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Reactivating head regrowth in a regeneration-deficient planarian species

机译:再生不足的涡虫物种中的头部再生长

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摘要

Species capable of regenerating lost body parts occur throughout the animal kingdom, yet close relatives are often regeneration incompetent. Why in the face of 'survival of the fittest' some animals regenerate but others do not remains a fascinating question. Planarian flatworms are well known and studied for their ability to regenerate from minute tissue pieces, yet species with limited regeneration abilities have been described even amongst planarians. Here we report the characterization of the regeneration defect in the planarian Dendrocoelum lacteum and its successful rescue. Tissue fragments cut from the posterior half of the body of this species are unable to regenerate a head and ultimately die. We find that this defect originates during the early stages of head specification, which require inhibition of canonical Wnt signalling in other planarian species. Notably, RNA interference (RNAi)-mediated knockdown of Dlac-β-catenin-1, the Wnt signal transducer, restored the regeneration of fully functional heads on tail pieces, rescuing D. lacteum's regeneration defect. Our results demonstrate the utility of comparative studies towards the reactivation of regenerative abilities in regeneration-deficient animals. Furthermore, the availability of D. lacteum as a regeneration-impaired planarian model species provides a first step towards elucidating the evolutionary mechanisms that ultimately determine why some animals regenerate and others do not.
机译:能够使失去的身体部位再生的物种遍布整个动物界,但近亲通常无法再生。为什么面对“适者生存”,有些动物会再生,而另一些动物却没有成为一个有趣的问题。扁平虫扁平虫因其从微小组织碎片中再生的能力而广为人知并进行了研究,然而,甚至在扁平虫中也描述了再生能力有限的物种。在这里,我们报告了在平面涡虫马齿dro中的再生缺陷的表征及其成功的挽救。从该物种后半部切下的组织碎片无法再生头部,最终死亡。我们发现此缺陷起源于头部规格的早期阶段,这需要抑制其他涡虫物种中的经典Wnt信号传导。值得注意的是,Wnt信号转导子Dlac-β-catenin-1的RNA干扰(RNAi)介导的敲低恢复了尾巴上功能齐全的头部的再生,从而挽救了乳酸杆菌的再生缺陷。我们的结果证明了比较研究对再生缺陷动物中再生能力的恢复具有实用性。此外,作为一种损害再生的涡虫模型物种,乳酸杆菌的可利用性为阐明最终确定某些动物为何再生而另一些动物不再生的进化机制迈出了第一步。

著录项

  • 来源
    《Nature》 |2013年第7460期|81-84|共4页
  • 作者单位

    Max Planck Institute of Molecular Cell Biology and Genetics, PfotenhauerstraBe 108,01307 Dresden, Germany;

    DFG-Centerfor Regenerative Therapies Dresden (CRTD), Cluster of Excellence, Technische Universitat Dresden, Fetscherstrasse 105, 01307 Dresden, Germany;

    DFG-Centerfor Regenerative Therapies Dresden (CRTD), Cluster of Excellence, Technische Universitat Dresden, Fetscherstrasse 105, 01307 Dresden, Germany;

    DFG-Centerfor Regenerative Therapies Dresden (CRTD), Cluster of Excellence, Technische Universitat Dresden, Fetscherstrasse 105, 01307 Dresden, Germany;

    Max Planck Institute of Molecular Cell Biology and Genetics, PfotenhauerstraBe 108,01307 Dresden, Germany;

    Deep Sequencing Group-SFB655, DFG-Center for Regenerative Therapies Dresden (CRTD), Cluster of Excellence, Biotechnology Center (Biotec), Technische Universitat Dresden, FetscherstraBe 105, 01307 Dresden, Germany;

    Max Planck Institute of Molecular Cell Biology and Genetics, PfotenhauerstraBe 108,01307 Dresden, Germany;

    Max Planck Institute of Molecular Cell Biology and Genetics, PfotenhauerstraBe 108,01307 Dresden, Germany;

    Max Planck Institute of Molecular Cell Biology and Genetics, PfotenhauerstraBe 108,01307 Dresden, Germany;

    Max Planck Institute of Molecular Cell Biology and Genetics, PfotenhauerstraBe 108,01307 Dresden, Germany,DFG-Centerfor Regenerative Therapies Dresden (CRTD), Cluster of Excellence, Technische Universitat Dresden, Fetscherstrasse 105, 01307 Dresden, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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