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References
195
[1]
Buried alive: How osteoblasts become osteocytes

Tamara A. Franz‐Odendaal, Brian K. Hall, P. Eckhard Witten

Developmental Dynamics 2006 10.1002/dvdy.20603
[2]
Palumbo C (1986) A three-dimensional ultrastructural study of osteoid–osteocytes in the tibia of chick embryos. Cell Tissue Res 246:125–131 10.1007/bf00219008
[3]
Palumbo C, Palazzini S, Zaffe D, Marotti G (1990) Osteocyte differentiation in the tibia of newborn rabbit: an ultrastructural study of the formation of cytoplasmic processes. Acta Anat 137:350–358 10.1159/000146907
[4]
Doty SB, Morey-Holton ER, Durnova GN, Kaplansky AS (1990) Cosmos 1887: morphology, histochemistry, and vasculature of the growing rat tibia. FASEB J 4:16–23 10.1096/fasebj.4.1.2153083
[5]
Dallas SL, Veno PA (2012) Live imaging of bone cell and organ cultures. Methods Mol Biol 816:425–457 10.1007/978-1-61779-415-5_26
[6]
Zhang K, Barragan-Adjemian C, Ye L, Kotha S, Dallas M, Lu Y, Zhao S, Harris M, Harris SE, Feng JQ, Bonewald LF (2006) E11/gp38 selective expression in osteocytes: regulation by mechanical strain and role in dendrite elongation. Mol Cell Biol 26:4539–4552 10.1128/mcb.02120-05
[7]
Holmbeck K, Bianco P, Pidoux I, Inoue S, Billinghurst RC, Wu W, Chrysovergis K, Yamada S, Birkedal-Hansen H, Poole AR (2005) The metalloproteinase MT1-MMP is required for normal development and maintenance of osteocyte processes in bone. J Cell Sci 118:147–156 10.1242/jcs.01581
[8]
A Crucial Role for Matrix Metalloproteinase 2 in Osteocytic Canalicular Formation and Bone Metabolism

Keiichi Inoue, Yuko Mikuni-Takagaki, Kaoru Oikawa et al.

Journal of Biological Chemistry 2006 10.1074/jbc.m607290200
[9]
Bloch SL, Kristensen SL, Sorensen MS (2012) The viability of perilabyrinthine osteocytes: a quantitative study using bulk-stained undecalcified human temporal bones. Anat Rec 295:1101–1108 10.1002/ar.22492
[10]
McNamara LM, Majeska RJ, Weinbaum S, Friedrich V, Schaffler MB (2009) Attachment of osteocyte cell processes to the bone matrix. Anat Rec 292:355–363 10.1002/ar.20869
[11]
Kamioka H, Kameo Y, Imai Y, Bakker AD, Bacabac RG, Yamada N, Takaoka A, Yamashiro T, Adachi T, Klein-Nulend J (2012) Microscale fluid flow analysis in a human osteocyte canaliculus using a realistic high-resolution image-based three-dimensional model. Integr Biol (Camb) 4:1198–1206 10.1039/c2ib20092a
[12]
Doty SB (1981) Morphological evidence of gap junctions between bone cells. Calcif Tissue Int 33:509–512 10.1007/bf02409482
[13]
You LD, Weinbaum S, Cowin SC, Schaffler MB (2004) Ultrastructure of the osteocyte process and its pericellular matrix. Anat Rec A 278:505–513
[14]
Thompson WR, Modla S, Grindel BJ, Czymmek KJ, Kirn-Safran CB, Wang L, Duncan RL, Farach-Carson MC (2011) Perlecan/Hspg2 deficiency alters the pericellular space of the lacunocanalicular system surrounding osteocytic processes in cortical bone. J Bone Miner Res 26:618–629 10.1002/jbmr.236
[15]
Noonan KJ, Stevens JW, Tammi R, Tammi M, Hernandez JA, Midura RJ (1996) Spatial distribution of CD44 and hyaluronan in the proximal tibia of the growing rat. J Orthop Res 14:573–581 10.1002/jor.1100140411
[16]
Decrease in the osteocyte lacunar density accompanied by hypermineralized lacunar occlusion reveals failure and delay of remodeling in aged human bone

Björn Busse, Danijela Djonic, Petar Milovanovic et al.

