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Erschienen in: Calcified Tissue International 1/2014

01.01.2014 | Review

Osteocytes: Master Orchestrators of Bone

verfasst von: Mitchell B. Schaffler, Wing-Yee Cheung, Robert Majeska, Oran Kennedy

Erschienen in: Calcified Tissue International | Ausgabe 1/2014

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Abstract

Osteocytes comprise the overwhelming majority of cells in bone and are its only true “permanent” resident cell population. In recent years, conceptual and technological advances on many fronts have helped to clarify the role osteocytes play in skeletal metabolism and the mechanisms they use to perform them. The osteocyte is now recognized as a major orchestrator of skeletal activity, capable of sensing and integrating mechanical and chemical signals from their environment to regulate both bone formation and resorption. Recent studies have established that the mechanisms osteocytes use to sense stimuli and regulate effector cells (e.g., osteoblasts and osteoclasts) are directly coupled to the environment they inhabit—entombed within the mineralized matrix of bone and connected to each other in multicellular networks. Communication within these networks is both direct (via cell–cell contacts at gap junctions) and indirect (via paracrine signaling by secreted signals). Moreover, the movement of paracrine signals is dependent on the movement of both solutes and fluid through the space immediately surrounding the osteocytes (i.e., the lacunar–canalicular system). Finally, recent studies have also shown that the regulatory capabilities of osteocytes extend beyond bone to include a role in the endocrine control of systemic phosphate metabolism. This review will discuss how a highly productive combination of experimental and theoretical approaches has managed to unearth these unique features of osteocytes and bring to light novel insights into the regulatory mechanisms operating in bone.
Literatur
1.
Zurück zum Zitat Franz-Odendaal TA, Hall BK, Witten PE (2006) Buried alive: how osteoblasts become osteocytes. Dev Dyn 235:176–190PubMed Franz-Odendaal TA, Hall BK, Witten PE (2006) Buried alive: how osteoblasts become osteocytes. Dev Dyn 235:176–190PubMed
2.
Zurück zum Zitat Palumbo C (1986) A three-dimensional ultrastructural study of osteoid–osteocytes in the tibia of chick embryos. Cell Tissue Res 246:125–131PubMed Palumbo C (1986) A three-dimensional ultrastructural study of osteoid–osteocytes in the tibia of chick embryos. Cell Tissue Res 246:125–131PubMed
3.
Zurück zum Zitat 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 137:350–358PubMed 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 137:350–358PubMed
4.
Zurück zum Zitat Doty SB, Morey-Holton ER, Durnova GN, Kaplansky AS (1990) Cosmos 1887: morphology, histochemistry, and vasculature of the growing rat tibia. FASEB J 4:16–23PubMed Doty SB, Morey-Holton ER, Durnova GN, Kaplansky AS (1990) Cosmos 1887: morphology, histochemistry, and vasculature of the growing rat tibia. FASEB J 4:16–23PubMed
5.
Zurück zum Zitat Dallas SL, Veno PA (2012) Live imaging of bone cell and organ cultures. Methods Mol Biol 816:425–457PubMed Dallas SL, Veno PA (2012) Live imaging of bone cell and organ cultures. Methods Mol Biol 816:425–457PubMed
6.
Zurück zum Zitat 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 26:4539–4552PubMedCentralPubMed 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 26:4539–4552PubMedCentralPubMed
7.
Zurück zum Zitat 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 118:147–156PubMed 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 118:147–156PubMed
8.
Zurück zum Zitat Inoue K, Mikuni-Takagaki Y, Oikawa K, Itoh T, Inada M, Noguchi T, Park JS, Onodera T, Krane SM, Noda M, Itohara S (2006) A crucial role for matrix metalloproteinase 2 in osteocytic canalicular formation and bone metabolism. J Biol Chem 281:33814–33824PubMed Inoue K, Mikuni-Takagaki Y, Oikawa K, Itoh T, Inada M, Noguchi T, Park JS, Onodera T, Krane SM, Noda M, Itohara S (2006) A crucial role for matrix metalloproteinase 2 in osteocytic canalicular formation and bone metabolism. J Biol Chem 281:33814–33824PubMed
9.
Zurück zum Zitat 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 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.
Zurück zum Zitat 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 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
11.
Zurück zum Zitat 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 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
12.
Zurück zum Zitat Doty SB (1981) Morphological evidence of gap junctions between bone cells. Calcif Tissue Int 33:509–512PubMed Doty SB (1981) Morphological evidence of gap junctions between bone cells. Calcif Tissue Int 33:509–512PubMed
13.
Zurück zum Zitat You LD, Weinbaum S, Cowin SC, Schaffler MB (2004) Ultrastructure of the osteocyte process and its pericellular matrix. Anat Rec A 278:505–513 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.
Zurück zum Zitat 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 26:618–629PubMed 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 26:618–629PubMed
15.
Zurück zum Zitat 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 14:573–581PubMed 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 14:573–581PubMed
16.
Zurück zum Zitat Busse B, Djonic D, Milovanovic P, Hahn M, Puschel K, Ritchie RO, Djuric M, Amling M (2010) Decrease in the osteocyte lacunar density accompanied by hypermineralized lacunar occlusion reveals failure and delay of remodeling in aged human bone. Aging Cell 9:1065–1075PubMed Busse B, Djonic D, Milovanovic P, Hahn M, Puschel K, Ritchie RO, Djuric M, Amling M (2010) Decrease in the osteocyte lacunar density accompanied by hypermineralized lacunar occlusion reveals failure and delay of remodeling in aged human bone. Aging Cell 9:1065–1075PubMed
17.
Zurück zum Zitat 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 25:695–705PubMed 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 25:695–705PubMed
18.
Zurück zum Zitat 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 89:355–359PubMed 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 89:355–359PubMed
19.
Zurück zum Zitat Tami AE, Schaffler MB, Knothe Tate ML (2003) Probing the tissue to subcellular level structure underlying bone’s molecular sieving function. Biorheology 40:577–590PubMed Tami AE, Schaffler MB, Knothe Tate ML (2003) Probing the tissue to subcellular level structure underlying bone’s molecular sieving function. Biorheology 40:577–590PubMed
20.
Zurück zum Zitat 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 26:2125–2139PubMed 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 26:2125–2139PubMed
21.
Zurück zum Zitat 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 102:11911–11916PubMed 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 102:11911–11916PubMed
22.
Zurück zum Zitat Piekarski K, Munro M (1977) Transport mechanism operating between blood supply and osteocytes in long bones. Nature 269:80–82PubMed Piekarski K, Munro M (1977) Transport mechanism operating between blood supply and osteocytes in long bones. Nature 269:80–82PubMed
23.
Zurück zum Zitat Weinbaum S, Cowin SC, Zeng Y (1994) A model for the excitation of osteocytes by mechanical loading–induced bone fluid shear stresses. J Biomech 27:339–360PubMed Weinbaum S, Cowin SC, Zeng Y (1994) A model for the excitation of osteocytes by mechanical loading–induced bone fluid shear stresses. J Biomech 27:339–360PubMed
24.
Zurück zum Zitat Wang L, Ciani C, Doty SB, Fritton SP (2004) Delineating bone’s interstitial fluid pathway in vivo. Bone 34:499–509PubMed Wang L, Ciani C, Doty SB, Fritton SP (2004) Delineating bone’s interstitial fluid pathway in vivo. Bone 34:499–509PubMed
25.
Zurück zum Zitat Ciani C, Doty SB, Fritton SP (2009) An effective histological staining process to visualize bone interstitial fluid space using confocal microscopy. Bone 44:1015–1017PubMedCentralPubMed Ciani C, Doty SB, Fritton SP (2009) An effective histological staining process to visualize bone interstitial fluid space using confocal microscopy. Bone 44:1015–1017PubMedCentralPubMed
26.
Zurück zum Zitat 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 22:107–117PubMed 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 22:107–117PubMed
27.
Zurück zum Zitat Li W, You L, Schaffler MB, Wang L (2009) The dependency of solute diffusion on molecular weight and shape in intact bone. Bone 45:1017–1023PubMedCentralPubMed Li W, You L, Schaffler MB, Wang L (2009) The dependency of solute diffusion on molecular weight and shape in intact bone. Bone 45:1017–1023PubMedCentralPubMed
28.
Zurück zum Zitat 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 26:277–285PubMed 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 26:277–285PubMed
29.
Zurück zum Zitat 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 28:1075–1086PubMed 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 28:1075–1086PubMed
30.
Zurück zum Zitat 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 152:3323–3331PubMed 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 152:3323–3331PubMed
31.
Zurück zum Zitat Knothe Tate ML (2003) “Whither flows the fluid in bone?” an osteocyte’s perspective. J Biomech 36:1409–1424PubMed Knothe Tate ML (2003) “Whither flows the fluid in bone?” an osteocyte’s perspective. J Biomech 36:1409–1424PubMed
32.
Zurück zum Zitat Wolff J (1986) The law of bone remodelling. Springer-Verlag, New York Wolff J (1986) The law of bone remodelling. Springer-Verlag, New York
33.
Zurück zum Zitat 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 19:1403–1410PubMed 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 19:1403–1410PubMed
34.
Zurück zum Zitat Liu C, Zhao Y, Cheung WY, Gandhi R, Wang L, You L (2010) Effects of cyclic hydraulic pressure on osteocytes. Bone 46:1449–1456PubMedCentralPubMed Liu C, Zhao Y, Cheung WY, Gandhi R, Wang L, You L (2010) Effects of cyclic hydraulic pressure on osteocytes. Bone 46:1449–1456PubMedCentralPubMed
35.
Zurück zum Zitat 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 42:2507–2512PubMed 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 42:2507–2512PubMed
36.
Zurück zum Zitat Rubin CT, Lanyon LE (1984) Regulation of bone formation by applied dynamic loads. J Bone Joint Surg Am 66:397–402PubMed Rubin CT, Lanyon LE (1984) Regulation of bone formation by applied dynamic loads. J Bone Joint Surg Am 66:397–402PubMed
37.
Zurück zum Zitat Fritton SP, McLeod KJ, Rubin CT (2000) Quantifying the strain history of bone: spatial uniformity and self-similarity of low-magnitude strains. J Biomech 33:317–325PubMed Fritton SP, McLeod KJ, Rubin CT (2000) Quantifying the strain history of bone: spatial uniformity and self-similarity of low-magnitude strains. J Biomech 33:317–325PubMed
38.
Zurück zum Zitat 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 122:387–393PubMed 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 122:387–393PubMed
39.
Zurück zum Zitat 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 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.
Zurück zum Zitat 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 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
41.
Zurück zum Zitat Genetos DC, Kephart CJ, Zhang Y, Yellowley CE, Donahue HJ (2007) Oscillating fluid flow activation of gap junction hemichannels induces ATP release from MLO-Y4 osteocytes. J Cell Physiol 212:207–214PubMedCentralPubMed Genetos DC, Kephart CJ, Zhang Y, Yellowley CE, Donahue HJ (2007) Oscillating fluid flow activation of gap junction hemichannels induces ATP release from MLO-Y4 osteocytes. J Cell Physiol 212:207–214PubMedCentralPubMed
42.
Zurück zum Zitat 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 217:640–648PubMed 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 217:640–648PubMed
43.
