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Volumn 242, Issue 8, 2013, Pages 909-922

Angiogenesis and intramembranous osteogenesis

Author keywords

Craniofacial development; Intramembranous ossification; Vascular invasion

Indexed keywords

ANGIOGENESIS; BONE DEVELOPMENT; DISTRACTION OSTEOGENESIS; ENCHONDRAL OSSIFICATION; ENDOTHELIUM CELL; HUMAN; INTRAMEMBRANOUS OSSIFICATION; INTRAMEMBRANOUS OSTEOGENESIS; MESENCHYME; NONHUMAN; OSSIFICATION; OSTEOBLAST; PRIORITY JOURNAL; REGULATORY MECHANISM; REVIEW; STEM CELL; VASCULARIZATION;

EID: 84880583883     PISSN: 10588388     EISSN: 10970177     Source Type: Journal    
DOI: 10.1002/dvdy.23992     Document Type: Review
Times cited : (207)

References (102)
  • 1
    • 34848818790 scopus 로고    scopus 로고
    • Regulation of skeletogenic differentiation in cranial dermal bone
    • Abzhanov A, Rodda SJ, McMahon AP, Tabin CJ. 2007. Regulation of skeletogenic differentiation in cranial dermal bone. Development 134:3133-3144.
    • (2007) Development , vol.134 , pp. 3133-3144
    • Abzhanov, A.1    Rodda, S.J.2    McMahon, A.P.3    Tabin, C.J.4
  • 2
    • 39149143035 scopus 로고    scopus 로고
    • Molecular mechanisms controlling bone formation during fracture healing and distraction osteogenesis
    • Al-Aql ZS, Alagl AS, Graves DT, Gerstenfeld LC, Einhorn TA. 2008. Molecular mechanisms controlling bone formation during fracture healing and distraction osteogenesis. J Dent Res 87:107-118.
    • (2008) J Dent Res , vol.87 , pp. 107-118
    • Al-Aql, Z.S.1    Alagl, A.S.2    Graves, D.T.3    Gerstenfeld, L.C.4    Einhorn, T.A.5
  • 5
    • 0028300296 scopus 로고
    • Temporal and spatial increases in blood flow during distraction osteogenesis
    • Aronson J. 1994. Temporal and spatial increases in blood flow during distraction osteogenesis. Clin Orthopaed Relat Res 301:124-131.
    • (1994) Clin Orthopaed Relat Res , vol.301 , pp. 124-131
    • Aronson, J.1
  • 6
    • 84867141910 scopus 로고    scopus 로고
    • Distinct spatiotemporal roles of hedgehog signalling during chick and mouse cranial base and axial skeleton development
    • Balczerski B, Zakaria S, Tucker A, Borycki A, Koyama E, Pacifici M, Francis-West P. 2012. Distinct spatiotemporal roles of hedgehog signalling during chick and mouse cranial base and axial skeleton development. Dev Biol 371:203-214.
    • (2012) Dev Biol , vol.371 , pp. 203-214
    • Balczerski, B.1    Zakaria, S.2    Tucker, A.3    Borycki, A.4    Koyama, E.5    Pacifici, M.6    Francis-West, P.7
  • 9
    • 0023183956 scopus 로고
    • Morphological observations concerning the pattern of mineralization of the normal and the rachitic chick growth cartilage
    • Boyde A, Shapiro IM. 1987. Morphological observations concerning the pattern of mineralization of the normal and the rachitic chick growth cartilage. Anat Embryol 175:457-466.
    • (1987) Anat Embryol , vol.175 , pp. 457-466
    • Boyde, A.1    Shapiro, I.M.2
  • 12
    • 0020532630 scopus 로고
    • The development of embryonic bone and cartilage in tissue culture
    • Caplan AI, Syftestad G, Osdoby P. 1983. The development of embryonic bone and cartilage in tissue culture. Clin Orthopaed Relat Res 174:243-263.
    • (1983) Clin Orthopaed Relat Res , vol.174 , pp. 243-263
    • Caplan, A.I.1    Syftestad, G.2    Osdoby, P.3
  • 13
    • 0034264874 scopus 로고    scopus 로고
    • Vascular proliferation and blood supply during distraction osteogenesis: a scanning electron microscopic observation
    • Choi IH, Ahn JH, Chung CY, Cho TJ. 2000. Vascular proliferation and blood supply during distraction osteogenesis: a scanning electron microscopic observation. J Orthopaed Res 18:698-705.