Aging Cell 2010 10.1111/j.1474-9726.2010.00633.x
[17]
Addison WN, Masica DL, Gray JJ, McKee MD (2010) Phosphorylation-dependent inhibition of mineralization by osteopontin ASARM peptides is regulated by PHEX cleavage. J Bone Miner Res 25:695–705 10.1002/jbmr.110
[18]
Gericke A, Qin C, Sun Y, Redfern R, Redfern D, Fujimoto Y, Taleb H, Butler WT, Boskey AL (2010) Different forms of DMP1 play distinct roles in mineralization. J Dent Res 89:355–359 10.1177/0022034510363250
[19]
Tami AE, Schaffler MB, Knothe Tate ML (2003) Probing the tissue to subcellular level structure underlying bone’s molecular sieving function. Biorheology 40:577–590
[20]
Thompson WR, Majid AS, Czymmek KJ, Ruff AL, Garcia J, Duncan RL, Farach-Carson MC (2011) Association of the alpha(2)delta(1) subunit with Ca(v)3.2 enhances membrane expression and regulates mechanically induced ATP release in MLO-Y4 osteocytes. J Bone Miner Res 26:2125–2139 10.1002/jbmr.437
[21]
Wang L, Wang Y, Han Y, Henderson SC, Majeska RJ, Weinbaum S, Schaffler MB (2005) In situ measurement of solute transport in the bone lacunar–canalicular system. Proc Natl Acad Sci USA 102:11911–11916 10.1073/pnas.0505193102
[22]
Piekarski K, Munro M (1977) Transport mechanism operating between blood supply and osteocytes in long bones. Nature 269:80–82 10.1038/269080a0
[23]
Weinbaum S, Cowin SC, Zeng Y (1994) A model for the excitation of osteocytes by mechanical loading–induced bone fluid shear stresses. J Biomech 27:339–360 10.1016/0021-9290(94)90010-8
[24]
Wang L, Ciani C, Doty SB, Fritton SP (2004) Delineating bone’s interstitial fluid pathway in vivo. Bone 34:499–509 10.1016/j.bone.2003.11.022
[25]
Ciani C, Doty SB, Fritton SP (2009) An effective histological staining process to visualize bone interstitial fluid space using confocal microscopy. Bone 44:1015–1017 10.1016/j.bone.2009.01.376
[26]
Knothe Tate ML, Niederer P, Knothe U (1998) In vivo tracer transport through the lacunocanalicular system of rat bone in an environment devoid of mechanical loading. Bone 22:107–117 10.1016/s8756-3282(97)00234-2
[27]
Li W, You L, Schaffler MB, Wang L (2009) The dependency of solute diffusion on molecular weight and shape in intact bone. Bone 45:1017–1023 10.1016/j.bone.2009.07.076
[28]
Price C, Zhou X, Li W, Wang L (2011) Real-time measurement of solute transport within the lacunar–canalicular system of mechanically loaded bone: direct evidence for load-induced fluid flow. J Bone Miner Res 26:277–285 10.1002/jbmr.211
[29]
Wang B, Zhou X, Price C, Li W, Pan J, Wang L (2013) Quantifying load-induced solute transport and solute–matrix interactions within the osteocyte lacunar–canalicular system. J Bone Miner Res 28:1075–1086 10.1002/jbmr.1804
[30]
Weinstein RS, O’Brien CA, Almeida M, Zhao H, Roberson PK, Jilka RL, Manolagas SC (2011) Osteoprotegerin prevents glucocorticoid-induced osteocyte apoptosis in mice. Endocrinology 152:3323–3331 10.1210/en.2011-0170
[31]
Knothe Tate ML (2003) “Whither flows the fluid in bone?” an osteocyte’s perspective. J Biomech 36:1409–1424 10.1016/s0021-9290(03)00123-4
[32]
Wolff J (1986) The law of bone remodelling. Springer-Verlag, New York 10.1007/978-3-642-71031-5
[33]
Takai E, Mauck RL, Hung CT, Guo XE (2004) Osteocyte viability and regulation of osteoblast function in a 3D trabecular bone explant under dynamic hydrostatic pressure. J Bone Miner Res 19:1403–1410 10.1359/jbmr.040516
[34]
Liu C, Zhao Y, Cheung WY, Gandhi R, Wang L, You L (2010) Effects of cyclic hydraulic pressure on osteocytes. Bone 46:1449–1456 10.1016/j.bone.2010.02.006
[35]
Adachi T, Aonuma Y, Ito S, Tanaka M, Hojo M, Takano-Yamamoto T, Kamioka H (2009) Osteocyte calcium signaling response to bone matrix deformation. J Biomech 42:2507–2512 10.1016/j.jbiomech.2009.07.006
[36]
Rubin CT, Lanyon LE (1984) Regulation of bone formation by applied dynamic loads. J Bone Joint Surg Am 66:397–402 10.2106/00004623-198466030-00012
[37]
Fritton SP, McLeod KJ, Rubin CT (2000) Quantifying the strain history of bone: spatial uniformity and self-similarity of low-magnitude strains. J Biomech 33:317–325 10.1016/s0021-9290(99)00210-9
[38]
You J, Yellowley CE, Donahue HJ, Zhang Y, Chen Q, Jacobs CR (2000) Substrate deformation levels associated with routine physical activity are less stimulatory to bone cells relative to loading-induced oscillatory fluid flow. J Biomech Eng 122:387–393 10.1115/1.1287161
[39]
Burger E, Veldhuijzen JP (1993) Influence of mechanical factors on bone formation, resorption and growth in vitro. In: Hall BK (ed) Bone. Vol 7: Bone growth. CRC Press, Boca Raton, pp 37–56
[40]
Martin RB, Burr DB, Sharkey NA (1998) Mechanical properties of bone. In: Martin RB, Burr DB, Sharkey NA (eds) Skeletal tissue mechanics. Springer-Verlag, New York 10.1007/978-1-4757-2968-9
[41]
Oscillating fluid flow activation of gap junction hemichannels induces atp release from MLO‐Y4 osteocytes

