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眼面心牙综合征中心脏/侧方缺陷的潜在分子发病机制。

A potential molecular pathogenesis of cardiac/laterality defects in Oculo-Facio-Cardio-Dental syndrome.

机构信息

Department of Biomedical Sciences, Florida State University College of Medicine, Tallahassee, FL 32306, USA.

Institute of Socio-Arts and Sciences, The University of Tokushima, Tokushima 770-8502, Japan.

出版信息

Dev Biol. 2014 Mar 1;387(1):28-36. doi: 10.1016/j.ydbio.2014.01.003. Epub 2014 Jan 17.

Abstract

Pitx2 is the last effector of the left-right (LR) cascade known to date and plays a crucial role in the patterning of LR asymmetry. In Xenopus embryos, the expression of Pitx2 gene in the left lateral plate mesoderm (LPM) is directly regulated by Xnr1 signaling, which is mediated by Smads and FoxH1. Previous studies suggest that the suppression of Pitx2 gene in the left LPM is a potential cause of cardiac/laterality defects in Oculo-Facio-Cardio-Dental (OFCD) syndrome, which is known to be caused by mutations in BCL6 co-repressor (BCOR) gene. Recently, our work has revealed that the BCL6/BCOR complex blocks Notch-dependent transcriptional activity to protect the expression of Pitx2 in the left LPM from the inhibitory activity of Notch signaling. These studies indicated that uncontrolled Notch activity in the left LPM caused by dysfunction of BCOR may result in cardiac/laterality defects of OFCD syndrome. However, this Notch-dependent inhibitory mechanism of Pitx2 gene transcription still remains unknown. Here we report that transcriptional repressor ESR1, which acts downstream of Notch signaling, inhibits the expression of Pitx2 gene by binding to a left side-specific enhancer (ASE) region in Pitx2 gene and recruiting histone deacetylase 1 (HDAC1) to this region. Once HDAC1 is tethered, histone acetyltransferase p300 is no longer recruited to the Xnr1-dependent transcriptional complex on the ASE region, leading to the suppression of Pitx2 gene in the left LPM. The study presented here uncovers the regulatory mechanism of Pitx2 gene transcription which may contribute to an understanding of pathogenesis of OFCD syndrome.

摘要

Pitx2 是目前已知的左右(LR)级联反应的最后一个效应物,在 LR 不对称性的模式形成中发挥关键作用。在非洲爪蟾胚胎中,Pitx2 基因在左侧侧板中胚层(LPM)中的表达受 Xnr1 信号的直接调控,该信号由 Smads 和 FoxH1 介导。先前的研究表明,左侧 LPM 中 Pitx2 基因的抑制是眼面心牙(Oculo-Facio-Cardio-Dental,OFCD)综合征中心脏/侧位缺陷的潜在原因,已知该疾病是由 BCL6 共抑制因子(BCOR)基因突变引起的。最近,我们的工作揭示了 BCL6/BCOR 复合物通过阻断 Notch 依赖性转录活性来保护左侧 LPM 中 Pitx2 的表达免受 Notch 信号的抑制活性。这些研究表明,BCOR 功能障碍导致左侧 LPM 中 Notch 活性失控,可能导致 OFCD 综合征的心脏/侧位缺陷。然而,Pitx2 基因转录的这种 Notch 依赖性抑制机制仍然未知。在这里,我们报告了转录抑制因子 ESR1,它作为 Notch 信号的下游因子,通过结合 Pitx2 基因中的左侧特异性增强子(ASE)区域并募集组蛋白去乙酰化酶 1(HDAC1)到该区域来抑制 Pitx2 基因的表达。一旦 HDAC1 被连接,组蛋白乙酰转移酶 p300 就不再被募集到 ASE 区域上依赖于 Xnr1 的转录复合物上,导致左侧 LPM 中 Pitx2 基因的抑制。本研究揭示了 Pitx2 基因转录的调控机制,可能有助于理解 OFCD 综合征的发病机制。

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Xenopus white papers and resources: folding functional genomics and genetics into the frog.
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The multiple roles of Notch signaling during left-right patterning.
Cell Mol Life Sci. 2011 Aug;68(15):2555-67. doi: 10.1007/s00018-011-0695-5. Epub 2011 May 5.
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Chromatin immunoprecipitation in early Xenopus laevis embryos.
Dev Dyn. 2009 Jun;238(6):1422-32. doi: 10.1002/dvdy.21931.
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