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髓系锌指蛋白1(Mzf1)通过与Nkx2.5心脏增强子相互作用,对小鼠心脏发生进行差异性调控。

Myeloid zinc finger 1 (Mzf1) differentially modulates murine cardiogenesis by interacting with an Nkx2.5 cardiac enhancer.

作者信息

Doppler Stefanie A, Werner Astrid, Barz Melanie, Lahm Harald, Deutsch Marcus-André, Dreßen Martina, Schiemann Matthias, Voss Bernhard, Gregoire Serge, Kuppusamy Rajarajan, Wu Sean M, Lange Rüdiger, Krane Markus

机构信息

Department of Experimental Surgery, Department of Cardiovascular Surgery, Deutsches Herzzentrum München, Technische Universität München (TUM), Munich, Germany.

Institute for Medical Microbiology, Immunology and Hygiene, Technische Universität München (TUM), Munich, Germany; Clinical Cooperation Groups "Antigen-specific Immunotherapy" and "Immune-Monitoring", Helmholtz Center Munich (Neuherberg), TUM, Munich, Germany.

出版信息

PLoS One. 2014 Dec 1;9(12):e113775. doi: 10.1371/journal.pone.0113775. eCollection 2014.

Abstract

Vertebrate heart development is strictly regulated by temporal and spatial expression of growth and transcription factors (TFs). We analyzed nine TFs, selected by in silico analysis of an Nkx2.5 enhancer, for their ability to transactivate the respective enhancer element that drives, specifically, expression of genes in cardiac progenitor cells (CPCs). Mzf1 showed significant activity in reporter assays and bound directly to the Nkx2.5 cardiac enhancer (Nkx2.5 CE) during murine ES cell differentiation. While Mzf1 is established as a hematopoietic TF, its ability to regulate cardiogenesis is completely unknown. Mzf1 expression was significantly enriched in CPCs from in vitro differentiated ES cells and in mouse embryonic hearts. To examine the effect of Mzf1 overexpression on CPC formation, we generated a double transgenic, inducible, tetOMzf1-Nkx2.5 CE eGFP ES line. During in vitro differentiation an early and continuous Mzf1 overexpression inhibited CPC formation and cardiac gene expression. A late Mzf1 overexpression, coincident with a second physiological peak of Mzf1 expression, resulted in enhanced cardiogenesis. These findings implicate a novel, temporal-specific role of Mzf1 in embryonic heart development. Thereby we add another piece of puzzle in understanding the complex mechanisms of vertebrate cardiac development and progenitor cell differentiation. Consequently, this knowledge will be of critical importance to guide efficient cardiac regenerative strategies and to gain further insights into the molecular basis of congenital heart malformations.

摘要

脊椎动物心脏发育受到生长因子和转录因子(TFs)在时间和空间上表达的严格调控。我们通过对Nkx2.5增强子进行计算机分析,挑选了9个TFs,分析它们激活各自增强子元件的能力,该增强子元件专门驱动心脏祖细胞(CPCs)中基因的表达。在小鼠胚胎干细胞分化过程中,Mzf1在报告基因检测中显示出显著活性,并直接与Nkx2.5心脏增强子(Nkx2.5 CE)结合。虽然Mzf1被确定为一种造血TF,但它调节心脏发生的能力完全未知。Mzf1在体外分化的胚胎干细胞来源的CPCs和小鼠胚胎心脏中表达显著富集。为了研究Mzf1过表达对CPC形成的影响,我们构建了一个双转基因、可诱导的tetOMzf1-Nkx2.5 CE eGFP胚胎干细胞系。在体外分化过程中,早期持续的Mzf1过表达抑制了CPC的形成和心脏基因的表达。晚期Mzf1过表达与Mzf1表达的第二个生理高峰同时出现,导致心脏发生增强。这些发现表明Mzf1在胚胎心脏发育中具有一种新的、时间特异性的作用。从而为理解脊椎动物心脏发育和祖细胞分化的复杂机制增添了新的内容。因此,这一知识对于指导有效的心脏再生策略以及深入了解先天性心脏畸形的分子基础至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15e9/4249966/506f4f331042/pone.0113775.g001.jpg

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