Zurück zum Zitat Lu XL, Huo B, Park M, Guo XE (2012) Calcium response in osteocytic networks under steady and oscillatory fluid flow. Bone 51:466–473PubMedCentralPubMed Lu XL, Huo B, Park M, Guo XE (2012) Calcium response in osteocytic networks under steady and oscillatory fluid flow. Bone 51:466–473PubMedCentralPubMed
44.
Zurück zum Zitat 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 16:3100–3106PubMedCentralPubMed 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 16:3100–3106PubMedCentralPubMed
45.
Zurück zum Zitat 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 33:52–62PubMed 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 33:52–62PubMed
46.
Zurück zum Zitat Han Y, Cowin SC, Schaffler MB, Weinbaum S (2004) Mechanotransduction and strain amplification in osteocyte cell processes. Proc Natl Acad Sci USA 101:16689–16694PubMed Han Y, Cowin SC, Schaffler MB, Weinbaum S (2004) Mechanotransduction and strain amplification in osteocyte cell processes. Proc Natl Acad Sci USA 101:16689–16694PubMed
47.
Zurück zum Zitat You L, Cowin SC, Schaffler MB, Weinbaum S (2001) A model for strain amplification in the actin cytoskeleton of osteocytes due to fluid drag on pericellular matrix. J Biomech 34:1375–1386PubMed You L, Cowin SC, Schaffler MB, Weinbaum S (2001) A model for strain amplification in the actin cytoskeleton of osteocytes due to fluid drag on pericellular matrix. J Biomech 34:1375–1386PubMed
48.
Zurück zum Zitat 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 280:225–233PubMed 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 280:225–233PubMed
49.
Zurück zum Zitat 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–e142PubMed 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–e142PubMed
50.
Zurück zum Zitat 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 106:22102–22107PubMed 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 106:22102–22107PubMed
51.
Zurück zum Zitat Reilly GC, Haut TR, Yellowley CE, Donahue HJ, Jacobs CR (2003) Fluid flow induced PGE2 release by bone cells is reduced by glycocalyx degradation whereas calcium signals are not. Biorheology 40:591–603PubMed Reilly GC, Haut TR, Yellowley CE, Donahue HJ, Jacobs CR (2003) Fluid flow induced PGE2 release by bone cells is reduced by glycocalyx degradation whereas calcium signals are not. Biorheology 40:591–603PubMed
52.
Zurück zum Zitat Wang Y, McNamara LM, Schaffler MB, Weinbaum S (2008) Strain amplification and integrin based signaling in osteocytes. J Musculoskelet Neuronal Interact 8:332–334PubMedCentralPubMed Wang Y, McNamara LM, Schaffler MB, Weinbaum S (2008) Strain amplification and integrin based signaling in osteocytes. J Musculoskelet Neuronal Interact 8:332–334PubMedCentralPubMed
53.
Zurück zum Zitat McKee MD, Nanci A (1995) Osteopontin and the bone remodeling sequence. Colloidal-gold immunocytochemistry of an interfacial extracellular matrix protein. Ann N Y Acad Sci 760:177–189PubMed McKee MD, Nanci A (1995) Osteopontin and the bone remodeling sequence. Colloidal-gold immunocytochemistry of an interfacial extracellular matrix protein. Ann N Y Acad Sci 760:177–189PubMed
54.
Zurück zum Zitat Nakamura I, Pilkington MF, Lakkakorpi PT, Lipfert L, Sims SM, Dixon SJ, Rodan GA, Duong LT (1999) Role of alpha(v)beta(3) integrin in osteoclast migration and formation of the sealing zone. J Cell Sci 112(Pt 22):3985–3993PubMed Nakamura I, Pilkington MF, Lakkakorpi PT, Lipfert L, Sims SM, Dixon SJ, Rodan GA, Duong LT (1999) Role of alpha(v)beta(3) integrin in osteoclast migration and formation of the sealing zone. J Cell Sci 112(Pt 22):3985–3993PubMed
55.
Zurück zum Zitat Roca-Cusachs P, Gauthier NC, Del Rio A, Sheetz MP (2009) Clustering of alpha(5)beta(1) integrins determines adhesion strength whereas alpha(v)beta(3) and talin enable mechanotransduction. Proc Natl Acad Sci USA 106:16245–16250PubMed Roca-Cusachs P, Gauthier NC, Del Rio A, Sheetz MP (2009) Clustering of alpha(5)beta(1) integrins determines adhesion strength whereas alpha(v)beta(3) and talin enable mechanotransduction. Proc Natl Acad Sci USA 106:16245–16250PubMed
56.
Zurück zum Zitat Tzima E, del Pozo MA, Shattil SJ, Chien S, Schwartz MA (2001) Activation of integrins in endothelial cells by fluid shear stress mediates Rho-dependent cytoskeletal alignment. EMBO J 20:4639–4647PubMed Tzima E, del Pozo MA, Shattil SJ, Chien S, Schwartz MA (2001) Activation of integrins in endothelial cells by fluid shear stress mediates Rho-dependent cytoskeletal alignment. EMBO J 20:4639–4647PubMed
57.
Zurück zum Zitat Miyauchi A, Gotoh M, Kamioka H, Notoya K, Sekiya H, Takagi Y, Yoshimoto Y, Ishikawa H, Chihara K, Takano-Yamamoto T, Fujita T, Mikuni-Takagaki Y (2006) AlphaVbeta3 integrin ligands enhance volume-sensitive calcium influx in mechanically stretched osteocytes. J Bone Miner Metab 24:498–504PubMed Miyauchi A, Gotoh M, Kamioka H, Notoya K, Sekiya H, Takagi Y, Yoshimoto Y, Ishikawa H, Chihara K, Takano-Yamamoto T, Fujita T, Mikuni-Takagaki Y (2006) AlphaVbeta3 integrin ligands enhance volume-sensitive calcium influx in mechanically stretched osteocytes. J Bone Miner Metab 24:498–504PubMed
58.
Zurück zum Zitat Wu D, Ganatos P, Spray DC, Weinbaum S (2011) On the electrophysiological response of bone cells using a Stokesian fluid stimulus probe for delivery of quantifiable localized piconewton level forces. J Biomech 44:1702–1708PubMedCentralPubMed Wu D, Ganatos P, Spray DC, Weinbaum S (2011) On the electrophysiological response of bone cells using a Stokesian fluid stimulus probe for delivery of quantifiable localized piconewton level forces. J Biomech 44:1702–1708PubMedCentralPubMed
59.
Zurück zum Zitat Radel C, Carlile-Klusacek M, Rizzo V (2007) Participation of caveolae in beta1 integrin–mediated mechanotransduction. Biochem Biophys Res Commun 358:626–631PubMedCentralPubMed Radel C, Carlile-Klusacek M, Rizzo V (2007) Participation of caveolae in beta1 integrin–mediated mechanotransduction. Biochem Biophys Res Commun 358:626–631PubMedCentralPubMed
60.
Zurück zum Zitat Friedland JC, Lee MH, Boettiger D (2009) Mechanically activated integrin switch controls alpha5beta1 function. Science 323:642–644PubMed Friedland JC, Lee MH, Boettiger D (2009) Mechanically activated integrin switch controls alpha5beta1 function. Science 323:642–644PubMed
61.
Zurück zum Zitat Phillips JA, Almeida EA, Hill EL, Aguirre JI, Rivera MF, Nachbandi I, Wronski TJ, van der Meulen MC, Globus RK (2008) Role for beta1 integrins in cortical osteocytes during acute musculoskeletal disuse. Matrix Biol 27:609–618PubMed Phillips JA, Almeida EA, Hill EL, Aguirre JI, Rivera MF, Nachbandi I, Wronski TJ, van der Meulen MC, Globus RK (2008) Role for beta1 integrins in cortical osteocytes during acute musculoskeletal disuse. Matrix Biol 27:609–618PubMed
62.
Zurück zum Zitat Nicolella DP, Moravits DE, Gale AM, Bonewald LF, Lankford J (2006) Osteocyte lacunae tissue strain in cortical bone. J Biomech 39:1735–1743PubMedCentralPubMed Nicolella DP, Moravits DE, Gale AM, Bonewald LF, Lankford J (2006) Osteocyte lacunae tissue strain in cortical bone. J Biomech 39:1735–1743PubMedCentralPubMed
63.
Zurück zum Zitat Lancaster MA, Gleeson JG (2009) The primary cilium as a cellular signaling center: lessons from disease. Curr Opin Genet Dev 19:220–229PubMedCentralPubMed Lancaster MA, Gleeson JG (2009) The primary cilium as a cellular signaling center: lessons from disease. Curr Opin Genet Dev 19:220–229PubMedCentralPubMed
64.
Zurück zum Zitat Malone AM, Anderson CT, Tummala P, Kwon RY, Johnston TR, Stearns T, Jacobs CR (2007) Primary cilia mediate mechanosensing in bone cells by a calcium-independent mechanism. Proc Natl Acad Sci USA 104:13325–13330PubMed Malone AM, Anderson CT, Tummala P, Kwon RY, Johnston TR, Stearns T, Jacobs CR (2007) Primary cilia mediate mechanosensing in bone cells by a calcium-independent mechanism. Proc Natl Acad Sci USA 104:13325–13330PubMed
65.
Zurück zum Zitat Wann AK, Knight MM (2012) Primary cilia elongation in response to interleukin-1 mediates the inflammatory response. Cell Mol Life Sci 69:2967–2977PubMedCentralPubMed Wann AK, Knight MM (2012) Primary cilia elongation in response to interleukin-1 mediates the inflammatory response. Cell Mol Life Sci 69:2967–2977PubMedCentralPubMed
66.
Zurück zum Zitat Wheatley DN (2005) Landmarks in the first hundred years of primary (9+0) cilium research. Cell Biol Int 29:333–339PubMed Wheatley DN (2005) Landmarks in the first hundred years of primary (9+0) cilium research. Cell Biol Int 29:333–339PubMed
67.
Zurück zum Zitat Wassermann FYJ (1965) Fine structure of the osteocyte capsule and of the wall of the lacunae in bone. Cell Tissue Res 67:636–652 Wassermann FYJ (1965) Fine structure of the osteocyte capsule and of the wall of the lacunae in bone. Cell Tissue Res 67:636–652
68.
Zurück zum Zitat Mochizuki T, Tsuchiya K, Nitta K (2013) Autosomal dominant polycystic kidney disease: recent advances in pathogenesis and potential therapies. Clin Exp Nephrol 17:317–326PubMed Mochizuki T, Tsuchiya K, Nitta K (2013) Autosomal dominant polycystic kidney disease: recent advances in pathogenesis and potential therapies. Clin Exp Nephrol 17:317–326PubMed
69.
Zurück zum Zitat Harris PC, Torres VE (2002) Polycystic kidney disease, autosomal dominant. In: GeneReviews. University of Washington, Seattle Harris PC, Torres VE (2002) Polycystic kidney disease, autosomal dominant. In: GeneReviews. University of Washington, Seattle
70.
Zurück zum Zitat Torres VE, Harris PC (2007) Polycystic kidney disease: genes, proteins, animal models, disease mechanisms and therapeutic opportunities. J Intern Med 261:17–31PubMed Torres VE, Harris PC (2007) Polycystic kidney disease: genes, proteins, animal models, disease mechanisms and therapeutic opportunities. J Intern Med 261:17–31PubMed
71.