    • (2000) J Orthopaed Res , vol.18 , pp. 698-705
    • Choi, I.H.1    Ahn, J.H.2    Chung, C.Y.3    Cho, T.J.4
  • 14
    • 0036689045 scopus 로고    scopus 로고
    • Angiogenesis and mineralization during distraction osteogenesis
    • Choi IH, Chung CY, Cho TJ, Yoo WJ. 2002. Angiogenesis and mineralization during distraction osteogenesis. J Kor Med Sci 17:435-447.
    • (2002) J Kor Med Sci , vol.17 , pp. 435-447
    • Choi, I.H.1    Chung, C.Y.2    Cho, T.J.3    Yoo, W.J.4
  • 15
    • 0142154635 scopus 로고    scopus 로고
    • Oxygen-dependent and -independent regulation of HIF-1alpha
    • Chun Y, Kim M, Park J. 2002. Oxygen-dependent and -independent regulation of HIF-1alpha. J Kor Med Sci 17:581-588.
    • (2002) J Kor Med Sci , vol.17 , pp. 581-588
    • Chun, Y.1    Kim, M.2    Park, J.3
  • 16
    • 0028362417 scopus 로고
    • Role of vascular endothelial cells in bone biology
    • Collin-Osdoby P. 1994. Role of vascular endothelial cells in bone biology. J Cell Biochem 55:304-309.
    • (1994) J Cell Biochem , vol.55 , pp. 304-309
    • Collin-Osdoby, P.1
  • 17
    • 58649117944 scopus 로고    scopus 로고
    • Skeletal cell fate decisions within periosteum and bone marrow during bone regeneration
    • Colnot C. 2009. Skeletal cell fate decisions within periosteum and bone marrow during bone regeneration. J Bone Miner Res 24:274-282.
    • (2009) J Bone Miner Res , vol.24 , pp. 274-282
    • Colnot, C.1
  • 18
    • 1842766265 scopus 로고    scopus 로고
    • Distinguishing the contributions of the perichondrium, cartilage, and vascular endothelium to skeletal development
    • Colnot C, Lu C, Hu D, Helms JA. 2004. Distinguishing the contributions of the perichondrium, cartilage, and vascular endothelium to skeletal development. Dev Biol 269:55-69.
    • (2004) Dev Biol , vol.269 , pp. 55-69
    • Colnot, C.1    Lu, C.2    Hu, D.3    Helms, J.A.4
  • 19
    • 16844370419 scopus 로고    scopus 로고
    • Indian hedgehog synchronizes skeletal angiogenesis and perichondrial maturation with cartilage development
    • Colnot C, De la Fuente L, Huang S, Hu D, Lu C, St-Jacques B, Helms JA. 2005. Indian hedgehog synchronizes skeletal angiogenesis and perichondrial maturation with cartilage development. Development 132:1057-1067.
    • (2005) Development , vol.132 , pp. 1057-1067
    • Colnot, C.1    De la Fuente, L.2    Huang, S.3    Hu, D.4    Lu, C.5    St-Jacques, B.6    Helms, J.A.7
  • 20
    • 84867893537 scopus 로고    scopus 로고
    • Current insights on the regenerative potential of the periosteum: Molecular, cellular, and endogenous engineering approaches
    • Colnot C, Zhang X, Tate MLK. 2012. Current insights on the regenerative potential of the periosteum: Molecular, cellular, and endogenous engineering approaches. J Orthopaed Res 30:1869-1878.
    • (2012) J Orthopaed Res , vol.30 , pp. 1869-1878
    • Colnot, C.1    Zhang, X.2    Tate, M.L.K.3
  • 21
    • 35348855682 scopus 로고    scopus 로고
    • VEGF: an essential mediator of both angiogenesis and endochondral ossification
    • Dai J, Rabie A. 2007. VEGF: an essential mediator of both angiogenesis and endochondral ossification. J Dent Res 86:937-950.
