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      KCI등재 SCOPUS

      Transcriptional Network Controlling Endochondral Ossification

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      https://www.riss.kr/link?id=A103571885

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      다국어 초록 (Multilingual Abstract)

      Endochondral ossification is the fundamental process of skeletal development in vertebrates. Chondrocytes undergo sequential steps of differentiation, including mesenchymal condensation, proliferation, hypertrophy, and mineralization. These steps, which are required for the morphological and functional changes in differentiating chondrocytes, are strictly regulated by a complex transcriptional network. Biochemical and mice genetic studies identified chondrogenic transcription factors critical for endochondral ossification. The transcription factor sex-determining region Y (SRY)-box 9 (Sox9) is essential for early chondrogenesis, and impaired Sox9 function causes severe chondrodysplasia in humans and mice. In addition, recent genome-wide chromatin immunoprecipitation-sequencing studies revealed the precise regulatory mechanism of Sox9 during early chondrogenesis. Runt-related transcription factor 2 promotes chondrocyte hypertrophy and terminal differentiation. Interestingly, endoplasmic reticulum (ER) stress-related transcription factors have recently emerged as novel regulators of chondrocyte differentiation. Here we review the transcriptional mechanisms that regulate endochondral ossification, with a focus on Sox9.
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      Endochondral ossification is the fundamental process of skeletal development in vertebrates. Chondrocytes undergo sequential steps of differentiation, including mesenchymal condensation, proliferation, hypertrophy, and mineralization. These steps, whi...

      Endochondral ossification is the fundamental process of skeletal development in vertebrates. Chondrocytes undergo sequential steps of differentiation, including mesenchymal condensation, proliferation, hypertrophy, and mineralization. These steps, which are required for the morphological and functional changes in differentiating chondrocytes, are strictly regulated by a complex transcriptional network. Biochemical and mice genetic studies identified chondrogenic transcription factors critical for endochondral ossification. The transcription factor sex-determining region Y (SRY)-box 9 (Sox9) is essential for early chondrogenesis, and impaired Sox9 function causes severe chondrodysplasia in humans and mice. In addition, recent genome-wide chromatin immunoprecipitation-sequencing studies revealed the precise regulatory mechanism of Sox9 during early chondrogenesis. Runt-related transcription factor 2 promotes chondrocyte hypertrophy and terminal differentiation. Interestingly, endoplasmic reticulum (ER) stress-related transcription factors have recently emerged as novel regulators of chondrocyte differentiation. Here we review the transcriptional mechanisms that regulate endochondral ossification, with a focus on Sox9.

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      참고문헌 (Reference)

      1 Nakamura Y, "Wwp2 is essential for palatogenesis mediated by the interaction between Sox9 and mediator subunit 25" 2 : 251-, 2011

      2 Farnum CE, "Volume increase in growth plate chondrocytes during hypertrophy: the contribution of organic osmolytes" 30 : 574-581, 2002

      3 Hattori T, "Transcriptional regulation of chondrogenesis by coactivator Tip60 via chromatin association with Sox9 and Sox5" 36 : 3011-3024, 2008

      4 Kawakami Y, "Transcriptional coactivator PGC-1alpha regulates chondrogenesis via association with Sox9" 102 : 2414-2419, 2005

      5 Tsuda M, "Transcriptional co-activators CREB-binding protein and p300 regulate chondrocyte-specific gene expression via association with Sox9" 278 : 27224-27229, 2003

      6 Zhou G, "Three high mobility group-like sequences within a 48-base pair enhancer of the Col2a1 gene are required for cartilage-specific expression in vivo" 273 : 14989-14997, 1998

      7 Liu CF, "The transcription factors SOX9 and SOX5/ SOX6 cooperate genome-wide through super-enhancers to drive chondrogenesis" 43 : 8183-8203, 2015

      8 Takigawa Y, "The transcription factor Znf219 regulates chondrocyte differentiation by assembling a transcription factory with Sox9" 123 : 3780-3788, 2010

      9 Akiyama H, "The transcription factor Sox9 has essential roles in successive steps of the chondrocyte differentiation pathway and is required for expression of Sox5 and Sox6" 16 : 2813-2828, 2002

      10 Verzi MP, "The transcription factor MEF2C is required for craniofacial development" 12 : 645-652, 2007

      1 Nakamura Y, "Wwp2 is essential for palatogenesis mediated by the interaction between Sox9 and mediator subunit 25" 2 : 251-, 2011