Zurück zum Zitat Xiao Z, Dallas M, Qiu N, Nicolella D, Cao L, Johnson M, Bonewald L, Quarles LD (2011) Conditional deletion of Pkd1 in osteocytes disrupts skeletal mechanosensing in mice. FASEB J 25:2418–2432PubMed Xiao Z, Dallas M, Qiu N, Nicolella D, Cao L, Johnson M, Bonewald L, Quarles LD (2011) Conditional deletion of Pkd1 in osteocytes disrupts skeletal mechanosensing in mice. FASEB J 25:2418–2432PubMed
72.
Zurück zum Zitat (2004) Syncytium. In: The Merriam-Webster’s Collegiate Dictionary, Merriam Webster, Springfield, MA (2004) Syncytium. In: The Merriam-Webster’s Collegiate Dictionary, Merriam Webster, Springfield, MA
73.
Zurück zum Zitat Palazzini S, Palumbo C, Ferretti M, Marotti G (1998) Stromal cell structure and relationships in perimedullary spaces of chick embryo shaft bones. Anat Embryol (Berl) 197:349–357 Palazzini S, Palumbo C, Ferretti M, Marotti G (1998) Stromal cell structure and relationships in perimedullary spaces of chick embryo shaft bones. Anat Embryol (Berl) 197:349–357
74.
Zurück zum Zitat Stains JP, Civitelli R (2005) Cell-to-cell interactions in bone. Biochem Biophys Res Commun 328:721–727PubMed Stains JP, Civitelli R (2005) Cell-to-cell interactions in bone. Biochem Biophys Res Commun 328:721–727PubMed
75.
Zurück zum Zitat Yellowley CE, Li Z, Zhou Z, Jacobs CR, Donahue HJ (2000) Functional gap junctions between osteocytic and osteoblastic cells. J Bone Miner Res 15:209–217PubMed Yellowley CE, Li Z, Zhou Z, Jacobs CR, Donahue HJ (2000) Functional gap junctions between osteocytic and osteoblastic cells. J Bone Miner Res 15:209–217PubMed
76.
Zurück zum Zitat Cheng B, Zhao S, Luo J, Sprague E, Bonewald LF, Jiang JX (2001) Expression of functional gap junctions and regulation by fluid flow in osteocyte-like MLO-Y4 cells. J Bone Miner Res 16:249–259PubMed Cheng B, Zhao S, Luo J, Sprague E, Bonewald LF, Jiang JX (2001) Expression of functional gap junctions and regulation by fluid flow in osteocyte-like MLO-Y4 cells. J Bone Miner Res 16:249–259PubMed
77.
Zurück zum Zitat Cheng B, Kato Y, Zhao S, Luo J, Sprague E, Bonewald LF, Jiang JX (2001) PGE2 is essential for gap junction–mediated intercellular communication between osteocyte-like MLO-Y4 cells in response to mechanical strain. Endocrinology 142:3464–3473PubMed Cheng B, Kato Y, Zhao S, Luo J, Sprague E, Bonewald LF, Jiang JX (2001) PGE2 is essential for gap junction–mediated intercellular communication between osteocyte-like MLO-Y4 cells in response to mechanical strain. Endocrinology 142:3464–3473PubMed
78.
Zurück zum Zitat D’Hondt C, Ponsaerts R, De Smedt H, Bultynck G, Himpens B (2009) Pannexins, distant relatives of the connexin family with specific cellular functions? BioEssays 31:953–974PubMed D’Hondt C, Ponsaerts R, De Smedt H, Bultynck G, Himpens B (2009) Pannexins, distant relatives of the connexin family with specific cellular functions? BioEssays 31:953–974PubMed
79.
Zurück zum Zitat Castro CH, Stains JP, Sheikh S, Szejnfeld VL, Willecke K, Theis M, Civitelli R (2003) Development of mice with osteoblast-specific connexin43 gene deletion. Cell Commun Adhes 10:445–450PubMed Castro CH, Stains JP, Sheikh S, Szejnfeld VL, Willecke K, Theis M, Civitelli R (2003) Development of mice with osteoblast-specific connexin43 gene deletion. Cell Commun Adhes 10:445–450PubMed
80.
Zurück zum Zitat Zhang Y, Paul EM, Sathyendra V, Davison A, Sharkey N, Bronson S, Srinivasan S, Gross TS, Donahue HJ (2011) Enhanced osteoclastic resorption and responsiveness to mechanical load in gap junction deficient bone. PLoS One 6:e23516PubMedCentralPubMed Zhang Y, Paul EM, Sathyendra V, Davison A, Sharkey N, Bronson S, Srinivasan S, Gross TS, Donahue HJ (2011) Enhanced osteoclastic resorption and responsiveness to mechanical load in gap junction deficient bone. PLoS One 6:e23516PubMedCentralPubMed
81.
Zurück zum Zitat Grimston SK, Goldberg DB, Watkins M, Brodt MD, Silva MJ, Civitelli R (2011) Connexin43 deficiency reduces the sensitivity of cortical bone to the effects of muscle paralysis. J Bone Miner Res 26:2151–2160PubMedCentralPubMed Grimston SK, Goldberg DB, Watkins M, Brodt MD, Silva MJ, Civitelli R (2011) Connexin43 deficiency reduces the sensitivity of cortical bone to the effects of muscle paralysis. J Bone Miner Res 26:2151–2160PubMedCentralPubMed
82.
Zurück zum Zitat Grimston SK, Brodt MD, Silva MJ, Civitelli R (2008) Attenuated response to in vivo mechanical loading in mice with conditional osteoblast ablation of the connexin43 gene (Gja1). J Bone Miner Res 23:879–886PubMed Grimston SK, Brodt MD, Silva MJ, Civitelli R (2008) Attenuated response to in vivo mechanical loading in mice with conditional osteoblast ablation of the connexin43 gene (Gja1). J Bone Miner Res 23:879–886PubMed
83.
Zurück zum Zitat Lloyd SA, Lewis GS, Zhang Y, Paul EM, Donahue HJ (2012) Connexin 43 deficiency attenuates loss of trabecular bone and prevents suppression of cortical bone formation during unloading. J Bone Miner Res 27:2359–2372PubMedCentralPubMed Lloyd SA, Lewis GS, Zhang Y, Paul EM, Donahue HJ (2012) Connexin 43 deficiency attenuates loss of trabecular bone and prevents suppression of cortical bone formation during unloading. J Bone Miner Res 27:2359–2372PubMedCentralPubMed
84.
Zurück zum Zitat Scemes E, Dermietzel R, Spray DC (1998) Calcium waves between astrocytes from Cx43 knockout mice. Glia 24:65–73PubMedCentralPubMed Scemes E, Dermietzel R, Spray DC (1998) Calcium waves between astrocytes from Cx43 knockout mice. Glia 24:65–73PubMedCentralPubMed
85.
Zurück zum Zitat Lecanda F, Warlow PM, Sheikh S, Furlan F, Steinberg TH, Civitelli R (2000) Connexin43 deficiency causes delayed ossification, craniofacial abnormalities, and osteoblast dysfunction. J Cell Biol 151:931–944PubMed Lecanda F, Warlow PM, Sheikh S, Furlan F, Steinberg TH, Civitelli R (2000) Connexin43 deficiency causes delayed ossification, craniofacial abnormalities, and osteoblast dysfunction. J Cell Biol 151:931–944PubMed
86.
Zurück zum Zitat Batra N, Burra S, Siller-Jackson AJ, Gu S, Xia X, Weber GF, DeSimone D, Bonewald LF, Lafer EM, Sprague E, Schwartz MA, Jiang JX (2012) Mechanical stress–activated integrin alpha5beta1 induces opening of connexin 43 hemichannels. Proc Natl Acad Sci USA 109:3359–3364PubMed Batra N, Burra S, Siller-Jackson AJ, Gu S, Xia X, Weber GF, DeSimone D, Bonewald LF, Lafer EM, Sprague E, Schwartz MA, Jiang JX (2012) Mechanical stress–activated integrin alpha5beta1 induces opening of connexin 43 hemichannels. Proc Natl Acad Sci USA 109:3359–3364PubMed
87.
Zurück zum Zitat Reddy KV, Mangale SS (2003) Integrin receptors: the dynamic modulators of endometrial function. Tissue Cell 35:260–273PubMed Reddy KV, Mangale SS (2003) Integrin receptors: the dynamic modulators of endometrial function. Tissue Cell 35:260–273PubMed
88.
Zurück zum Zitat Spray DC, Ye ZC, Ransom BR (2006) Functional connexin “hemichannels”: a critical appraisal. Glia 54:758–773PubMed Spray DC, Ye ZC, Ransom BR (2006) Functional connexin “hemichannels”: a critical appraisal. Glia 54:758–773PubMed
89.
Zurück zum Zitat Suadicani SO, Vink MJ, Spray DC (2000) Slow intercellular Ca2+ signaling in wild-type and Cx43-null neonatal mouse cardiac myocytes. Am J Physiol Heart Circ Physiol 279:H3076–H3088PubMed Suadicani SO, Vink MJ, Spray DC (2000) Slow intercellular Ca2+ signaling in wild-type and Cx43-null neonatal mouse cardiac myocytes. Am J Physiol Heart Circ Physiol 279:H3076–H3088PubMed
90.
Zurück zum Zitat Iglesias R, Dahl G, Qiu F, Spray DC, Scemes E (2009) Pannexin 1: the molecular substrate of astrocyte “hemichannels”. J Neurosci 29:7092–7097PubMedCentralPubMed Iglesias R, Dahl G, Qiu F, Spray DC, Scemes E (2009) Pannexin 1: the molecular substrate of astrocyte “hemichannels”. J Neurosci 29:7092–7097PubMedCentralPubMed
91.
Zurück zum Zitat Baranova A, Ivanov D, Petrash N, Pestova A, Skoblov M, Kelmanson I, Shagin D, Nazarenko S, Geraymovych E, Litvin O, Tiunova A, Born TL, Usman N, Staroverov D, Lukyanov S, Panchin Y (2004) The mammalian pannexin family is homologous to the invertebrate innexin gap junction proteins. Genomics 83:706–716PubMed Baranova A, Ivanov D, Petrash N, Pestova A, Skoblov M, Kelmanson I, Shagin D, Nazarenko S, Geraymovych E, Litvin O, Tiunova A, Born TL, Usman N, Staroverov D, Lukyanov S, Panchin Y (2004) The mammalian pannexin family is homologous to the invertebrate innexin gap junction proteins. Genomics 83:706–716PubMed
92.
Zurück zum Zitat Thi MM, Islam S, Suadicani SO, Spray DC (2012) Connexin43 and pannexin1 channels in osteoblasts: who is the “hemichannel”? J Membr Biol 245:401–409PubMedCentralPubMed Thi MM, Islam S, Suadicani SO, Spray DC (2012) Connexin43 and pannexin1 channels in osteoblasts: who is the “hemichannel”? J Membr Biol 245:401–409PubMedCentralPubMed
93.