    • (2007) J Dent Res , vol.86 , pp. 937-950
    • Dai, J.1    Rabie, A.2
  • 22
    • 0025141508 scopus 로고
    • Bone regenerate formation in cortical bone during distraction lengthening: an experimental study
    • Delloye C, Delefortrie G, Coutelier L, Vincent A. 1990. Bone regenerate formation in cortical bone during distraction lengthening: an experimental study. Clin Orthopaed Relat Res 250:34-42.
    • (1990) Clin Orthopaed Relat Res , vol.250 , pp. 34-42
    • Delloye, C.1    Delefortrie, G.2    Coutelier, L.3    Vincent, A.4
  • 24
  • 25
    • 84867331141 scopus 로고    scopus 로고
    • Bone-vasculature interactions in the mandible: Is bone an angiogenic tissue?
    • Dietrich EM, Antoniades K. 2012. Bone-vasculature interactions in the mandible: Is bone an angiogenic tissue? Medical Hypotheses 79:582-584.
    • (2012) Medical Hypotheses , vol.79 , pp. 582-584
    • Dietrich, E.M.1    Antoniades, K.2
  • 26
    • 0021941872 scopus 로고
    • The anatomy, ultrastructure and fluid dynamics of the developing vasculature of the embryonic chick wing bud
    • Drushel RF, Pechak DG, Caplan AI. 1985. The anatomy, ultrastructure and fluid dynamics of the developing vasculature of the embryonic chick wing bud. Cell Differ 16:13-28.
    • (1985) Cell Differ , vol.16 , pp. 13-28
    • Drushel, R.F.1    Pechak, D.G.2    Caplan, A.I.3
  • 27
    • 4143052325 scopus 로고    scopus 로고
    • Conserved molecular program regulating cranial and appendicular skeletogenesis
    • Eames BF, Helms JA. 2004. Conserved molecular program regulating cranial and appendicular skeletogenesis. Dev Dyn 231:4-13.
    • (2004) Dev Dyn , vol.231 , pp. 4-13
    • Eames, B.F.1    Helms, J.A.2
  • 34
    • 0022528970 scopus 로고
    • Localized vascular regression during limb morphogenesis in the chicken embryo. I. Spatial and temporal changes in the vascular pattern
    • Feinberg RN, Latker CH, Beebe DC. 1986. Localized vascular regression during limb morphogenesis in the chicken embryo. I. Spatial and temporal changes in the vascular pattern. Anat Rec 214:405-409.
    • (1986) Anat Rec , vol.214 , pp. 405-409
    • Feinberg, R.N.1    Latker, C.H.2    Beebe, D.C.3
  • 35
    • 0029793393 scopus 로고    scopus 로고
    • The human osteoclast precursor circulates in the monocyte fraction
    • Fujikawa Y, Quinn J, Sabokbar A, McGee J, Athanasou N. 1996. The human osteoclast precursor circulates in the monocyte fraction. Endocrinology 137:4058-4060.
    • (1996) Endocrinology , vol.137 , pp. 4058-4060
    • Fujikawa, Y.1    Quinn, J.2    Sabokbar, A.3    McGee, J.4    Athanasou, N.5
  • 36
    • 0033027858 scopus 로고    scopus 로고
    • VEGF couples hypertrophic cartilage remodeling, ossification and angiogenesis during endochondral bone formation
    • Gerber HP, Vu TH, Ryan AM, Kowalski J, Werb Z, Ferrara N. 1999. VEGF couples hypertrophic cartilage remodeling, ossification and angiogenesis during endochondral bone formation. Nature Med 5:623-628.
    • (1999) Nature Med , vol.5 , pp. 623-628
    • Gerber, H.P.1    Vu, T.H.2    Ryan, A.M.3    Kowalski, J.4    Werb, Z.5    Ferrara, N.6
  • 37
    • 69949089188 scopus 로고    scopus 로고
    • Cell-to-cell communication between osteogenic and endothelial lineages: implications for tissue engineering
    • Grellier M, Bordenave L, Amedee J. 2009. Cell-to-cell communication between osteogenic and endothelial lineages: implications for tissue engineering. Trends Biotechnol 27:562-571.
    • (2009) Trends Biotechnol , vol.27 , pp. 562-571
    • Grellier, M.1    Bordenave, L.2    Amedee, J.3
  • 40
    • 84880610277 scopus 로고    scopus 로고
    • Calcium
    • Principles of bone biology, 3rd ed. San Diego: Academic Press.
