...
首页> 外文期刊>ACS nano >Exosomes Mediate Epithelium-Mesenchyme Crosstalk in Organ Development
【24h】

Exosomes Mediate Epithelium-Mesenchyme Crosstalk in Organ Development

机译:外来物在器官发展中介导上皮 - 间充质串扰

获取原文
获取原文并翻译 | 示例
           

摘要

Organ development requires complex signaling by cells in different tissues. Epithelium and mesenchyme interactions are crucial for the development of skin, hair follicles, kidney, lungs, prostate, major glands, and teeth. Despite myriad literature on cell cell interactions and ligand receptor binding, the roles of extracellular vesicles in epithelium-mesenchyme interactions during organogenesis are poorly understood. Here, we discovered that similar to 100 nm exosomes were secreted by the epithelium and mesenchyme of a developing tooth organ and diffused through the basement membrane. Exosomes were entocytosed by epithelium or mesenchyme cells with preference by reciprocal cells rather than self-uptake. Exosomes reciprocally evoked cell differentiation and matrix synthesis: epithelium exosomes induce mesenchyme cells to produce dentin sialoprotein and undergo mineralization, whereas mesenchyme exosomes induce epithelium cells to produce basement membrane components, ameloblastin and amelogenenin. Attenuated exosomal secretion by Rab27a/b knockdown or GW4869 disrupted the basement membrane and reduced enamel and dentin production in organ culture and reduced matrix synthesis and the size of the cervical loop, which harbors epithelium stem cells, in Rab27(ash/ash) mutant mice. We then profiled exosomal constituents including miRNAs and peptides and further crossed all epithelium exosomal miRNAs with literature-known miRNA Wnt regulators. Epithelium exosome-derived miR135a activated Wnt/beta-catenin signaling and escalated mesenchymal production of dentin matrix proteins, partially reversible by Antago-miR135a attenuation. Our results suggest that exosomes may mediate epithelium mesenchyme crosstalk in organ development, suggesting that these vesicles and/or the molecular contents they are transporting may be interventional targets for treatment of diseases or regeneration of tissues.
机译:器官发展需要不同组织中细胞的复杂信号。上皮和间充质相互作用对于皮肤,毛囊,肾脏,肺,前列腺,主要腺体和牙齿的发展至关重要。尽管细胞细胞相互作用和配体受体结合物具有多种文献,但是细胞外囊泡在子组织中的上皮 - 间充质相互作用中的作用较差。这里,我们发现,类似于100nm外来的外部通过显影牙器官的上皮和间质分泌并通过基底膜扩散。外泌体由上皮或间充质细胞占据偏好,偏好通过往复细胞而不是自备吸收。外来偏离诱发的细胞分化和基质合成:上皮外泌体诱导间充质细胞产生牙本质唾液酸蛋白并经历矿化,而间本外泌体诱导上皮细胞产生基底膜组分,Ameloblastin和Amelogenin。通过RAB27A / B敲低或GW4869衰减外泌体分泌破坏了器官培养的基底膜和降低的牙釉质和牙本质生成,降低了基质合成和宫颈环的尺寸,其中rab27(灰分/灰分)突变小鼠。然后,我们在包括MiRNA和肽的外泌体成分中进行了突出的外泌体成分,并进一步与文献中已知的miRNA Wnt调节剂交叉所有上皮外泌体miRNA。上皮细胞体衍生的miR135a活化Wnt /β-连环蛋白信号传导和升级的牙本质基质蛋白的间充质产生,部分地通过antago-mir135a衰减来逆转。我们的研究结果表明,外来物可以在器官开发中介导微型间充质串扰,这表明这些囊泡和/或它们运输的分子含量可能是治疗组织疾病或再生的介入靶标。

著录项

  • 来源
    《ACS nano》 |2017年第8期|共11页
  • 作者单位

    Peking Univ Cent Lab Dept Orthodont Sch &

    Hosp Stomatol 22 Zhongguancun Nandajie Beijing 100081 Peoples R China;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Peking Univ Sch &

    Hosp Stomatol Dept Orthodont 22 Zhongguancun Nandajie Beijing 100081 Peoples R China;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Univ Rochester Dept Orthopaed Sch Med Rochester NY 14642 USA;

    Univ Texas Houston Vivian L Smith Dept Neurosurg Houston TX 77054 USA;

    Univ Texas Houston Vivian L Smith Dept Neurosurg Houston TX 77054 USA;

    NYU Dept Biomat &

    Biomimet New York NY 10010 USA;

    NYU Dept Biomat &

    Biomimet New York NY 10010 USA;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

    Peking Univ Sch &

    Hosp Stomatol Dept Orthodont 22 Zhongguancun Nandajie Beijing 100081 Peoples R China;

    Columbia Univ Ctr Craniofacial Regenerat 630 W 168 St New York NY 10032 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;
  • 关键词

    exosomes; epithelium; mesenchyme; development; miRNA; Wnt; miR135a;

    机译:外泌体;上皮;间充质;发展;miRNA;wnt;mir135a;

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