Zurück zum Zitat Sosinsky GE, Boassa D, Dermietzel R, Duffy HS, Laird DW, MacVicar B, Naus CC, Penuela S, Scemes E, Spray DC, Thompson RJ, Zhao HB, Dahl G (2011) Pannexin channels are not gap junction hemichannels. Channels (Austin) 5:193–197 Sosinsky GE, Boassa D, Dermietzel R, Duffy HS, Laird DW, MacVicar B, Naus CC, Penuela S, Scemes E, Spray DC, Thompson RJ, Zhao HB, Dahl G (2011) Pannexin channels are not gap junction hemichannels. Channels (Austin) 5:193–197
94.
Zurück zum Zitat Bao L, Locovei S, Dahl G (2004) Pannexin membrane channels are mechanosensitive conduits for ATP. FEBS Lett 572:65–68PubMed Bao L, Locovei S, Dahl G (2004) Pannexin membrane channels are mechanosensitive conduits for ATP. FEBS Lett 572:65–68PubMed
95.
Zurück zum Zitat Powell WF Jr, Barry KJ, Tulum I, Kobayashi T, Harris SE, Bringhurst FR, Pajevic PD (2011) Targeted ablation of the PTH/PTHrP receptor in osteocytes impairs bone structure and homeostatic calcemic responses. J Endocrinol 209:21–32PubMedCentralPubMed Powell WF Jr, Barry KJ, Tulum I, Kobayashi T, Harris SE, Bringhurst FR, Pajevic PD (2011) Targeted ablation of the PTH/PTHrP receptor in osteocytes impairs bone structure and homeostatic calcemic responses. J Endocrinol 209:21–32PubMedCentralPubMed
96.
Zurück zum Zitat Lau KH, Baylink DJ, Zhou XD, Rodriguez D, Bonewald LF, Li Z, Ruffoni D, Muller R, Kesavan C, Sheng MH (2013) Osteocyte-derived insulin-like growth factor I is essential for determining bone mechanosensitivity. Am J Physiol Endocrinol Metab 305:E271–E281PubMed Lau KH, Baylink DJ, Zhou XD, Rodriguez D, Bonewald LF, Li Z, Ruffoni D, Muller R, Kesavan C, Sheng MH (2013) Osteocyte-derived insulin-like growth factor I is essential for determining bone mechanosensitivity. Am J Physiol Endocrinol Metab 305:E271–E281PubMed
97.
Zurück zum Zitat Marotti G, Ferretti M, Muglia MA, Palumbo C, Palazzini S (1992) A quantitative evaluation of osteoblast–osteocyte relationships on growing endosteal surface of rabbit tibiae. Bone 13:363–368PubMed Marotti G, Ferretti M, Muglia MA, Palumbo C, Palazzini S (1992) A quantitative evaluation of osteoblast–osteocyte relationships on growing endosteal surface of rabbit tibiae. Bone 13:363–368PubMed
98.
Zurück zum Zitat Rodan GA, Bourret LA, Harvey A, Mensi T (1975) Cyclic AMP and cyclic GMP: mediators of the mechanical effects on bone remodeling. Science 189:467–469PubMed Rodan GA, Bourret LA, Harvey A, Mensi T (1975) Cyclic AMP and cyclic GMP: mediators of the mechanical effects on bone remodeling. Science 189:467–469PubMed
99.
Zurück zum Zitat Somjen D, Binderman I, Berger E, Harell A (1980) Bone remodelling induced by physical stress is prostaglandin E2 mediated. Biochim Biophys Acta 627:91–100PubMed Somjen D, Binderman I, Berger E, Harell A (1980) Bone remodelling induced by physical stress is prostaglandin E2 mediated. Biochim Biophys Acta 627:91–100PubMed
100.
Zurück zum Zitat Forwood MR, Kelly WL, Worth NF (1998) Localisation of prostaglandin endoperoxide H synthase (PGHS)-1 and PGHS-2 in bone following mechanical loading in vivo. Anat Rec 252:580–586PubMed Forwood MR, Kelly WL, Worth NF (1998) Localisation of prostaglandin endoperoxide H synthase (PGHS)-1 and PGHS-2 in bone following mechanical loading in vivo. Anat Rec 252:580–586PubMed
101.
Zurück zum Zitat Forwood MR (1996) Inducible cyclo-oxygenase (COX-2) mediates the induction of bone formation by mechanical loading in vivo. J Bone Miner Res 11:1688–1693PubMed Forwood MR (1996) Inducible cyclo-oxygenase (COX-2) mediates the induction of bone formation by mechanical loading in vivo. J Bone Miner Res 11:1688–1693PubMed
102.
Zurück zum Zitat Giuliano F, Warner TD (2002) Origins of prostaglandin E2: involvements of cyclooxygenase (COX)-1 and COX-2 in human and rat systems. J Pharmacol Exp Ther 303:1001–1006PubMed Giuliano F, Warner TD (2002) Origins of prostaglandin E2: involvements of cyclooxygenase (COX)-1 and COX-2 in human and rat systems. J Pharmacol Exp Ther 303:1001–1006PubMed
103.
Zurück zum Zitat Li J, Rose E, Frances D, Sun Y, You L (2012) Effect of oscillating fluid flow stimulation on osteocyte mRNA expression. J Biomech 45:247–251PubMed Li J, Rose E, Frances D, Sun Y, You L (2012) Effect of oscillating fluid flow stimulation on osteocyte mRNA expression. J Biomech 45:247–251PubMed
104.
Zurück zum Zitat Jiang JX, Cheng B (2001) Mechanical stimulation of gap junctions in bone osteocytes is mediated by prostaglandin E2. Cell Commun Adhes 8:283–288PubMed Jiang JX, Cheng B (2001) Mechanical stimulation of gap junctions in bone osteocytes is mediated by prostaglandin E2. Cell Commun Adhes 8:283–288PubMed
105.
Zurück zum Zitat Mikuni-Takagaki Y (1999) Mechanical responses and signal transduction pathways in stretched osteocytes. J Bone Miner Metab 17:57–60PubMed Mikuni-Takagaki Y (1999) Mechanical responses and signal transduction pathways in stretched osteocytes. J Bone Miner Metab 17:57–60PubMed
106.
Zurück zum Zitat Fortier I, Patry C, Lora M, Samadfan R, de Brum-Fernandes AJ (2001) Immunohistochemical localization of the prostacyclin receptor (IP) human bone. Prostaglandins Leukot Essent Fatty Acids 65:79–83PubMed Fortier I, Patry C, Lora M, Samadfan R, de Brum-Fernandes AJ (2001) Immunohistochemical localization of the prostacyclin receptor (IP) human bone. Prostaglandins Leukot Essent Fatty Acids 65:79–83PubMed
107.
Zurück zum Zitat Nakalekha C, Yokoyama C, Miura H, Alles N, Aoki K, Ohya K, Morita I (2010) Increased bone mass in adult prostacyclin-deficient mice. J Endocrinol 204:125–133PubMed Nakalekha C, Yokoyama C, Miura H, Alles N, Aoki K, Ohya K, Morita I (2010) Increased bone mass in adult prostacyclin-deficient mice. J Endocrinol 204:125–133PubMed
108.
Zurück zum Zitat Fortier I, Gallant MA, Hackett JA, Patry C, de Brum-Fernandes AJ (2004) Immunolocalization of the prostaglandin E2 receptor subtypes in human bone tissue: differences in foetal, adult normal, osteoporotic and pagetic bone. Prostaglandins Leukot Essent Fatty Acids 70:431–439PubMed Fortier I, Gallant MA, Hackett JA, Patry C, de Brum-Fernandes AJ (2004) Immunolocalization of the prostaglandin E2 receptor subtypes in human bone tissue: differences in foetal, adult normal, osteoporotic and pagetic bone. Prostaglandins Leukot Essent Fatty Acids 70:431–439PubMed
109.
Zurück zum Zitat Zaman G, Pitsillides AA, Rawlinson SC, Suswillo RF, Mosley JR, Cheng MZ, Platts LA, Hukkanen M, Polak JM, Lanyon LE (1999) Mechanical strain stimulates nitric oxide production by rapid activation of endothelial nitric oxide synthase in osteocytes. J Bone Miner Res 14:1123–1131PubMed Zaman G, Pitsillides AA, Rawlinson SC, Suswillo RF, Mosley JR, Cheng MZ, Platts LA, Hukkanen M, Polak JM, Lanyon LE (1999) Mechanical strain stimulates nitric oxide production by rapid activation of endothelial nitric oxide synthase in osteocytes. J Bone Miner Res 14:1123–1131PubMed
110.
Zurück zum Zitat Knowles RG, Moncada S (1994) Nitric-oxide synthases in mammals. Biochem J 298:249–258PubMed Knowles RG, Moncada S (1994) Nitric-oxide synthases in mammals. Biochem J 298:249–258PubMed
111.
Zurück zum Zitat Caballero-Alias AM, Loveridge N, Lyon A, Das-Gupta V, Pitsillides A, Reeve J (2004) NOS isoforms in adult human osteocytes: multiple pathways of NO regulation? Calcif Tissue Int 75:78–84PubMed Caballero-Alias AM, Loveridge N, Lyon A, Das-Gupta V, Pitsillides A, Reeve J (2004) NOS isoforms in adult human osteocytes: multiple pathways of NO regulation? Calcif Tissue Int 75:78–84PubMed
112.
Zurück zum Zitat Mancini L, Moradi-Bidhendi N, Becherini L, Martineti V, MacIntyre I (2000) The biphasic effects of nitric oxide in primary rat osteoblasts are cGMP dependent. Biochem Biophys Res Commun 274:477–481PubMed Mancini L, Moradi-Bidhendi N, Becherini L, Martineti V, MacIntyre I (2000) The biphasic effects of nitric oxide in primary rat osteoblasts are cGMP dependent. Biochem Biophys Res Commun 274:477–481PubMed
113.
Zurück zum Zitat Bakker AD, Huesa C, Hughes A, Aspden RM, van’t Hof RJ, Klein-Nulend J, Helfrich MH (2013) Endothelial nitric oxide synthase is not essential for nitric oxide production by osteoblasts subjected to fluid shear stress in vitro. Calcif Tissue Int 92:228–239PubMed Bakker AD, Huesa C, Hughes A, Aspden RM, van’t Hof RJ, Klein-Nulend J, Helfrich MH (2013) Endothelial nitric oxide synthase is not essential for nitric oxide production by osteoblasts subjected to fluid shear stress in vitro. Calcif Tissue Int 92:228–239PubMed
114.
Zurück zum Zitat van’t Hof RJ, MacPhee J, Libouban H, Helfrich MH, Ralston SH (2004) Regulation of bone mass and bone turnover by neuronal nitric oxide synthase. Endocrinology 145:5068–5074 van’t Hof RJ, MacPhee J, Libouban H, Helfrich MH, Ralston SH (2004) Regulation of bone mass and bone turnover by neuronal nitric oxide synthase. Endocrinology 145:5068–5074
115.
Zurück zum Zitat Hakim TS, Sugimori K, Camporesi EM, Anderson G (1996) Half-life of nitric oxide in aqueous solutions with and without haemoglobin. Physiol Meas 17:267–277PubMed Hakim TS, Sugimori K, Camporesi EM, Anderson G (1996) Half-life of nitric oxide in aqueous solutions with and without haemoglobin. Physiol Meas 17:267–277PubMed
116.