      2 Farnum CE, "Volume increase in growth plate chondrocytes during hypertrophy: the contribution of organic osmolytes" 30 : 574-581, 2002

      3 Hattori T, "Transcriptional regulation of chondrogenesis by coactivator Tip60 via chromatin association with Sox9 and Sox5" 36 : 3011-3024, 2008

      4 Kawakami Y, "Transcriptional coactivator PGC-1alpha regulates chondrogenesis via association with Sox9" 102 : 2414-2419, 2005

      5 Tsuda M, "Transcriptional co-activators CREB-binding protein and p300 regulate chondrocyte-specific gene expression via association with Sox9" 278 : 27224-27229, 2003

      6 Zhou G, "Three high mobility group-like sequences within a 48-base pair enhancer of the Col2a1 gene are required for cartilage-specific expression in vivo" 273 : 14989-14997, 1998

      7 Liu CF, "The transcription factors SOX9 and SOX5/ SOX6 cooperate genome-wide through super-enhancers to drive chondrogenesis" 43 : 8183-8203, 2015

      8 Takigawa Y, "The transcription factor Znf219 regulates chondrocyte differentiation by assembling a transcription factory with Sox9" 123 : 3780-3788, 2010

      9 Akiyama H, "The transcription factor Sox9 has essential roles in successive steps of the chondrocyte differentiation pathway and is required for expression of Sox5 and Sox6" 16 : 2813-2828, 2002

      10 Verzi MP, "The transcription factor MEF2C is required for craniofacial development" 12 : 645-652, 2007

      11 Yoshida M, "The transcription factor Foxc1 is necessary for Ihh-Gli2-regulated endochondral ossification" 6 : 6653-, 2015

      12 Wright E, "The Sry-related gene Sox9 is expressed during chondrogenesis in mouse embryos" 9 : 15-20, 1995

      13 Mori-Akiyama Y, "Sox9 is required for determination of the chondrogenic cell lineage in the cranial neural crest" 100 : 9360-9365, 2003

      14 Bi W, "Sox9 is required for cartilage formation" 22 : 85-89, 1999

      15 Dy P, "Sox9 directs hypertrophic maturation and blocks osteoblast differentiation of growth plate chondrocytes" 22 : 597-609, 2012

      16 Smits P, "Sox5 and Sox6 are needed to develop and maintain source, columnar, and hypertrophic chondrocytes in the cartilage growth plate" 164 : 747-758, 2004

      17 Lefebvre V, "SOX9 is a potent activator of the chondrocyte-specific enhancer of the pro alpha1(II) collagen gene" 17 : 2336-2346, 1997

      18 Zhou R, "SOX9 interacts with a component of the human thyroid hormone receptor-associated protein complex" 30 : 3245-3252, 2002

      19 Bell DM, "SOX9 directly regulates the type-II collagen gene" 16 : 174-178, 1997

      20 Ng LJ, "SOX9 binds DNA, activates transcription, and coexpresses with type II collagen during chondrogenesis in the mouse" 183 : 108-121, 1997

      21 Li F, "Runx2 contributes to murine Col10a1 gene regulation through direct interaction with its cis-enhancer" 26 : 2899-2910, 2011

      22 Yoshida CA, "Runx2 and Runx3 are essential for chondrocyte maturation, and Runx2 regulates limb growth through induction of Indian hedgehog" 18 : 952-963, 2004

      23 Saito A, "Regulation of endoplasmic reticulum stress response by a BBF2H7-mediated Sec23a pathway is essential for chondrog" 11 : 1197-1204, 2009

      24 Hata K, "Paraspeckle protein p54nrb links Sox9-mediated transcription with RNA processing during chondrogenesis in mice" 118 : 3098-3108, 2008

      25 Ducy P, "Osf2/Cbfa1: a transcriptional activator of osteoblast differentiation" 89 : 747-754, 1997

      26 Cooper KL, "Multiple phases of chondrocyte enlargement underlie differences in skeletal proportions" 495 : 375-378, 2013

      27 Akiyama H, "Misexpression of Sox9 in mouse limb bud mesenchyme induces polydactyly and rescues hypodactyly mice" 26 : 224-233, 2007