    • Heaney RP. 2008. Calcium. In: Principles of bone biology, Vol.2, 3rd ed. San Diego: Academic Press. p 1697-1710.
    • (2008) , vol.2 , pp. 1697-1710
    • Heaney, R.P.1
  • 41
    • 0025726307 scopus 로고
    • Rearrangement of the metaphyseal vasculature of the rat growth plate in rickets and rachitic reversal: a model of vascular arrest and angiogenesis renewed
    • Hunter WL, Arsenault AL, Hodsman AB. 1991. Rearrangement of the metaphyseal vasculature of the rat growth plate in rickets and rachitic reversal: a model of vascular arrest and angiogenesis renewed. Anat Rec 229:453-461.
    • (1991) Anat Rec , vol.229 , pp. 453-461
    • Hunter, W.L.1    Arsenault, A.L.2    Hodsman, A.B.3
  • 42
    • 0030833319 scopus 로고    scopus 로고
    • Fgfr2 and osteopontin domains in the developing skull vault are mutually exclusive and can be altered by locally applied FGF2
    • Iseki S, Wilkie A, Heath J, Ishimaru T, Eto K, Morriss-Kay G. 1997. Fgfr2 and osteopontin domains in the developing skull vault are mutually exclusive and can be altered by locally applied FGF2. Development 124:3375-3384.
    • (1997) Development , vol.124 , pp. 3375-3384
    • Iseki, S.1    Wilkie, A.2    Heath, J.3    Ishimaru, T.4    Eto, K.5    Morriss-Kay, G.6
  • 44
    • 84858293611 scopus 로고    scopus 로고
    • Vasculogenesis and the induction of skeletogenic condensations in the avian eye
    • Jourdeuil K, Franz-Odendaal TA. 2012. Vasculogenesis and the induction of skeletogenic condensations in the avian eye. Anat Rec 295:691-698.
    • (2012) Anat Rec , vol.295 , pp. 691-698
    • Jourdeuil, K.1    Franz-Odendaal, T.A.2
  • 45
    • 45549085001 scopus 로고    scopus 로고
    • Osteogenesis and angiogenesis: the potential for engineering bone
    • Kanczler J, Oreffo R. 2008. Osteogenesis and angiogenesis: the potential for engineering bone. Eur Cells Mater 15:100-114.
    • (2008) Eur Cells Mater , vol.15 , pp. 100-114
    • Kanczler, J.1    Oreffo, R.2
  • 46
    • 77952225465 scopus 로고    scopus 로고
    • Embryonic development of bone and regulation of intramembranous and endochondral bone formation
    • editors., 3rd ed. New York: Academic Press.
    • Karaplis AC. 2008. Embryonic development of bone and regulation of intramembranous and endochondral bone formation. In: Bilezikian JP, Raisz LG, Martin TJ, editors. Principles of bone biology, Vol.1, 3rd ed. New York: Academic Press. p 53-84.
    • (2008) Principles of bone biology , vol.1 , pp. 53-84
    • Karaplis, A.C.1    Bilezikian, J.P.2    Raisz, L.G.3    Martin, T.J.4
  • 50
    • 0038687536 scopus 로고    scopus 로고
    • Developmental regulation of the growth plate
    • Kronenberg HM. 2003. Developmental regulation of the growth plate. Nature 423:332-336.
    • (2003) Nature , vol.423 , pp. 332-336
    • Kronenberg, H.M.1
  • 51
    • 0000903351 scopus 로고
    • Vascularity of cartilage
    • New York: Academic Press.
    • Kuettner KE, Pauli BU, Hall BK. 1983. Vascularity of cartilage. In: Cartilage. Vol.1. New York: Academic Press. p 281-312.
    • (1983) Cartilage , vol.1 , pp. 281-312
    • Kuettner, K.E.1    Pauli, B.U.2    Hall, B.K.3
  • 52
    • 35748968230 scopus 로고    scopus 로고
    • Cell fate specification during calvarial bone and suture development
    • Lana-Elola E, Rice R, Grigoriadis AE, Rice DPC. 2007. Cell fate specification during calvarial bone and suture development. Dev Biol 311:335-346.