Zurück zum Zitat Yakar S, Rosen CJ, Beamer WG, Ackert-Bicknell CL, Wu Y, Liu JL, Ooi GT, Setser J, Frystyk J, Boisclair YR, LeRoith D (2002) Circulating levels of IGF-1 directly regulate bone growth and density. J Clin Invest 110:771–781PubMedCentralPubMed Yakar S, Rosen CJ, Beamer WG, Ackert-Bicknell CL, Wu Y, Liu JL, Ooi GT, Setser J, Frystyk J, Boisclair YR, LeRoith D (2002) Circulating levels of IGF-1 directly regulate bone growth and density. J Clin Invest 110:771–781PubMedCentralPubMed
117.
Zurück zum Zitat Sheng MH, Zhou XD, Bonewald LF, Baylink DJ, Lau KH (2013) Disruption of the insulin-like growth factor-1 gene in osteocytes impairs developmental bone growth in mice. Bone 52:133–144PubMed Sheng MH, Zhou XD, Bonewald LF, Baylink DJ, Lau KH (2013) Disruption of the insulin-like growth factor-1 gene in osteocytes impairs developmental bone growth in mice. Bone 52:133–144PubMed
118.
Zurück zum Zitat Lean JM, Jagger CJ, Chambers TJ, Chow JW (1995) Increased insulin-like growth factor I mRNA expression in rat osteocytes in response to mechanical stimulation. Am J Physiol Endocrinol Metab 268:E318–E327 Lean JM, Jagger CJ, Chambers TJ, Chow JW (1995) Increased insulin-like growth factor I mRNA expression in rat osteocytes in response to mechanical stimulation. Am J Physiol Endocrinol Metab 268:E318–E327
119.
Zurück zum Zitat Reijnders CM, Bravenboer N, Tromp AM, Blankenstein MA, Lips P (2007) Effect of mechanical loading on insulin-like growth factor-I gene expression in rat tibia. J Endocrinol 192:131–140PubMed Reijnders CM, Bravenboer N, Tromp AM, Blankenstein MA, Lips P (2007) Effect of mechanical loading on insulin-like growth factor-I gene expression in rat tibia. J Endocrinol 192:131–140PubMed
120.
Zurück zum Zitat Poole KE, van Bezooijen RL, Loveridge N, Hamersma H, Papapoulos SE, Lowik CW, Reeve J (2005) Sclerostin is a delayed secreted product of osteocytes that inhibits bone formation. FASEB J 19:1842–1844PubMed Poole KE, van Bezooijen RL, Loveridge N, Hamersma H, Papapoulos SE, Lowik CW, Reeve J (2005) Sclerostin is a delayed secreted product of osteocytes that inhibits bone formation. FASEB J 19:1842–1844PubMed
121.
Zurück zum Zitat Ota K, Quint P, Ruan M, Pederson L, Westendorf JJ, Khosla S, Oursler MJ (2013) Sclerostin is expressed in osteoclasts from aged mice and reduces osteoclast-mediated stimulation of mineralization. J Cell Biochem 114:1901–1907PubMed Ota K, Quint P, Ruan M, Pederson L, Westendorf JJ, Khosla S, Oursler MJ (2013) Sclerostin is expressed in osteoclasts from aged mice and reduces osteoclast-mediated stimulation of mineralization. J Cell Biochem 114:1901–1907PubMed
122.
Zurück zum Zitat Roudier M, Li X, Niu QT, Pacheco E, Pretorius JK, Graham K, Yoon BR, Gong J, Warmington K, Ke HZ, Black RA, Hulme J, Babij P (2013) Sclerostin is expressed in articular cartilage but loss or inhibition does not affect cartilage remodeling during aging or following mechanical injury. Arthritis Rheum 65:721–731PubMed Roudier M, Li X, Niu QT, Pacheco E, Pretorius JK, Graham K, Yoon BR, Gong J, Warmington K, Ke HZ, Black RA, Hulme J, Babij P (2013) Sclerostin is expressed in articular cartilage but loss or inhibition does not affect cartilage remodeling during aging or following mechanical injury. Arthritis Rheum 65:721–731PubMed
123.
Zurück zum Zitat Li X, Zhang Y, Kang H, Liu W, Liu P, Zhang J, Harris SE, Wu D (2005) Sclerostin binds to LRP5/6 and antagonizes canonical Wnt signaling. J Biol Chem 280:19883–19887PubMed Li X, Zhang Y, Kang H, Liu W, Liu P, Zhang J, Harris SE, Wu D (2005) Sclerostin binds to LRP5/6 and antagonizes canonical Wnt signaling. J Biol Chem 280:19883–19887PubMed
124.
Zurück zum Zitat Leupin O, Piters E, Halleux C, Hu S, Kramer I, Morvan F, Bouwmeester T, Schirle M, Bueno-Lozano M, Fuentes FJ, Itin PH, Boudin E, de Freitas F, Jennes K, Brannetti B, Charara N, Ebersbach H, Geisse S, Lu CX, Bauer A, Van Hul W, Kneissel M (2011) Bone overgrowth-associated mutations in the LRP4 gene impair sclerostin facilitator function. J Biol Chem 286:19489–19500PubMed Leupin O, Piters E, Halleux C, Hu S, Kramer I, Morvan F, Bouwmeester T, Schirle M, Bueno-Lozano M, Fuentes FJ, Itin PH, Boudin E, de Freitas F, Jennes K, Brannetti B, Charara N, Ebersbach H, Geisse S, Lu CX, Bauer A, Van Hul W, Kneissel M (2011) Bone overgrowth-associated mutations in the LRP4 gene impair sclerostin facilitator function. J Biol Chem 286:19489–19500PubMed
125.
Zurück zum Zitat Li J, Sarosi I, Cattley RC, Pretorius J, Asuncion F, Grisanti M, Morony S, Adamu S, Geng Z, Qiu W, Kostenuik P, Lacey DL, Simonet WS, Bolon B, Qian X, Shalhoub V, Ominsky MS, Zhu Ke H, Li X, Richards WG (2006) Dkk1-mediated inhibition of Wnt signaling in bone results in osteopenia. Bone 39:754–766PubMed Li J, Sarosi I, Cattley RC, Pretorius J, Asuncion F, Grisanti M, Morony S, Adamu S, Geng Z, Qiu W, Kostenuik P, Lacey DL, Simonet WS, Bolon B, Qian X, Shalhoub V, Ominsky MS, Zhu Ke H, Li X, Richards WG (2006) Dkk1-mediated inhibition of Wnt signaling in bone results in osteopenia. Bone 39:754–766PubMed
126.
Zurück zum Zitat Balemans W, Piters E, Cleiren E, Ai M, Van Wesenbeeck L, Warman ML, Van Hul W (2008) The binding between sclerostin and LRP5 is altered by DKK1 and by high-bone mass LRP5 mutations. Calcif Tissue Int 82:445–453PubMed Balemans W, Piters E, Cleiren E, Ai M, Van Wesenbeeck L, Warman ML, Van Hul W (2008) The binding between sclerostin and LRP5 is altered by DKK1 and by high-bone mass LRP5 mutations. Calcif Tissue Int 82:445–453PubMed
127.
Zurück zum Zitat Robling AG, Bellido T, Turner CH (2006) Mechanical stimulation in vivo reduces osteocyte expression of sclerostin. J Musculoskelet Neuronal Interact 6:354PubMed Robling AG, Bellido T, Turner CH (2006) Mechanical stimulation in vivo reduces osteocyte expression of sclerostin. J Musculoskelet Neuronal Interact 6:354PubMed
128.
Zurück zum Zitat Robling AG, Niziolek PJ, Baldridge LA, Condon KW, Allen MR, Alam I, Mantila SM, Gluhak-Heinrich J, Bellido TM, Harris SE, Turner CH (2008) Mechanical stimulation of bone in vivo reduces osteocyte expression of Sost/sclerostin. J Biol Chem 283:5866–5875PubMed Robling AG, Niziolek PJ, Baldridge LA, Condon KW, Allen MR, Alam I, Mantila SM, Gluhak-Heinrich J, Bellido TM, Harris SE, Turner CH (2008) Mechanical stimulation of bone in vivo reduces osteocyte expression of Sost/sclerostin. J Biol Chem 283:5866–5875PubMed
129.
Zurück zum Zitat Gaudio A, Pennisi P, Bratengeier C, Torrisi V, Lindner B, Mangiafico RA, Pulvirenti I, Hawa G, Tringali G, Fiore CE (2010) Increased sclerostin serum levels associated with bone formation and resorption markers in patients with immobilization-induced bone loss. J Clin Endocrinol Metab 95:2248–2253PubMed Gaudio A, Pennisi P, Bratengeier C, Torrisi V, Lindner B, Mangiafico RA, Pulvirenti I, Hawa G, Tringali G, Fiore CE (2010) Increased sclerostin serum levels associated with bone formation and resorption markers in patients with immobilization-induced bone loss. J Clin Endocrinol Metab 95:2248–2253PubMed
130.
Zurück zum Zitat Moriishi T, Fukuyama R, Ito M, Miyazaki T, Maeno T, Kawai Y, Komori H, Komori T (2012) Osteocyte network: a negative regulatory system for bone mass augmented by the induction of Rankl in osteoblasts and Sost in osteocytes at unloading. PLoS One 7:e40143PubMedCentralPubMed Moriishi T, Fukuyama R, Ito M, Miyazaki T, Maeno T, Kawai Y, Komori H, Komori T (2012) Osteocyte network: a negative regulatory system for bone mass augmented by the induction of Rankl in osteoblasts and Sost in osteocytes at unloading. PLoS One 7:e40143PubMedCentralPubMed
131.
Zurück zum Zitat Moustafa A, Sugiyama T, Prasad J, Zaman G, Gross TS, Lanyon LE, Price JS (2012) Mechanical loading–related changes in osteocyte sclerostin expression in mice are more closely associated with the subsequent osteogenic response than the peak strains engendered. Osteoporos Int 23:1225–1234PubMedCentralPubMed Moustafa A, Sugiyama T, Prasad J, Zaman G, Gross TS, Lanyon LE, Price JS (2012) Mechanical loading–related changes in osteocyte sclerostin expression in mice are more closely associated with the subsequent osteogenic response than the peak strains engendered. Osteoporos Int 23:1225–1234PubMedCentralPubMed
132.
Zurück zum Zitat Li X, Ominsky MS, Warmington KS, Morony S, Gong J, Cao J, Gao Y, Shalhoub V, Tipton B, Haldankar R, Chen Q, Winters A, Boone T, Geng Z, Niu QT, Ke HZ, Kostenuik PJ, Simonet WS, Lacey DL, Paszty C (2009) Sclerostin antibody treatment increases bone formation, bone mass, and bone strength in a rat model of postmenopausal osteoporosis. J Bone Miner Res 24:578–588PubMed Li X, Ominsky MS, Warmington KS, Morony S, Gong J, Cao J, Gao Y, Shalhoub V, Tipton B, Haldankar R, Chen Q, Winters A, Boone T, Geng Z, Niu QT, Ke HZ, Kostenuik PJ, Simonet WS, Lacey DL, Paszty C (2009) Sclerostin antibody treatment increases bone formation, bone mass, and bone strength in a rat model of postmenopausal osteoporosis. J Bone Miner Res 24:578–588PubMed
133.
