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Mn1转录因子在Tbx22的上游起作用,优先调节小鼠腭后部的生长。

The Mn1 transcription factor acts upstream of Tbx22 and preferentially regulates posterior palate growth in mice.

作者信息

Liu Wenjin, Lan Yu, Pauws Erwin, Meester-Smoor Magda A, Stanier Philip, Zwarthoff Ellen C, Jiang Rulang

机构信息

Department of Biomedical Genetics and Center for Oral Biology, University of Rochester School of Medicine and Dentistry, Rochester, NY 14642, USA.

出版信息

Development. 2008 Dec;135(23):3959-68. doi: 10.1242/dev.025304. Epub 2008 Oct 23.

DOI:10.1242/dev.025304
PMID:18948418
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2586179/
Abstract

The mammalian secondary palate exhibits morphological, pathological and molecular heterogeneity along the anteroposterior axis. Although the cell proliferation rates are similar in the anterior and posterior regions during palatal outgrowth, previous studies have identified several signaling pathways and transcription factors that specifically regulate the growth of the anterior palate. By contrast, no factor has been shown to preferentially regulate posterior palatal growth. Here, we show that mice lacking the transcription factor Mn1 have defects in posterior but not anterior palatal growth. We show that Mn1 mRNA exhibits differential expression along the anteroposterior axis of the developing secondary palate, with preferential expression in the middle and posterior regions during palatal outgrowth. Extensive analyses of palatal gene expression in wild-type and Mn1(-/-) mutant mice identified Tbx22, the mouse homolog of the human X-linked cleft palate gene, as a putative downstream target of Mn1 transcriptional activation. Tbx22 exhibits a similar pattern of expression with that of Mn1 along the anteroposterior axis of the developing palatal shelves and its expression is specifically downregulated in Mn1(-/-) mutants. Moreover, we show that Mn1 activated reporter gene expression driven by either the human or mouse Tbx22 gene promoters in co-transfected NIH3T3 cells. Overexpression of Mn1 in NIH3T3 cells also increased endogenous Tbx22 mRNA expression in a dose-dependent manner. These data indicate that Mn1 and Tbx22 function in a novel molecular pathway regulating mammalian palate development.

摘要

哺乳动物的次生腭在前后轴上表现出形态、病理和分子异质性。尽管在腭突生长过程中,前后区域的细胞增殖率相似,但先前的研究已经确定了几种特异性调节前腭生长的信号通路和转录因子。相比之下,尚未发现有因子能优先调节后腭生长。在此,我们表明,缺乏转录因子Mn1的小鼠后腭生长存在缺陷,而前腭生长正常。我们发现,Mn1 mRNA在发育中的次生腭的前后轴上呈现差异表达,在腭突生长期间,在中后区域优先表达。对野生型和Mn1(-/-)突变小鼠腭部基因表达的广泛分析确定,人类X连锁腭裂基因的小鼠同源物Tbx22是Mn1转录激活的一个假定下游靶点。Tbx22在发育中的腭突的前后轴上与Mn1呈现相似的表达模式,并且其表达在Mn1(-/-)突变体中特异性下调。此外,我们表明,在共转染的NIH3T3细胞中,Mn1激活了由人类或小鼠Tbx22基因启动子驱动的报告基因表达。在NIH3T3细胞中过表达Mn1也以剂量依赖的方式增加了内源性Tbx22 mRNA的表达。这些数据表明,Mn1和Tbx22在调节哺乳动物腭发育的一条新的分子途径中发挥作用。

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本文引用的文献

1
TBX22 mutations are a frequent cause of non-syndromic cleft palate in the Thai population.TBX22基因突变是泰国人群非综合征性腭裂的常见病因。
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TBX22 missense mutations found in patients with X-linked cleft palate affect DNA binding, sumoylation, and transcriptional repression.在X连锁腭裂患者中发现的TBX22错义突变会影响DNA结合、SUMO化和转录抑制。
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MN1, a novel player in human AML.MN1,人类急性髓系白血病中的一个新角色。
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A dosage-dependent role for Spry2 in growth and patterning during palate development.Spry2在腭部发育过程中的生长和模式形成中具有剂量依赖性作用。
Mech Dev. 2007 Sep-Oct;124(9-10):746-61. doi: 10.1016/j.mod.2007.06.007. Epub 2007 Jul 10.
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MN1 overexpression is an important step in the development of inv(16) AML.MN1过表达是inv(16)急性髓系白血病发生发展中的重要一步。
Leukemia. 2007 Aug;21(8):1679-90. doi: 10.1038/sj.leu.2404778. Epub 2007 May 24.
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Gene expression analysis reveals that formation of the mouse anterior secondary palate involves recruitment of cells from the posterior side.基因表达分析表明,小鼠前侧继发腭的形成涉及后侧细胞的募集。
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The MN1 oncoprotein activates transcription of the IGFBP5 promoter through a CACCC-rich consensus sequence.MN1癌蛋白通过富含CACCC的共有序列激活IGFBP5启动子的转录。
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Molecular control of secondary palate development.继发腭发育的分子调控
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Blood. 2006 Dec 1;108(12):3898-905. doi: 10.1182/blood-2006-04-014845. Epub 2006 Aug 15.
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MN1-TEL, the product of the t(12;22) in human myeloid leukemia, immortalizes murine myeloid cells and causes myeloid malignancy in mice.MN1-TEL是人类髓系白血病中t(12;22)的产物,可使小鼠髓系细胞永生化并在小鼠中引发髓系恶性肿瘤。
Leukemia. 2006 Sep;20(9):1582-92. doi: 10.1038/sj.leu.2404298. Epub 2006 Jun 29.