      28 Inada M, "Maturational disturbance of chondrocytes in Cbfa1-deficient mice" 214 : 279-290, 1999

      29 Arnold MA, "MEF2C transcription factor controls chondrocyte hypertrophy and bone development" 12 : 377-389, 2007

      30 Akiyama H, "Interactions between Sox9 and beta-catenin control chondrocyte differentiation" 18 : 1072-1087, 2004

      31 Liu Y, "Identification of an enhancer sequence within the first intron required for cartilage-specific transcription of the alpha2(XI) collagen gene" 275 : 12712-12718, 2000

      32 Bi W, "Haploinsufficiency of Sox9 results in defective cartilage primordia and premature skeletal mineralization" 98 : 6698-6703, 2001

      33 Bandyopadhyay A, "Genetic analysis of the roles of BMP2, BMP4, and BMP7 in limb patterning and skeletogenesis" 2 : e216-, 2006

      34 Ionescu A, "FoxA family members are crucial regulators of the hypertrophic chondrocyte differentiation program" 22 : 927-939, 2012

      35 Yu K, "FGF signaling regulates mesenchymal differentiation and skeletal patterning along the limb bud proximodistal axis" 135 : 483-491, 2008

      36 Capdevila J, "Endogenous and ectopic expression of noggin suggests a conserved mechanism for regulation of BMP function during limb and somite patterning" 197 : 205-217, 1998

      37 Ohba S, "Distinct transcriptional programs underlie Sox9 regulation of the mammalian chondrocyte" 12 : 229-243, 2015

      38 Long F, "Development of the endochondral skeleton" 5 : a008334-, 2013

      39 Takeda S, "Continuous expression of Cbfa1 in nonhypertrophic chondrocytes uncovers its ability to induce hypertrophic chondrocyte differentiation and partially rescues Cbfa1-deficient mice" 15 : 467-481, 2001

      40 Yu K, "Conditional inactivation of FGF receptor 2 reveals an essential role for FGF signaling in the regulation of osteoblast function and bone growth" 130 : 3063-3074, 2003

      41 Foster JW, "Campomelic dysplasia and autosomal sex reversal caused by mutations in an SRY-related gene" 372 : 525-530, 1994

      42 Hirata M, "C/EBPbeta and RUNX2 cooperate to degrade cartilage with MMP-13 as the target and HIF-2alpha as the inducer in chondrocytes" 21 : 1111-1123, 2012

      43 Wagner T, "Autosomal sex reversal and campomelic dysplasia are caused by mutations in and around the SRY-related gene SOX9" 79 : 1111-1120, 1994

      44 Wang W, "Atf4 regulates chondrocyte proliferation and differentiation during endochondral ossification by activating Ihh transcription" 136 : 4143-4153, 2009

      45 Hata K, "Arid5b facilitates chondrogenesis by recruiting the histone demethylase Phf2 to Sox9-regulated genes" 4 : 2850-, 2013

      46 Amano K, "Arid5a cooperates with Sox9 to stimulate chondrocyte-specific transcription" 22 : 1300-1311, 2011

      47 Lefebvre V, "An 18-base-pair sequence in the mouse proalpha1(II) collagen gene is sufficient for expression in cartilage and binds nuclear proteins that are selectively expressed in chondrocytes" 16 : 4512-4523, 1996

      48 Ornitz DM, "Achondroplasia: Development, pathogenesis, and therapy" 246 : 291-309, 2017

      49 He X, "AP-1 family members act with Sox9 to promote chondrocyte hypertrophy" 143 : 3012-3023, 2016

      50 Lefebvre V, "A new long form of Sox5 (L-Sox5), Sox6 and Sox9 are coexpressed in chondrogenesis and cooperatively activate the type II collagen gene" 17 : 5718-5733, 1998

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2027 평가예정 재인증평가 신청대상 (재인증)
      2021-01-01 평가 등재학술지 유지 (재인증) KCI등재
      2018-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2015-01-01 평가 등재학술지 선정 (계속평가) KCI등재
      2013-01-01 평가 등재후보학술지 유지 (기타) KCI등재후보
      2012-11-14 학술지명변경 외국어명 : Korean Journal of Bone Metabolism -> Journal of Bone Metabolism KCI등재후보
      2011-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.62 0.62 0.57
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.5 0.44 1.091 0.16
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