Zurück zum Zitat Ominsky MS, Vlasseros F, Jolette J, Smith SY, Stouch B, Doellgast G, Gong J, Gao Y, Cao J, Graham K, Tipton B, Cai J, Deshpande R, Zhou L, Hale MD, Lightwood DJ, Henry AJ, Popplewell AG, Moore AR, Robinson MK, Lacey DL, Simonet WS, Paszty C (2010) Two doses of sclerostin antibody in cynomolgus monkeys increases bone formation, bone mineral density, and bone strength. J Bone Miner Res 25:948–959PubMed Ominsky MS, Vlasseros F, Jolette J, Smith SY, Stouch B, Doellgast G, Gong J, Gao Y, Cao J, Graham K, Tipton B, Cai J, Deshpande R, Zhou L, Hale MD, Lightwood DJ, Henry AJ, Popplewell AG, Moore AR, Robinson MK, Lacey DL, Simonet WS, Paszty C (2010) Two doses of sclerostin antibody in cynomolgus monkeys increases bone formation, bone mineral density, and bone strength. J Bone Miner Res 25:948–959PubMed
134.
Zurück zum Zitat Padhi D, Jang G, Stouch B, Fang L, Posvar E (2011) Single-dose, placebo-controlled, randomized study of AMG 785, a sclerostin monoclonal antibody. J Bone Miner Res 26:19–26PubMed Padhi D, Jang G, Stouch B, Fang L, Posvar E (2011) Single-dose, placebo-controlled, randomized study of AMG 785, a sclerostin monoclonal antibody. J Bone Miner Res 26:19–26PubMed
135.
Zurück zum Zitat Shen L, Xie X, Su Y, Luo C, Zhang C, Zeng B (2011) Parathyroid hormone versus bisphosphonate treatment on bone mineral density in osteoporosis therapy: a meta-analysis of randomized controlled trials. PLoS One 6:e26267PubMedCentralPubMed Shen L, Xie X, Su Y, Luo C, Zhang C, Zeng B (2011) Parathyroid hormone versus bisphosphonate treatment on bone mineral density in osteoporosis therapy: a meta-analysis of randomized controlled trials. PLoS One 6:e26267PubMedCentralPubMed
136.
Zurück zum Zitat Hattner R, Epker BN, Frost HM (1965) Suggested sequential mode of control of changes in cell behaviour in adult bone remodelling. Nature 206:489–490PubMed Hattner R, Epker BN, Frost HM (1965) Suggested sequential mode of control of changes in cell behaviour in adult bone remodelling. Nature 206:489–490PubMed
137.
Zurück zum Zitat Frost HM (1967) An introduction to biomechanics. Charles C. Thomas, Springfield Frost HM (1967) An introduction to biomechanics. Charles C. Thomas, Springfield
138.
Zurück zum Zitat Hatori M, Klatte KJ, Teixeira CC, Shapiro IM (1995) End labeling studies of fragmented DNA in the avian growth plate: evidence of apoptosis in terminally differentiated chondrocytes. J Bone Miner Res 10:1960–1968PubMed Hatori M, Klatte KJ, Teixeira CC, Shapiro IM (1995) End labeling studies of fragmented DNA in the avian growth plate: evidence of apoptosis in terminally differentiated chondrocytes. J Bone Miner Res 10:1960–1968PubMed
139.
Zurück zum Zitat Noble BS, Stevens H, Loveridge N, Reeve J (1997) Identification of apoptotic changes in osteocytes in normal and pathological human bone. Bone 20:273–282PubMed Noble BS, Stevens H, Loveridge N, Reeve J (1997) Identification of apoptotic changes in osteocytes in normal and pathological human bone. Bone 20:273–282PubMed
140.
Zurück zum Zitat Verborgt O, Gibson GJ, Schaffler MB (2000) Loss of osteocyte integrity in association with microdamage and bone remodeling after fatigue in vivo. J Bone Miner Res 15:60–67PubMed Verborgt O, Gibson GJ, Schaffler MB (2000) Loss of osteocyte integrity in association with microdamage and bone remodeling after fatigue in vivo. J Bone Miner Res 15:60–67PubMed
141.
Zurück zum Zitat Elmardi AS, Katchburian MV, Katchburian E (1990) Electron microscopy of developing calvaria reveals images that suggest that osteoclasts engulf and destroy osteocytes during bone resorption. Calcif Tissue Int 46:239–245PubMed Elmardi AS, Katchburian MV, Katchburian E (1990) Electron microscopy of developing calvaria reveals images that suggest that osteoclasts engulf and destroy osteocytes during bone resorption. Calcif Tissue Int 46:239–245PubMed
142.
Zurück zum Zitat Cerri PS, Boabaid F, Katchburian E (2003) Combined TUNEL and TRAP methods suggest that apoptotic bone cells are inside vacuoles of alveolar bone osteoclasts in young rats. J Periodontal Res 38:223–226PubMed Cerri PS, Boabaid F, Katchburian E (2003) Combined TUNEL and TRAP methods suggest that apoptotic bone cells are inside vacuoles of alveolar bone osteoclasts in young rats. J Periodontal Res 38:223–226PubMed
143.
Zurück zum Zitat Torrance AG, Mosley JR, Suswillo RF, Lanyon LE (1994) Noninvasive loading of the rat ulna in vivo induces a strain-related modeling response uncomplicated by trauma or periostal pressure. Calcif Tissue Int 54:241–247PubMed Torrance AG, Mosley JR, Suswillo RF, Lanyon LE (1994) Noninvasive loading of the rat ulna in vivo induces a strain-related modeling response uncomplicated by trauma or periostal pressure. Calcif Tissue Int 54:241–247PubMed
144.
Zurück zum Zitat Bentolila V, Boyce TM, Fyhrie DP, Drumb R, Skerry TM, Schaffler MB (1998) Intracortical remodeling in adult rat long bones after fatigue loading. Bone 23:275–281PubMed Bentolila V, Boyce TM, Fyhrie DP, Drumb R, Skerry TM, Schaffler MB (1998) Intracortical remodeling in adult rat long bones after fatigue loading. Bone 23:275–281PubMed
145.
Zurück zum Zitat Cardoso L, Herman BC, Verborgt O, Laudier D, Majeska RJ, Schaffler MB (2009) Osteocyte apoptosis controls activation of intracortical resorption in response to bone fatigue. J Bone Miner Res 24:597–605PubMed Cardoso L, Herman BC, Verborgt O, Laudier D, Majeska RJ, Schaffler MB (2009) Osteocyte apoptosis controls activation of intracortical resorption in response to bone fatigue. J Bone Miner Res 24:597–605PubMed
146.
Zurück zum Zitat Emerton KB, Hu B, Woo AA, Sinofsky A, Hernandez C, Majeska RJ, Jepsen KJ, Schaffler MB (2010) Osteocyte apoptosis and control of bone resorption following ovariectomy in mice. Bone 46:577–583PubMedCentralPubMed Emerton KB, Hu B, Woo AA, Sinofsky A, Hernandez C, Majeska RJ, Jepsen KJ, Schaffler MB (2010) Osteocyte apoptosis and control of bone resorption following ovariectomy in mice. Bone 46:577–583PubMedCentralPubMed
147.
Zurück zum Zitat Cabahug PCLD, Kennedy O, Majeska RJ, Tuthill A, Judex S, Schaffler MB (2013) Inhibition of osteocyte apoptosis prevents trabecular bone loss after unloading of mouse long bone. Orthopaedic Research Society, San Antonio Cabahug PCLD, Kennedy O, Majeska RJ, Tuthill A, Judex S, Schaffler MB (2013) Inhibition of osteocyte apoptosis prevents trabecular bone loss after unloading of mouse long bone. Orthopaedic Research Society, San Antonio
148.
Zurück zum Zitat Tatsumi S, Ishii K, Amizuka N, Li M, Kobayashi T, Kohno K, Ito M, Takeshita S, Ikeda K (2007) Targeted ablation of osteocytes induces osteoporosis with defective mechanotransduction. Cell Metab 5:464–475PubMed Tatsumi S, Ishii K, Amizuka N, Li M, Kobayashi T, Kohno K, Ito M, Takeshita S, Ikeda K (2007) Targeted ablation of osteocytes induces osteoporosis with defective mechanotransduction. Cell Metab 5:464–475PubMed
149.
Zurück zum Zitat Martin RB (2000) Toward a unifying theory of bone remodeling. Bone 26:1–6PubMed Martin RB (2000) Toward a unifying theory of bone remodeling. Bone 26:1–6PubMed
150.
Zurück zum Zitat Gu G, Mulari M, Peng Z, Hentunen TA, Vaananen HK (2005) Death of osteocytes turns off the inhibition of osteoclasts and triggers local bone resorption. Biochem Biophys Res Commun 335:1095–1101PubMed Gu G, Mulari M, Peng Z, Hentunen TA, Vaananen HK (2005) Death of osteocytes turns off the inhibition of osteoclasts and triggers local bone resorption. Biochem Biophys Res Commun 335:1095–1101PubMed
151.
Zurück zum Zitat Heino TJ, Hentunen TA, Vaananen HK (2002) Osteocytes inhibit osteoclastic bone resorption through transforming growth factor-beta: enhancement by estrogen. J Cell Biochem 85:185–197PubMed Heino TJ, Hentunen TA, Vaananen HK (2002) Osteocytes inhibit osteoclastic bone resorption through transforming growth factor-beta: enhancement by estrogen. J Cell Biochem 85:185–197PubMed
152.
Zurück zum Zitat Maejima-Ikeda A, Aoki M, Tsuritani K, Kamioka K, Hiura K, Miyoshi T, Hara H, Takano-Yamamoto T, Kumegawa M (1997) Chick osteocyte-derived protein inhibits osteoclastic bone resorption. Biochem J 322(Pt 1):245–250PubMed Maejima-Ikeda A, Aoki M, Tsuritani K, Kamioka K, Hiura K, Miyoshi T, Hara H, Takano-Yamamoto T, Kumegawa M (1997) Chick osteocyte-derived protein inhibits osteoclastic bone resorption. Biochem J 322(Pt 1):245–250PubMed
153.
Zurück zum Zitat Collin-Osdoby P, Rothe L, Bekker S, Anderson F, Huang Y, Osdoby P (2002) Basic fibroblast growth factor stimulates osteoclast recruitment, development, and bone pit resorption in association with angiogenesis in vivo on the chick chorioallantoic membrane and activates isolated avian osteoclast resorption in vitro. J Bone Miner Res 17:1859–1871PubMed Collin-Osdoby P, Rothe L, Bekker S, Anderson F, Huang Y, Osdoby P (2002) Basic fibroblast growth factor stimulates osteoclast recruitment, development, and bone pit resorption in association with angiogenesis in vivo on the chick chorioallantoic membrane and activates isolated avian osteoclast resorption in vitro. J Bone Miner Res 17:1859–1871PubMed
154.
Zurück zum Zitat Webber DM, Menton D, Osdoby P (1990) An in vivo model system for the study of avian osteoclast recruitment and activity. Bone Miner 11:127–140PubMed Webber DM, Menton D, Osdoby P (1990) An in vivo model system for the study of avian osteoclast recruitment and activity. Bone Miner 11:127–140PubMed
155.
