...
首页> 外文期刊>BMC Developmental Biology >PfSMAD4 plays a role in biomineralization and can transduce bone morphogenetic protein-2 signals in the pearl oyster Pinctada fucata
【24h】

PfSMAD4 plays a role in biomineralization and can transduce bone morphogenetic protein-2 signals in the pearl oyster Pinctada fucata

机译:PfSMAD4在生物矿化中起作用,并可以转导珍珠牡蛎Pinctada fucata中的骨形态发生蛋白2信号。

获取原文
           

摘要

Background Mollusca is the second largest phylum in nature. The shell of molluscs is a remarkable example of a natural composite biomaterial. Biomineralization and how it affects mollusks is a popular research topic. The BMP-2 signaling pathway plays a canonical role in biomineralization. SMAD4 is an intracellular transmitter in the BMP signaling pathway in mammals, and some genomic data show SMAD4’s involvment in BMP signaling in invertbrates, but whether SMAD4 plays a conservative role in pearl oyster, Pinctada fucata , still need to be tested. Results In this study, we identified a SMAD4 gene (hereafter designated PfSMAD4 ) in pearl oyster Pinctada fucata. Bioinformatics analysis of PfSMAD4 showed high identity with its orthologs. PfSMAD4 was located in the cytoplasm in immunofluorescence assays and analyses of PfSMAD4 mRNA in tissues and developmental stages showed high expression in ovaries and D-shaped larvae. An RNA interference experiment, performed by PfSMAD4 double-stranded RNA (dsRNA) injection, demonstrated inhibition not only of nacre growth but also organic sheet formation with a decrease in PfSMAD4 expression. A knockdown experiment using PfBMP2 dsRNA showed decreased PfBMP2 and PfSMAD4 mRNA and irregular crystallization of the nacreous layer using scanning electron microscopy. In co-transfection experiments, PfBMP2-transactivated reporter constructs contained PfSMAD4 promoter sequences. Conclusions Our results suggest that PfSMAD4 plays a role in biomineralization and can transduce BMP signals in P. fucata. Our data provides important clues about the molecular mechanisms that regulate biomineralization in pearl oyster.
机译:背景软体动物是自然界中的第二大门。软体动物的外壳是天然复合生物材料的杰出例子。生物矿化及其对软体动物的影响是一个受欢迎的研究主题。 BMP-2信号通路在生物矿化中起着规范作用。 SMAD4是哺乳动物BMP信号传导途径中的一种细胞内递质,一些基因组数据表明SMAD4在无脊椎动物中参与了BMP信号传导,但SMAD4是否在珍珠贝牡蛎Pinctada fucata中起着保守的作用,尚需检​​验。结果在这项研究中,我们在珍珠贝Pinctada fucata中鉴定了一个SMAD4基因(以下称为PfSMAD4)。 PfSMAD4的生物信息学分析显示其直系同源性很高。在免疫荧光分析中,PfSMAD4位于细胞质中,对组织和发育阶段中PfSMAD4 mRNA的分析显示在卵巢和D形幼虫中高表达。通过PfSMAD4双链RNA(dsRNA)注射进行的RNA干扰实验显示,不仅抑制珍珠质的生长,而且抑制有机膜的形成,同时降低PfSMAD4的表达。使用PfBMP2 dsRNA进行的敲低实验显示,使用扫描电子显微镜观察到PfBMP2和PfSMAD4 mRNA的降低以及珍珠层的不规则结晶。在共转染实验中,PfBMP2激活的报告基因构建体包含PfSMAD4启动子序列。结论我们的结果表明PfSMAD4在生物矿化中发挥作用,并且可以转导fucata fucata中的BMP信号。我们的数据提供了有关调节珍珠贝生物矿化的分子机制的重要线索。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号