    • (2007) Dev Biol , vol.311 , pp. 335-346
    • Lana-Elola, E.1    Rice, R.2    Grigoriadis, A.E.3    Rice, D.P.C.4
  • 53
    • 3543145020 scopus 로고    scopus 로고
    • Bone morphogenetic protein-2 stimulates angiogenesis in developing tumors
    • Langenfield EM, Langenfield J. 2004. Bone morphogenetic protein-2 stimulates angiogenesis in developing tumors. Mol Cancer Res 2:141-149.
    • (2004) Mol Cancer Res , vol.2 , pp. 141-149
    • Langenfield, E.M.1    Langenfield, J.2
  • 55
    • 0026748311 scopus 로고
    • Chondroclasts and endothelial cells collaborate in the process of cartilage resorption
    • Lewinson D, Silbermann M. 1992. Chondroclasts and endothelial cells collaborate in the process of cartilage resorption. Anat Rec 233:504-514.
    • (1992) Anat Rec , vol.233 , pp. 504-514
    • Lewinson, D.1    Silbermann, M.2
  • 56
    • 0033555425 scopus 로고    scopus 로고
    • Msx2 gene dosage influences the number of proliferative osteogenic cells in growth centers of the developing murine skull: a possible mechanism for MSX2-mediated craniosynostosis in humans
    • Liu Y, Tang Z, Kundu RK, Wu L, Luo W, Zhu D, Sangiorgi F, Snead ML, Maxson Jr RE. 1999. Msx2 gene dosage influences the number of proliferative osteogenic cells in growth centers of the developing murine skull: a possible mechanism for MSX2-mediated craniosynostosis in humans. Dev Biol 205:206-274.
    • (1999) Dev Biol , vol.205 , pp. 206-274
    • Liu, Y.1    Tang, Z.2    Kundu, R.K.3    Wu, L.4    Luo, W.5    Zhu, D.6    Sangiorgi, F.7    Snead, M.L.8    Maxson Jr, R.E.9
  • 57
    • 33846214070 scopus 로고    scopus 로고
    • FGF18 is required for early chondrocyte proliferation, hypertrophy and vascular invasion of the growth plate
    • Liu Z, Lavine KJ, Hung IH, Ornitz DM. 2007. FGF18 is required for early chondrocyte proliferation, hypertrophy and vascular invasion of the growth plate. Dev Biol 302:80-91.
    • (2007) Dev Biol , vol.302 , pp. 80-91
    • Liu, Z.1    Lavine, K.J.2    Hung, I.H.3    Ornitz, D.M.4
  • 58
    • 35748954326 scopus 로고    scopus 로고
    • Endochondral ossification: how cartilage is converted into bone in the developing skeleton
    • Mackie E, Ahmed Y, Tatarczuch L, Chen KS, Mirams M. 2008. Endochondral ossification: how cartilage is converted into bone in the developing skeleton. Int J Biochem Cell Biol 40:46-62.
    • (2008) Int J Biochem Cell Biol , vol.40 , pp. 46-62
    • Mackie, E.1    Ahmed, Y.2    Tatarczuch, L.3    Chen, K.S.4    Mirams, M.5
  • 59
    • 77955569142 scopus 로고    scopus 로고
    • Osteoblast precursors, but not mature osteoblasts, move into developing and fractured bones along with invading blood vessels
    • Maes C, Kobayashi T, Selig MK, Torrekens S, Roth SI, Mackem S, Carmeliet G, Kronenberg HM. 2010. Osteoblast precursors, but not mature osteoblasts, move into developing and fractured bones along with invading blood vessels. Dev Cell 19:329-344.
    • (2010) Dev Cell , vol.19 , pp. 329-344
    • Maes, C.1    Kobayashi, T.2    Selig, M.K.3    Torrekens, S.4    Roth, S.I.5    Mackem, S.6    Carmeliet, G.7    Kronenberg, H.M.8
  • 61
    • 84861830833 scopus 로고    scopus 로고
    • Vascular tissues are a primary source of BMP2 expression during bone formation induced by distraction osteogenesis
    • Matsubara H, Hogan DE, Morgan EF, Mortolock DP, Einhorn TA, Gerstenfeld LC. 2012. Vascular tissues are a primary source of BMP2 expression during bone formation induced by distraction osteogenesis. Bone 51:168-180.
