 N/m2, 1 Hz) caused significant increases in both Ca-i(2+) and OPN mRNA. These data suggest that, relative to fluid flow, substrate deformation may play less of a role in bone cell mechanotransduction associated with bone adaptation to routine loads. [S0148-0731 (00)01204-8].
引用
收藏
页码:387 / 393
页数:7
相关论文
共 45 条
  • [1] Pulsating fluid flow increases prostaglandin production by cultured chicken osteocytes - A cytoskeleton-dependent process
    Ajubi, NE
    KleinNulend, J
    Nijweide, PJ
    VrijheidLammers, T
    Alblas, MJ
    Burger, EH
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1996, 225 (01) : 62 - 68
  • [2] Signal transduction pathways involved in fluid flow-induced PGE2 production by cultured osteocytes
    Ajubi, NE
    Klein-Nulend, J
    Alblas, MJ
    Burger, EH
    Nijweide, PJ
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 1999, 276 (01): : E171 - E178
  • [3] THE PROLIFERATIVE AND SYNTHETIC RESPONSE OF ISOLATED CALVARIAL BONE-CELLS OF RATS TO CYCLIC BIAXIAL MECHANICAL STRAIN
    BRIGHTON, CT
    STRAFFORD, B
    GROSS, SB
    LEATHERWOOD, DF
    WILLIAMS, JL
    POLLACK, SR
    [J]. JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1991, 73A (03) : 320 - 331
  • [4] BUCKLEY MJ, 1988, BONE MINER, V4, P225
  • [5] In vivo measurement of human tibial strains during vigorous activity
    Burr, DB
    Milgrom, C
    Fyhrie, D
    Forwood, M
    Nyska, M
    Finestone, A
    Hoshaw, S
    Saiag, E
    Simkin, A
    [J]. BONE, 1996, 18 (05) : 405 - 410
  • [6] Mechanical strain stimulates ROS cell proliferation through IGF-II and estrogen through IGF-I
    Cheng, MZ
    Zaman, G
    Rawlinson, SCF
    Mohan, S
    Baylink, DJ
    Lanyon, LE
    [J]. JOURNAL OF BONE AND MINERAL RESEARCH, 1999, 14 (10) : 1742 - 1750
  • [7] A CASE FOR BONE CANALICULI AS THE ANATOMICAL SITE OF STRAIN GENERATED POTENTIALS
    COWIN, SC
    WEINBAUM, S
    ZENG, Y
    [J]. JOURNAL OF BIOMECHANICS, 1995, 28 (11) : 1281 - 1297
  • [8] GENOMIC ORGANIZATION OF THE HUMAN OSTEOPONTIN GENE - EXCLUSION OF THE LOCUS FROM A CAUSATIVE ROLE IN THE PATHOGENESIS OF DENTINOGENESIS IMPERFECTA TYPE-II
    CROSBY, AH
    EDWARDS, SJ
    MURRAY, JC
    DIXON, MJ
    [J]. GENOMICS, 1995, 27 (01) : 155 - 160
  • [9] DENHARDT DT, 1993, FASEB J, V17, P1476
  • [10] Calcium oscillations increase the efficiency and specificity of gene expression
    Dolmetsch, RE
    Xu, KL
    Lewis, RS
    [J]. NATURE, 1998, 392 (6679) : 933 - 936