Damian C. Genetos, Curtis J. Kephart, Yue Zhang et al.

Journal of Cellular Physiology 2007 10.1002/jcp.21021
[42]
Klein-Nulend J, Semeins CM, Ajubi NE, Nijweide PJ, Burger EH (1995) Pulsating fluid flow increases nitric oxide (NO) synthesis by osteocytes but not periosteal fibroblasts: correlation with prostaglandin upregulation. Biochem Biophys Res Commun 217:640–648 10.1006/bbrc.1995.2822
[43]
Lu XL, Huo B, Park M, Guo XE (2012) Calcium response in osteocytic networks under steady and oscillatory fluid flow. Bone 51:466–473 10.1016/j.bone.2012.05.021
[44]
Cherian PP, Siller-Jackson AJ, Gu S, Wang X, Bonewald LF, Sprague E, Jiang JX (2005) Mechanical strain opens connexin 43 hemichannels in osteocytes: a novel mechanism for the release of prostaglandin. Mol Biol Cell 16:3100–3106 10.1091/mbc.e04-10-0912
[45]
Anderson EJ, Kaliyamoorthy S, Iwan J, Alexander D, Knothe Tate ML (2005) Nano-microscale models of periosteocytic flow show differences in stresses imparted to cell body and processes. Ann Biomed Eng 33:52–62 10.1007/s10439-005-8962-y
[46]
Han Y, Cowin SC, Schaffler MB, Weinbaum S (2004) Mechanotransduction and strain amplification in osteocyte cell processes. Proc Natl Acad Sci USA 101:16689–16694 10.1073/pnas.0407429101
[47]
A model for strain amplification in the actin cytoskeleton of osteocytes due to fluid drag on pericellular matrix

Lidan You, Stephen C. Cowin, Mitchell B. Schaffler et al.

Journal of Biomechanics 2001 10.1016/s0021-9290(01)00107-5
[48]
Nakamura H, Kenmotsu S, Sakai H, Ozawa H (1995) Localization of CD44, the hyaluronate receptor, on the plasma membrane of osteocytes and osteoclasts in rat tibiae. Cell Tissue Res 280:225–233
[49]
Florian JA, Kosky JR, Ainslie K, Pang Z, Dull RO, Tarbell JM (2003) Heparan sulfate proteoglycan is a mechanosensor on endothelial cells. Circ Res 93:e136–e142 10.1161/01.res.0000101744.47866.d5
[50]
Bellin RM, Kubicek JD, Frigault MJ, Kamien AJ, Steward RL Jr, Barnes HM, Digiacomo MB, Duncan LJ, Edgerly CK, Morse EM, Park CY, Fredberg JJ, Cheng CM, LeDuc PR (2009) Defining the role of syndecan-4 in mechanotransduction using surface-modification approaches. Proc Natl Acad Sci USA 106:22102–22107 10.1073/pnas.0902639106

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Published
Sep 17, 2013
Vol/Issue
94(1)
Pages
5-24
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Cite This Article
Mitchell B. Schaffler, Wing-Yee Cheung, Robert Majeska, et al. (2013). Osteocytes: Master Orchestrators of Bone. Calcified Tissue International, 94(1), 5-24. https://doi.org/10.1007/s00223-013-9790-y