    • (2012) Bone , vol.51 , pp. 168-180
    • Matsubara, H.1    Hogan, D.E.2    Morgan, E.F.3    Mortolock, D.P.4    Einhorn, T.A.5    Gerstenfeld, L.C.6
  • 64
    • 77951911513 scopus 로고    scopus 로고
    • Localization of Thy-1-positive cells in the perichondrium during endochondral ossification
    • Nakamura H, Yukita A, Ninomiya T, Hosoya A, Hiraga T, Ozawa H. 2010. Localization of Thy-1-positive cells in the perichondrium during endochondral ossification. J Histochem Cytochem 58:455-462.
    • (2010) J Histochem Cytochem , vol.58 , pp. 455-462
    • Nakamura, H.1    Yukita, A.2    Ninomiya, T.3    Hosoya, A.4    Hiraga, T.5    Ozawa, H.6
  • 65
    • 28444476207 scopus 로고    scopus 로고
    • Relations and interactions between cranial mesoderm and neural crest populations
    • Noden DM, Trainor PA. 2005. Relations and interactions between cranial mesoderm and neural crest populations. J Anat 207:575-601.
    • (2005) J Anat , vol.207 , pp. 575-601
    • Noden, D.M.1    Trainor, P.A.2
  • 66
    • 33646013272 scopus 로고    scopus 로고
    • The extracellular matrix environment in suture morphogenesis and growth
    • Opperman LA, Rawlins JT. 2005. The extracellular matrix environment in suture morphogenesis and growth. Cells Tissues Organs 181:127-135.
    • (2005) Cells Tissues Organs , vol.181 , pp. 127-135
    • Opperman, L.A.1    Rawlins, J.T.2
  • 68
    • 0034166650 scopus 로고    scopus 로고
    • The mechanism of coupling: a role for the vasculature
    • Parfitt A. 2000. The mechanism of coupling: a role for the vasculature. Bone 26:319-323.
    • (2000) Bone , vol.26 , pp. 319-323
    • Parfitt, A.1
  • 69
    • 0034873321 scopus 로고    scopus 로고
    • The bone remodeling compartment: a circulatory function for bone lining cells
    • Parfitt A. 2001. The bone remodeling compartment: a circulatory function for bone lining cells. J Bone Miner Res 16:1583-1585.
    • (2001) J Bone Miner Res , vol.16 , pp. 1583-1585
    • Parfitt, A.1
  • 70
    • 78049283720 scopus 로고    scopus 로고
    • Regulation of hypoxia inducible factors (HIF) in hypoxia and normoxia during placental development
    • Patel J, Landers K, Mortimer R, Richard K. 2010. Regulation of hypoxia inducible factors (HIF) in hypoxia and normoxia during placental development. Placenta 31:951-957.
    • (2010) Placenta , vol.31 , pp. 951-957
    • Patel, J.1    Landers, K.2    Mortimer, R.3    Richard, K.4
  • 72
    • 79960631998 scopus 로고    scopus 로고
    • Circulating osteogenic cells: implications for injury, repair, and regeneration
    • Pignolo RJ, Kassem M. 2011. Circulating osteogenic cells: implications for injury, repair, and regeneration. J Bone Miner Res 26:1685-1693.
    • (2011) J Bone Miner Res , vol.26 , pp. 1685-1693
    • Pignolo, R.J.1    Kassem, M.2
  • 73
    • 0038037735 scopus 로고    scopus 로고
    • Regulation of angiogenesis by hypoxia: role of the HIF system
    • Pugh CW, Ratcliffe PJ. 2003. Regulation of angiogenesis by hypoxia: role of the HIF system. Nature medicine 9:677-684.
    • (2003) Nature medicine , vol.9 , pp. 677-684
    • Pugh, C.W.1    Ratcliffe, P.J.2
  • 74
    • 79957510410 scopus 로고    scopus 로고
    • A central role for hypoxic signaling in cartilage, bone, and hematopoiesis
    • Rankin EB, Giaccia AJ, Schipani E. 2011. A central role for hypoxic signaling in cartilage, bone, and hematopoiesis. Curr Osteoporosis Rep 9:46-52.
