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本文引用的文献

1
Osteopontin deficiency increases bone fragility but preserves bone mass.骨桥蛋白缺乏症会增加骨脆性,但能保留骨量。
Bone. 2010 Jun;46(6):1564-73. doi: 10.1016/j.bone.2010.02.014. Epub 2010 Feb 18.
2
Pharmacologic inhibition of the TGF-beta type I receptor kinase has anabolic and anti-catabolic effects on bone.转化生长因子-β I 型受体激酶的药理学抑制对骨骼具有合成代谢和抗分解代谢作用。
PLoS One. 2009;4(4):e5275. doi: 10.1371/journal.pone.0005275. Epub 2008 Apr 16.
3
A tense situation: forcing tumour progression.一种紧张的情况:促使肿瘤进展。
Nat Rev Cancer. 2009 Feb;9(2):108-22. doi: 10.1038/nrc2544.
4
Sensorineural deafness and seizures in mice lacking vesicular glutamate transporter 3.缺乏囊泡谷氨酸转运体3的小鼠出现感音神经性耳聋和癫痫发作。
Neuron. 2008 Jan 24;57(2):263-75. doi: 10.1016/j.neuron.2007.11.032.
5
Regulation of the GABA cell phenotype in hippocampus of schizophrenics and bipolars.精神分裂症患者和双相情感障碍患者海马中GABA细胞表型的调控。
Proc Natl Acad Sci U S A. 2007 Jun 12;104(24):10164-9. doi: 10.1073/pnas.0703806104. Epub 2007 Jun 6.
6
Progressive deafness and altered cochlear innervation in knock-out mice lacking prosaposin.缺乏 prosaposin 的基因敲除小鼠出现进行性耳聋及耳蜗神经支配改变。
J Neurosci. 2006 Dec 13;26(50):13076-88. doi: 10.1523/JNEUROSCI.3746-06.2006.
7
Smad3 deficiency alters key structural elements of the extracellular matrix and mechanotransduction of wound closure.Smad3基因缺陷会改变细胞外基质的关键结构成分以及伤口愈合的机械转导过程。
Proc Natl Acad Sci U S A. 2006 Jun 13;103(24):9250-5. doi: 10.1073/pnas.0602473103. Epub 2006 Jun 5.
8
Resorption of auditory ossicles and hearing loss in mice lacking osteoprotegerin.缺乏骨保护素的小鼠中耳小骨吸收与听力损失
Bone. 2006 Aug;39(2):414-9. doi: 10.1016/j.bone.2006.01.155. Epub 2006 Mar 24.
9
Osteoprotegrin knockout mice demonstrate abnormal remodeling of the otic capsule and progressive hearing loss.骨保护素基因敲除小鼠表现出耳囊的异常重塑和进行性听力损失。
Laryngoscope. 2006 Feb;116(2):201-6. doi: 10.1097/01.mlg.0000191466.09210.9a.
10
TGF-beta regulates the mechanical properties and composition of bone matrix.转化生长因子-β调节骨基质的力学性能和组成。
Proc Natl Acad Sci U S A. 2005 Dec 27;102(52):18813-8. doi: 10.1073/pnas.0507417102. Epub 2005 Dec 14.

骨组织中转化生长因子-β和 Runx2 对细胞外基质性质的组织特异性调节是听觉所必需的。

Tissue-specific calibration of extracellular matrix material properties by transforming growth factor-β and Runx2 in bone is required for hearing.

机构信息

Department of Otolaryngology, Head and Neck Surgery, University of California at San Francisco, San Francisco, California 94143, USA.

出版信息

EMBO Rep. 2010 Oct;11(10):765-71. doi: 10.1038/embor.2010.135. Epub 2010 Sep 17.

DOI:10.1038/embor.2010.135
PMID:20847738
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2948188/
Abstract

Physical cues, such as extracellular matrix stiffness, direct cell differentiation and support tissue-specific function. Perturbation of these cues underlies diverse pathologies, including osteoarthritis, cardiovascular disease and cancer. However, the molecular mechanisms that establish tissue-specific material properties and link them to healthy tissue function are unknown. We show that Runx2, a key lineage-specific transcription factor, regulates the material properties of bone matrix through the same transforming growth factor-β (TGFβ)-responsive pathway that controls osteoblast differentiation. Deregulated TGFβ or Runx2 function compromises the distinctly hard cochlear bone matrix and causes hearing loss, as seen in human cleidocranial dysplasia. In Runx2+/⁻ mice, inhibition of TGFβ signalling rescues both the material properties of the defective matrix, and hearing. This study elucidates the unknown cause of hearing loss in cleidocranial dysplasia, and demonstrates that a molecular pathway controlling cell differentiation also defines material properties of extracellular matrix. Furthermore, our results suggest that the careful regulation of these properties is essential for healthy tissue function.

摘要

物理线索,如细胞外基质硬度,可直接指导细胞分化并支持组织特异性功能。这些线索的紊乱是多种病理的基础,包括骨关节炎、心血管疾病和癌症。然而,建立组织特异性材料特性并将其与健康组织功能联系起来的分子机制尚不清楚。我们表明,Runx2 是一种关键的谱系特异性转录因子,通过控制成骨细胞分化的相同转化生长因子-β(TGFβ)反应途径来调节骨基质的材料特性。TGFβ 或 Runx2 功能失调会损害耳蜗骨基质的独特硬度并导致听力损失,如人类颅锁骨发育不全中所见。在 Runx2+/⁻ 小鼠中,抑制 TGFβ 信号通路可挽救缺陷基质的材料特性和听力。这项研究阐明了颅锁骨发育不全中听力损失的未知原因,并表明控制细胞分化的分子途径也定义了细胞外基质的材料特性。此外,我们的结果表明,对这些特性的精细调节对于组织的健康功能至关重要。