Fluid flow in the osteocyte mechanical environment: a fluid-structure interaction approach

被引:127
|
作者
Verbruggen, Stefaan W. [1 ]
Vaughan, Ted J. [1 ]
McNamara, Laoise M. [1 ,2 ]
机构
[1] Natl Univ Ireland, Coll Engn & Informat, Biomech Res Ctr BMEC, Galway, Ireland
[2] Natl Univ Ireland, Dept Mech & Biomed Engn, Galway, Ireland
基金
欧洲研究理事会;
关键词
Bone; Osteocyte; Mechanobiology; Lacuna; Fluid-structure interaction; Shear stress; FINITE-ELEMENT-ANALYSIS; NET SOLUTE TRANSPORT; STRAIN AMPLIFICATION; SHEAR-STRESS; BONE-CELLS; ACTIN CYTOSKELETON; PROSTAGLANDIN E-2; MIXING MECHANISMS; TRACER TRANSPORT; CALCIUM RESPONSE;
D O I
10.1007/s10237-013-0487-y
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Osteocytes are believed to be the primary sensor of mechanical stimuli in bone, which orchestrate osteoblasts and osteoclasts to adapt bone structure and composition to meet physiological loading demands. Experimental studies to quantify the mechanical environment surrounding bone cells are challenging, and as such, computational and theoretical approaches have modelled either the solid or fluid environment of osteocytes to predict how these cells are stimulated in vivo. Osteocytes are an elastic cellular structure that deforms in response to the external fluid flow imposed by mechanical loading. This represents a most challenging multi-physics problem in which fluid and solid domains interact, and as such, no previous study has accounted for this complex behaviour. The objective of this study is to employ fluid-structure interaction (FSI) modelling to investigate the complex mechanical environment of osteocytes in vivo. Fluorescent staining of osteocytes was performed in order to visualise their native environment and develop geometrically accurate models of the osteocyte in vivo. By simulating loading levels representative of vigorous physiological activity ( compression and 300 Pa pressure gradient), we predict average interstitial fluid velocities and average maximum shear stresses surrounding osteocytes in vivo. Interestingly, these values occur in the canaliculi around the osteocyte cell processes and are within the range of stimuli known to stimulate osteogenic responses by osteoblastic cells in vitro. Significantly our results suggest that the greatest mechanical stimulation of the osteocyte occurs in the cell processes, which, cell culture studies have indicated, is the most mechanosensitive area of the cell. These are the first computational FSI models to simulate the complex multi-physics mechanical environment of osteocyte in vivo and provide a deeper understanding of bone mechanobiology.
引用
收藏
页码:85 / 97
页数:13
相关论文
共 50 条
  • [21] Modal approach in the fluid-structure interaction in aerospace
    Chajec, W.
    Dziubinski, A.
    ADVANCES IN MECHANICS: THEORETICAL, COMPUTATIONAL AND INTERDISCIPLINARY ISSUES, 2016, : 117 - 120
  • [22] COMPUTATIONAL FLUID-STRUCTURE INTERACTION OF DGB PARACHUTES IN COMPRESSIBLE FLUID FLOW
    Pantano-Rubino, Carlos
    Karagiozis, Kostas
    Kamakoti, Ramji
    Cirak, Fehmi
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER MEETING - 2010 - VOL 3, PTS A AND B, 2010, : 309 - 315
  • [23] Evaluation of dentinal fluid flow behaviours: a fluid-structure interaction simulation
    Su, Kuo-Chih
    Chuang, Shu-Fen
    Ng, Eddie Yin-Kwee
    Chang, Chih-Han
    COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2014, 17 (15) : 1716 - 1726
  • [24] Fluid-structure interaction with an application to a body immersed and anchored in a fluid flow
    Benaouicha M.
    Hamdouni A.
    International Applied Mechanics, 2011, 47 (3) : 338 - 349
  • [25] FLUID-STRUCTURE INTERACTION WITH A FULLY INTEGRATED MULTIPHYSICS ENVIRONMENT
    Grasselt, David
    Hoeschler, Klaus
    Sain, Chetan Kumar
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER MEETING, 2017, VOL 1B, 2017,
  • [26] Computational Modelling of Bileaflet Mechanical Valves Using Fluid-Structure Interaction Approach
    Yeh, Han Hung
    Grecov, Dana
    Karri, Satya
    JOURNAL OF MEDICAL AND BIOLOGICAL ENGINEERING, 2014, 34 (05) : 482 - 486
  • [27] Biomedical fluid mechanics and fluid-structure interaction
    Bazilevs, Yuri
    Takizawa, Kenji
    Tezduyar, Tayfun E.
    COMPUTATIONAL MECHANICS, 2014, 54 (04) : 893 - 893
  • [28] AN APPROACH ON FLUID-STRUCTURE INTERACTION FOR THE PREDICTION OF BLOOD FLOW IN ANEURYSMS WITH VARIOUS SHAPES
    Lee, Sang Hyuk
    Hur, Nahmkeon
    Kang, Seongwon
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER MEETING, 2013, VOL 1A: SYMPOSIA, 2014,
  • [29] Fluid-structure interaction simulation of aortic blood flow
    Crosetto, Paolo
    Reymond, Philippe
    Deparis, Simone
    Kontaxakis, Dimitrios
    Stergiopulos, Nikolaos
    Quarteroni, Alfio
    COMPUTERS & FLUIDS, 2011, 43 (01) : 46 - 57
  • [30] Experimental investigation into fluid-structure interaction of cavitating flow
    Liu, Yunqing
    Huang, Biao
    Zhang, Hanzhe
    Wu, Qin
    Wang, Guoyu
    PHYSICS OF FLUIDS, 2021, 33 (09)