    • (2011) Curr Osteoporosis Rep , vol.9 , pp. 46-52
    • Rankin, E.B.1    Giaccia, A.J.2    Schipani, E.3
  • 76
    • 0141459231 scopus 로고    scopus 로고
    • Progression of calvarial bone development requires Foxc1 regulation of Msx2 and Alx4
    • Rice R, Rice DPC, Olsen BR, Thesleff I. 2003. Progression of calvarial bone development requires Foxc1 regulation of Msx2 and Alx4. Dev Biol 262:75-87.
    • (2003) Dev Biol , vol.262 , pp. 75-87
    • Rice, R.1    Rice, D.P.C.2    Olsen, B.R.3    Thesleff, I.4
  • 77
    • 84876693037 scopus 로고    scopus 로고
    • Hand in glove: brain and skull in development and morphogenesis
    • Richtsmeier JT, Flaherty K. 2013. Hand in glove: brain and skull in development and morphogenesis. Acta Neuropathol 125:469-489.
    • (2013) Acta Neuropathol , vol.125 , pp. 469-489
    • Richtsmeier, J.T.1    Flaherty, K.2
  • 83
    • 34247237795 scopus 로고    scopus 로고
    • Negative regulation by p70 S6 Kinase of FGF-2-stimulated VEGF release through stress-activated protein kinase/c-Jun N-terminal kinase in osteoblasts
    • Takai S, Tokuda H, Hanai Y, Harada A, Yasuda E, Matsushima-Nishiwaki R, Kato H, Ogura S, Ohta T, Kozawa O. 2007. Negative regulation by p70 S6 Kinase of FGF-2-stimulated VEGF release through stress-activated protein kinase/c-Jun N-terminal kinase in osteoblasts. J Bone Miner Res 22:337-346.
    • (2007) J Bone Miner Res , vol.22 , pp. 337-346
    • Takai, S.1    Tokuda, H.2    Hanai, Y.3    Harada, A.4    Yasuda, E.5    Matsushima-Nishiwaki, R.6    Kato, H.7    Ogura, S.8    Ohta, T.9    Kozawa, O.10
  • 84
    • 67650970081 scopus 로고    scopus 로고
    • Differential actions of VEGF-A isoforms on perichondrial angiogenesis during endochondral bone formation
    • Takimoto A, Nishizaki Y, Hiraki Y, Shukunami C. 2009. Differential actions of VEGF-A isoforms on perichondrial angiogenesis during endochondral bone formation. Dev Biol 332:196-211.
    • (2009) Dev Biol , vol.332 , pp. 196-211
    • Takimoto, A.1    Nishizaki, Y.2    Hiraki, Y.3    Shukunami, C.4
  • 87
    • 0024433358 scopus 로고
    • Intramembranous osteogenesis and angiogenesis in the chick embryo
    • Thompson TJ, Owens PD, Wilson DJ. 1989. Intramembranous osteogenesis and angiogenesis in the chick embryo. J Anat 166:55-65.
    • (1989) J Anat , vol.166 , pp. 55-65
    • Thompson, T.J.1    Owens, P.D.2    Wilson, D.J.3
  • 88
    • 65549099259 scopus 로고    scopus 로고
    • EphA4 as an effector of Twist1 in the guidance of osteogenic precursor cells during calvarial bone growth and in craniosynostosis
    • Ting M-C, Wu NL, Roybal PG, Sun J, Liu L, Yen Y, Maxson RE. 2009. EphA4 as an effector of Twist1 in the guidance of osteogenic precursor cells during calvarial bone growth and in craniosynostosis. Development 136:855-864.
    • (2009) Development , vol.136 , pp. 855-864
    • Ting, M.-C.1    Wu, N.L.2    Roybal, P.G.3    Sun, J.4    Liu, L.5    Yen, Y.6    Maxson, R.E.7
  • 90
    • 84882516309 scopus 로고    scopus 로고
    • Vascular endothelial growth factor and osteogenic-angiogenic coupling
    • editors. Principles of bone biology, 3rd ed. Academic Press.
    • Towler DA. 2008. Vascular endothelial growth factor and osteogenic-angiogenic coupling. In: Bilezikian JP, Raisz LG, Martin TJ, editors. Principles of bone biology, Vol.2, 3rd ed. Academic Press. p 1133-1144.
