Sferruzzi-Perri Amanda N, Macpherson Anne M, Roberts Claire T, Robertson Sarah A
Research Centre for Reproductive Health, School of Paediatrics and Reproductive Health, University of Adelaide, Adelaide, South Australia, Australia.
Biol Reprod. 2009 Jul;81(1):207-21. doi: 10.1095/biolreprod.108.073312. Epub 2009 Feb 18.
Genetic deficiency in granulocyte-macrophage colony-stimulating factor (CSF2, GM-CSF) results in altered placental structure in mice. To investigate the mechanism of action of CSF2 in placental morphogenesis, the placental gene expression and cell composition were examined in Csf2 null mutant and wild-type mice. Microarray and quantitative RT-PCR analyses on Embryonic Day (E) 13 placentae revealed that the Csf2 null mutation caused altered expression of 17 genes not previously known to be associated with placental development, including Mid1, Cd24a, Tnfrsf11b, and Wdfy1. Genes controlling trophoblast differentiation (Ascl2, Tcfeb, Itgav, and Socs3) were also differentially expressed. The CSF2 ligand and the CSF2 receptor alpha subunit were predominantly synthesized in the placental junctional zone. Altered placental structure in Csf2 null mice at E15 was characterized by an expanded junctional zone and by increased Cx31(+) glycogen cells and cyclin-dependent kinase inhibitor 1C (CDKN1C(+), P57(Kip2+)) giant cells, accompanied by elevated junctional zone transcription of genes controlling spongiotrophoblast and giant cell differentiation and secretory function (Ascl2, Hand1, Prl3d1, and Prl2c2). Granzyme genes implicated in tissue remodeling and potentially in trophoblast invasion (Gzmc, Gzme, and Gzmf) were downregulated in the junctional zone of Csf2 null mutant placentae. These data demonstrate aberrant placental gene expression in Csf2 null mutant mice that is associated with altered differentiation and/or functional maturation of junctional zone trophoblast lineages, glycogen cells, and giant cells. We conclude that CSF2 is a regulator of trophoblast differentiation and placental development, which potentially influences the functional capacity of the placenta to support optimal fetal growth in pregnancy.
粒细胞-巨噬细胞集落刺激因子(CSF2,GM-CSF)的基因缺陷会导致小鼠胎盘结构改变。为了研究CSF2在胎盘形态发生中的作用机制,我们检测了Csf2基因敲除突变小鼠和野生型小鼠的胎盘基因表达及细胞组成。对胚胎第13天(E13)胎盘进行的微阵列和定量RT-PCR分析显示,Csf2基因敲除突变导致17个先前未知与胎盘发育相关的基因表达改变,包括Mid1、Cd24a、Tnfrsf11b和Wdfy1。控制滋养层细胞分化的基因(Ascl2、Tcfeb、Itgav和Socs3)也存在差异表达。CSF2配体和CSF2受体α亚基主要在胎盘交界区合成。E15时Csf2基因敲除小鼠胎盘结构改变的特征是交界区扩大,Cx31(+)糖原细胞和细胞周期蛋白依赖性激酶抑制剂1C(CDKN1C(+),P57(Kip2+))巨细胞增多,同时控制海绵滋养层细胞和巨细胞分化及分泌功能的基因(Ascl2、Hand1、Prl3d1和Prl2c2)在交界区的转录水平升高。参与组织重塑并可能与滋养层细胞侵袭有关的颗粒酶基因(Gzmc、Gzme和Gzmf)在Csf2基因敲除突变胎盘的交界区表达下调。这些数据表明,Csf2基因敲除突变小鼠胎盘基因表达异常,这与交界区滋养层细胞谱系、糖原细胞和巨细胞的分化和/或功能成熟改变有关。我们得出结论,CSF2是滋养层细胞分化和胎盘发育的调节因子,可能影响胎盘在妊娠期间支持胎儿最佳生长的功能能力。