Zurück zum Zitat Parfitt AM (1998) Osteoclast precursors as leukocytes: importance of the area code. Bone 23:491–494PubMed Parfitt AM (1998) Osteoclast precursors as leukocytes: importance of the area code. Bone 23:491–494PubMed
156.
Zurück zum Zitat Kindle L, Rothe L, Kriss M, Osdoby P, Collin-Osdoby P (2006) Human microvascular endothelial cell activation by IL-1 and TNF-alpha stimulates the adhesion and transendothelial migration of circulating human CD14+ monocytes that develop with RANKL into functional osteoclasts. J Bone Miner Res 21:193–206PubMed Kindle L, Rothe L, Kriss M, Osdoby P, Collin-Osdoby P (2006) Human microvascular endothelial cell activation by IL-1 and TNF-alpha stimulates the adhesion and transendothelial migration of circulating human CD14+ monocytes that develop with RANKL into functional osteoclasts. J Bone Miner Res 21:193–206PubMed
157.
Zurück zum Zitat McGowan NW, Walker EJ, Macpherson H, Ralston SH, Helfrich MH (2001) Cytokine-activated endothelium recruits osteoclast precursors. Endocrinology 142:1678–1681PubMed McGowan NW, Walker EJ, Macpherson H, Ralston SH, Helfrich MH (2001) Cytokine-activated endothelium recruits osteoclast precursors. Endocrinology 142:1678–1681PubMed
158.
Zurück zum Zitat Formigli L, Fiorelli G, Benvenuti S, Tani A, Orlandini GE, Brandi ML, Zecchi-Orlandini S (1997) Insulin-like growth factor-I stimulates in vitro migration of preosteoclasts across bone endothelial cells. Cell Tissue Res 288:101–110PubMed Formigli L, Fiorelli G, Benvenuti S, Tani A, Orlandini GE, Brandi ML, Zecchi-Orlandini S (1997) Insulin-like growth factor-I stimulates in vitro migration of preosteoclasts across bone endothelial cells. Cell Tissue Res 288:101–110PubMed
159.
Zurück zum Zitat Al-Dujaili SA, Lau E, Al-Dujaili H, Tsang K, Guenther A, You L (2011) Apoptotic osteocytes regulate osteoclast precursor recruitment and differentiation in vitro. J Cell Biochem 112:2412–2423PubMed Al-Dujaili SA, Lau E, Al-Dujaili H, Tsang K, Guenther A, You L (2011) Apoptotic osteocytes regulate osteoclast precursor recruitment and differentiation in vitro. J Cell Biochem 112:2412–2423PubMed
160.
Zurück zum Zitat Cheung WY, Liu C, Tonelli-Zasarsky RM, Simmons CA, You L (2011) Osteocyte apoptosis is mechanically regulated and induces angiogenesis in vitro. J Orthop Res 29:523–530PubMed Cheung WY, Liu C, Tonelli-Zasarsky RM, Simmons CA, You L (2011) Osteocyte apoptosis is mechanically regulated and induces angiogenesis in vitro. J Orthop Res 29:523–530PubMed
161.
Zurück zum Zitat Shimizu H, Sakamoto M, Sakamoto S (1990) Bone resorption by isolated osteoclasts in living versus devitalized bone: differences in mode and extent and the effects of human recombinant tissue inhibitor of metalloproteinases. J Bone Miner Res 5:411–418PubMed Shimizu H, Sakamoto M, Sakamoto S (1990) Bone resorption by isolated osteoclasts in living versus devitalized bone: differences in mode and extent and the effects of human recombinant tissue inhibitor of metalloproteinases. J Bone Miner Res 5:411–418PubMed
162.
Zurück zum Zitat Ito H, Koefoed M, Tiyapatanaputi P, Gromov K, Goater JJ, Carmouche J, Zhang X, Rubery PT, Rabinowitz J, Samulski RJ, Nakamura T, Soballe K, O’Keefe RJ, Boyce BF, Schwarz EM (2005) Remodeling of cortical bone allografts mediated by adherent rAAV-RANKL and VEGF gene therapy. Nat Med 11:291–297PubMedCentralPubMed Ito H, Koefoed M, Tiyapatanaputi P, Gromov K, Goater JJ, Carmouche J, Zhang X, Rubery PT, Rabinowitz J, Samulski RJ, Nakamura T, Soballe K, O’Keefe RJ, Boyce BF, Schwarz EM (2005) Remodeling of cortical bone allografts mediated by adherent rAAV-RANKL and VEGF gene therapy. Nat Med 11:291–297PubMedCentralPubMed
163.
Zurück zum Zitat Nakashima T, Hayashi M, Fukunaga T, Kurata K, Oh-Hora M, Feng JQ, Bonewald LF, Kodama T, Wutz A, Wagner EF, Penninger JM, Takayanagi H (2011) Evidence for osteocyte regulation of bone homeostasis through RANKL expression. Nat Med 17:1231–1234PubMed Nakashima T, Hayashi M, Fukunaga T, Kurata K, Oh-Hora M, Feng JQ, Bonewald LF, Kodama T, Wutz A, Wagner EF, Penninger JM, Takayanagi H (2011) Evidence for osteocyte regulation of bone homeostasis through RANKL expression. Nat Med 17:1231–1234PubMed
164.
Zurück zum Zitat Xiong J, Onal M, Jilka RL, Weinstein RS, Manolagas SC, O’Brien CA (2011) Matrix-embedded cells control osteoclast formation. Nat Med 17:1235–1241PubMedCentralPubMed Xiong J, Onal M, Jilka RL, Weinstein RS, Manolagas SC, O’Brien CA (2011) Matrix-embedded cells control osteoclast formation. Nat Med 17:1235–1241PubMedCentralPubMed
165.
Zurück zum Zitat Zhao S, Zhang YK, Harris S, Ahuja SS, Bonewald LF (2002) MLO-Y4 osteocyte-like cells support osteoclast formation and activation. J Bone Miner Res 17:2068–2079PubMed Zhao S, Zhang YK, Harris S, Ahuja SS, Bonewald LF (2002) MLO-Y4 osteocyte-like cells support osteoclast formation and activation. J Bone Miner Res 17:2068–2079PubMed
166.
Zurück zum Zitat Kennedy OD, Herman BC, Laudier DM, Majeska RJ, Sun HB, Schaffler MB (2012) Activation of resorption in fatigue-loaded bone involves both apoptosis and active pro-osteoclastogenic signaling by distinct osteocyte populations. Bone 50:1115–1122PubMedCentralPubMed Kennedy OD, Herman BC, Laudier DM, Majeska RJ, Sun HB, Schaffler MB (2012) Activation of resorption in fatigue-loaded bone involves both apoptosis and active pro-osteoclastogenic signaling by distinct osteocyte populations. Bone 50:1115–1122PubMedCentralPubMed
167.
Zurück zum Zitat Kartsogiannis V, Zhou H, Horwood NJ, Thomas RJ, Hards DK, Quinn JM, Niforas P, Ng KW, Martin TJ, Gillespie MT (1999) Localization of RANKL (receptor activator of NF kappa B ligand) mRNA and protein in skeletal and extraskeletal tissues. Bone 25:525–534PubMed Kartsogiannis V, Zhou H, Horwood NJ, Thomas RJ, Hards DK, Quinn JM, Niforas P, Ng KW, Martin TJ, Gillespie MT (1999) Localization of RANKL (receptor activator of NF kappa B ligand) mRNA and protein in skeletal and extraskeletal tissues. Bone 25:525–534PubMed
168.
Zurück zum Zitat Verborgt O, Tatton NA, Majeska RJ, Schaffler MB (2002) Spatial distribution of Bax and Bcl-2 in osteocytes after bone fatigue: complementary roles in bone remodeling regulation? J Bone Miner Res 17:907–914PubMed Verborgt O, Tatton NA, Majeska RJ, Schaffler MB (2002) Spatial distribution of Bax and Bcl-2 in osteocytes after bone fatigue: complementary roles in bone remodeling regulation? J Bone Miner Res 17:907–914PubMed
169.
Zurück zum Zitat Saraste A, Pulkki K, Kallajoki M, Henriksen K, Parvinen M, Voipio-Pulkki LM (1997) Apoptosis in human acute myocardial infarction. Circulation 95:320–323PubMed Saraste A, Pulkki K, Kallajoki M, Henriksen K, Parvinen M, Voipio-Pulkki LM (1997) Apoptosis in human acute myocardial infarction. Circulation 95:320–323PubMed
170.
Zurück zum Zitat Lipton P (1999) Ischemic cell death in brain neurons. Physiol Rev 79:1431–1568PubMed Lipton P (1999) Ischemic cell death in brain neurons. Physiol Rev 79:1431–1568PubMed
171.
Zurück zum Zitat Kogianni G, Mann V, Noble BS (2008) Apoptotic bodies convey activity capable of initiating osteoclastogenesis and localized bone destruction. J Bone Miner Res 23:915–927PubMed Kogianni G, Mann V, Noble BS (2008) Apoptotic bodies convey activity capable of initiating osteoclastogenesis and localized bone destruction. J Bone Miner Res 23:915–927PubMed
172.
Zurück zum Zitat Bidwell JP, Yang J, Robling AG (2008) Is HMGB1 an osteocyte alarmin? J Cell Biochem 103:1671–1680PubMed Bidwell JP, Yang J, Robling AG (2008) Is HMGB1 an osteocyte alarmin? J Cell Biochem 103:1671–1680PubMed
173.
Zurück zum Zitat Borde C, Barnay-Verdier S, Gaillard C, Hocini H, Marechal V, Gozlan J (2011) Stepwise release of biologically active HMGB1 during HSV-2 infection. PLoS One 6:e16145PubMedCentralPubMed Borde C, Barnay-Verdier S, Gaillard C, Hocini H, Marechal V, Gozlan J (2011) Stepwise release of biologically active HMGB1 during HSV-2 infection. PLoS One 6:e16145PubMedCentralPubMed
174.
Zurück zum Zitat Chekeni FB, Elliott MR, Sandilos JK, Walk SF, Kinchen JM, Lazarowski ER, Armstrong AJ, Penuela S, Laird DW, Salvesen GS, Isakson BE, Bayliss DA, Ravichandran KS (2010) Pannexin 1 channels mediate “find-me” signal release and membrane permeability during apoptosis. Nature 467:863–867PubMedCentralPubMed Chekeni FB, Elliott MR, Sandilos JK, Walk SF, Kinchen JM, Lazarowski ER, Armstrong AJ, Penuela S, Laird DW, Salvesen GS, Isakson BE, Bayliss DA, Ravichandran KS (2010) Pannexin 1 channels mediate “find-me” signal release and membrane permeability during apoptosis. Nature 467:863–867PubMedCentralPubMed
175.
Zurück zum Zitat Gude DR, Alvarez SE, Paugh SW, Mitra P, Yu J, Griffiths R, Barbour SE, Milstien S, Spiegel S (2008) Apoptosis induces expression of sphingosine kinase 1 to release sphingosine-1-phosphate as a “come-and-get-me” signal. FASEB J 22:2629–2638PubMed Gude DR, Alvarez SE, Paugh SW, Mitra P, Yu J, Griffiths R, Barbour SE, Milstien S, Spiegel S (2008) Apoptosis induces expression of sphingosine kinase 1 to release sphingosine-1-phosphate as a “come-and-get-me” signal. FASEB J 22:2629–2638PubMed
176.