    • (2008) , vol.2 , pp. 1133-1144
    • Towler, D.A.1    Bilezikian, J.P.2    Raisz, L.G.3    Martin, T.J.4
  • 91
    • 0000123919 scopus 로고
    • The role of the vessels in osteogenesis
    • Trueta J. 1963. The role of the vessels in osteogenesis. J Bone Joint Surg 45:402-418.
    • (1963) J Bone Joint Surg , vol.45 , pp. 402-418
    • Trueta, J.1
  • 93
    • 0141527496 scopus 로고    scopus 로고
    • Endothelin-1 promotes osteoprogenitor proliferation and differentiation in fetal rat calvarial cell cultures
    • Von Schroeder H, Veillette C, Payandeh J, Qureshi A, Heersche J. 2003. Endothelin-1 promotes osteoprogenitor proliferation and differentiation in fetal rat calvarial cell cultures. Bone 33:673-684.
    • (2003) Bone , vol.33 , pp. 673-684
    • Von Schroeder, H.1    Veillette, C.2    Payandeh, J.3    Qureshi, A.4    Heersche, J.5
  • 95
    • 58249105081 scopus 로고    scopus 로고
    • Stress fracture healing: fatigue loading of the rat ulna induces upregulation in expression of osteogenic and angiogenic genes that mimic the intramembranous portion of fracture repair
    • Wohl GR, Towler DA, Silva MJ. 2009. Stress fracture healing: fatigue loading of the rat ulna induces upregulation in expression of osteogenic and angiogenic genes that mimic the intramembranous portion of fracture repair. Bone 44:320-330.
    • (2009) Bone , vol.44 , pp. 320-330
    • Wohl, G.R.1    Towler, D.A.2    Silva, M.J.3
  • 96
    • 0034455051 scopus 로고    scopus 로고
    • Regulation of osteoblast differentiation mediated by bone morphogenetic proteins, hedgehogs, and Cbfa1
    • Yamaguchi A, Komori T, Suda T. 2000. Regulation of osteoblast differentiation mediated by bone morphogenetic proteins, hedgehogs, and Cbfa1. Endocrine Rev 21:393-411.
    • (2000) Endocrine Rev , vol.21 , pp. 393-411
    • Yamaguchi, A.1    Komori, T.2    Suda, T.3
  • 97
    • 0034755005 scopus 로고    scopus 로고
    • Vascular regression is required for mesenchymal condensation and chondrogenesis in the developing limb
    • Yin M, Pacifici M. 2001. Vascular regression is required for mesenchymal condensation and chondrogenesis in the developing limb. Dev Dyn 222:522-533.
    • (2001) Dev Dyn , vol.222 , pp. 522-533
    • Yin, M.1    Pacifici, M.2
  • 99
    • 0035746042 scopus 로고    scopus 로고
    • Extrinsic tension results in FGF-2 release, membrane permeability change, and intracellular Ca++ increase in immature cranial sutures
    • Yu JC, Lucas JH, Fryberg K, Borke JL. 2001. Extrinsic tension results in FGF-2 release, membrane permeability change, and intracellular Ca++ increase in immature cranial sutures. J Craniofac Surg 12:391-398.
    • (2001) J Craniofac Surg , vol.12 , pp. 391-398
    • Yu, J.C.1    Lucas, J.H.2    Fryberg, K.3    Borke, J.L.4
  • 100
    • 15544385929 scopus 로고    scopus 로고
    • Multiple roles of vascular endothelial growth factor (VEGF) in skeletal development, growth, and repair
    • Zelzer E, Olsen BR. 2004. Multiple roles of vascular endothelial growth factor (VEGF) in skeletal development, growth, and repair. Curr Topics in Dev Biol 65:169-187.
    • (2004) Curr Topics in Dev Biol , vol.65 , pp. 169-187
    • Zelzer, E.1    Olsen, B.R.2
  • 102
    • 0025148701 scopus 로고
    • Regulation of alkaline phosphatase and alpha2 (I) procollagen synthesis during early intramembranous bone formation in the rat mandible
    • Zernik J, Twarog K, Upholt WB. 1990. Regulation of alkaline phosphatase and alpha2 (I) procollagen synthesis during early intramembranous bone formation in the rat mandible. Differentiation 44:207-215.
    • (1990) Differentiation , vol.44 , pp. 207-215
    • Zernik, J.1    Twarog, K.2    Upholt, W.B.3


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