Zurück zum Zitat Peter C, Waibel M, Keppeler H, Lehmann R, Xu G, Halama A, Adamski J, Schulze-Osthoff K, Wesselborg S, Lauber K (2012) Release of lysophospholipid “find-me” signals during apoptosis requires the ATP-binding cassette transporter A1. Autoimmunity 45:568–573PubMed Peter C, Waibel M, Keppeler H, Lehmann R, Xu G, Halama A, Adamski J, Schulze-Osthoff K, Wesselborg S, Lauber K (2012) Release of lysophospholipid “find-me” signals during apoptosis requires the ATP-binding cassette transporter A1. Autoimmunity 45:568–573PubMed
177.
Zurück zum Zitat Truman LA, Ford CA, Pasikowska M, Pound JD, Wilkinson SJ, Dumitriu IE, Melville L, Melrose LA, Ogden CA, Nibbs R, Graham G, Combadiere C, Gregory CD (2008) CX3CL1/fractalkine is released from apoptotic lymphocytes to stimulate macrophage chemotaxis. Blood 112:5026–5036PubMed Truman LA, Ford CA, Pasikowska M, Pound JD, Wilkinson SJ, Dumitriu IE, Melville L, Melrose LA, Ogden CA, Nibbs R, Graham G, Combadiere C, Gregory CD (2008) CX3CL1/fractalkine is released from apoptotic lymphocytes to stimulate macrophage chemotaxis. Blood 112:5026–5036PubMed
178.
Zurück zum Zitat Mullender MG, van der Meer DD, Huiskes R, Lips P (1996) Osteocyte density changes in aging and osteoporosis. Bone 18:109–113PubMed Mullender MG, van der Meer DD, Huiskes R, Lips P (1996) Osteocyte density changes in aging and osteoporosis. Bone 18:109–113PubMed
179.
Zurück zum Zitat Belanger LF (1969) Osteocytic osteolysis. Calcif Tissue Res 4:1–12PubMed Belanger LF (1969) Osteocytic osteolysis. Calcif Tissue Res 4:1–12PubMed
180.
Zurück zum Zitat Recklinghausen F (1910) Untersuchungen über Rachitis und Osteomalazie. G. Fischer, Jena Recklinghausen F (1910) Untersuchungen über Rachitis und Osteomalazie. G. Fischer, Jena
181.
Zurück zum Zitat Baud CA (1968) Submicroscopic structure and functional aspects of the osteocyte. Clin Orthop Relat Res 56:227–236PubMed Baud CA (1968) Submicroscopic structure and functional aspects of the osteocyte. Clin Orthop Relat Res 56:227–236PubMed
182.
Zurück zum Zitat Teti A, Zallone A (2009) Do osteocytes contribute to bone mineral homeostasis? Osteocytic osteolysis revisited. Bone 44:11–16PubMed Teti A, Zallone A (2009) Do osteocytes contribute to bone mineral homeostasis? Osteocytic osteolysis revisited. Bone 44:11–16PubMed
183.
Zurück zum Zitat Qing H, Ardeshirpour L, Pajevic PD, Dusevich V, Jahn K, Kato S, Wysolmerski J, Bonewald LF (2012) Demonstration of osteocytic perilacunar/canalicular remodeling in mice during lactation. J Bone Miner Res 27:1018–1029PubMedCentralPubMed Qing H, Ardeshirpour L, Pajevic PD, Dusevich V, Jahn K, Kato S, Wysolmerski J, Bonewald LF (2012) Demonstration of osteocytic perilacunar/canalicular remodeling in mice during lactation. J Bone Miner Res 27:1018–1029PubMedCentralPubMed
184.
Zurück zum Zitat Sharma D, Ciani C, Marin PA, Levy JD, Doty SB, Fritton SP (2012) Alterations in the osteocyte lacunar–canalicular microenvironment due to estrogen deficiency. Bone 51:488–497PubMedCentralPubMed Sharma D, Ciani C, Marin PA, Levy JD, Doty SB, Fritton SP (2012) Alterations in the osteocyte lacunar–canalicular microenvironment due to estrogen deficiency. Bone 51:488–497PubMedCentralPubMed
185.
Zurück zum Zitat McKee MD, Farach-Carson MC, Butler WT, Hauschka PV, Nanci A (1993) Ultrastructural immunolocalization of noncollagenous (osteopontin and osteocalcin) and plasma (albumin and alpha 2HS-glycoprotein) proteins in rat bone. J Bone Miner Res 8:485–496PubMed McKee MD, Farach-Carson MC, Butler WT, Hauschka PV, Nanci A (1993) Ultrastructural immunolocalization of noncollagenous (osteopontin and osteocalcin) and plasma (albumin and alpha 2HS-glycoprotein) proteins in rat bone. J Bone Miner Res 8:485–496PubMed
186.
Zurück zum Zitat Barros NM, Hoac B, Neves RL, Addison WN, Assis DM, Murshed M, Carmona AK, McKee MD (2013) Proteolytic processing of osteopontin by PHEX and accumulation of osteopontin fragments in Hyp mouse bone, the murine model of X-linked hypophosphatemia. J Bone Miner Res 28:688–699PubMed Barros NM, Hoac B, Neves RL, Addison WN, Assis DM, Murshed M, Carmona AK, McKee MD (2013) Proteolytic processing of osteopontin by PHEX and accumulation of osteopontin fragments in Hyp mouse bone, the murine model of X-linked hypophosphatemia. J Bone Miner Res 28:688–699PubMed
187.
Zurück zum Zitat Thompson DL, Sabbagh Y, Tenenhouse HS, Roche PC, Drezner MK, Salisbury JL, Grande JP, Poeschla EM, Kumar R (2002) Ontogeny of Phex/PHEX protein expression in mouse embryo and subcellular localization in osteoblasts. J Bone Miner Res 17:311–320PubMed Thompson DL, Sabbagh Y, Tenenhouse HS, Roche PC, Drezner MK, Salisbury JL, Grande JP, Poeschla EM, Kumar R (2002) Ontogeny of Phex/PHEX protein expression in mouse embryo and subcellular localization in osteoblasts. J Bone Miner Res 17:311–320PubMed
188.
Zurück zum Zitat Bergwitz C, Juppner H (2012) FGF23 and syndromes of abnormal renal phosphate handling. In: Kuro-o M (ed) Endocrine FGFs and klothos. Advances in experimental medicine and biology 728. Landes Bioscience, Austin, pp 41–64 Bergwitz C, Juppner H (2012) FGF23 and syndromes of abnormal renal phosphate handling. In: Kuro-o M (ed) Endocrine FGFs and klothos. Advances in experimental medicine and biology 728. Landes Bioscience, Austin, pp 41–64
189.
Zurück zum Zitat Liu S, Zhou J, Tang W, Menard R, Feng JQ, Quarles LD (2008) Pathogenic role of Fgf23 in Dmp1-null mice. Am J Physiol Endocrinol Metab 295:E254–E261PubMed Liu S, Zhou J, Tang W, Menard R, Feng JQ, Quarles LD (2008) Pathogenic role of Fgf23 in Dmp1-null mice. Am J Physiol Endocrinol Metab 295:E254–E261PubMed
190.
Zurück zum Zitat Liu S, Zhou J, Tang W, Jiang X, Rowe DW, Quarles LD (2006) Pathogenic role of Fgf23 in Hyp mice. Am J Physiol Endocrinol Metab 291:E38–E49PubMed Liu S, Zhou J, Tang W, Jiang X, Rowe DW, Quarles LD (2006) Pathogenic role of Fgf23 in Hyp mice. Am J Physiol Endocrinol Metab 291:E38–E49PubMed
191.
Zurück zum Zitat Martin A, Liu S, David V, Li H, Karydis A, Feng JQ, Quarles LD (2011) Bone proteins PHEX and DMP1 regulate fibroblastic growth factor Fgf23 expression in osteocytes through a common pathway involving FGF receptor (FGFR) signaling. FASEB J 25:2551–2562PubMed Martin A, Liu S, David V, Li H, Karydis A, Feng JQ, Quarles LD (2011) Bone proteins PHEX and DMP1 regulate fibroblastic growth factor Fgf23 expression in osteocytes through a common pathway involving FGF receptor (FGFR) signaling. FASEB J 25:2551–2562PubMed
192.
Zurück zum Zitat Martin A, David V, Laurence JS, Schwarz PM, Lafer EM, Hedge AM, Rowe PS (2008) Degradation of MEPE, DMP1, and release of SIBLING ASARM-peptides (minhibins): ASARM-peptide(s) are directly responsible for defective mineralization in HYP. Endocrinology 149:1757–1772PubMed Martin A, David V, Laurence JS, Schwarz PM, Lafer EM, Hedge AM, Rowe PS (2008) Degradation of MEPE, DMP1, and release of SIBLING ASARM-peptides (minhibins): ASARM-peptide(s) are directly responsible for defective mineralization in HYP. Endocrinology 149:1757–1772PubMed
193.
Zurück zum Zitat David V, Martin A, Hedge AM, Drezner MK, Rowe PS (2011) ASARM peptides: PHEX-dependent and -independent regulation of serum phosphate. Am J Physiol Renal Physiol 300:F783–F791PubMed David V, Martin A, Hedge AM, Drezner MK, Rowe PS (2011) ASARM peptides: PHEX-dependent and -independent regulation of serum phosphate. Am J Physiol Renal Physiol 300:F783–F791PubMed
194.
Zurück zum Zitat Guo R, Rowe PS, Liu S, Simpson LG, Xiao ZS, Quarles LD (2002) Inhibition of MEPE cleavage by Phex. Biochem Biophys Res Commun 297:38–45PubMed Guo R, Rowe PS, Liu S, Simpson LG, Xiao ZS, Quarles LD (2002) Inhibition of MEPE cleavage by Phex. Biochem Biophys Res Commun 297:38–45PubMed
195.
Zurück zum Zitat Addison WN, Nakano Y, Loisel T, Crine P, McKee MD (2008) MEPE-ASARM peptides control extracellular matrix mineralization by binding to hydroxyapatite: an inhibition regulated by PHEX cleavage of ASARM. J Bone Miner Res 23:1638–1649PubMed Addison WN, Nakano Y, Loisel T, Crine P, McKee MD (2008) MEPE-ASARM peptides control extracellular matrix mineralization by binding to hydroxyapatite: an inhibition regulated by PHEX cleavage of ASARM. J Bone Miner Res 23:1638–1649PubMed
Metadaten
Titel
Osteocytes: Master Orchestrators of Bone
verfasst von
Mitchell B. Schaffler
Wing-Yee Cheung
Robert Majeska
Oran Kennedy
Publikationsdatum
01.01.2014
Verlag
Springer US
Erschienen in
Calcified Tissue International / Ausgabe 1/2014
Print ISSN: 0171-967X
Elektronische ISSN: 1432-0827
DOI
https://doi.org/10.1007/s00223-013-9790-y

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