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脊索衍生的刺猬因子对非洲爪蟾蝌蚪的尾巴再生至关重要。

Notochord-derived hedgehog is essential for tail regeneration in Xenopus tadpole.

作者信息

Taniguchi Yuka, Watanabe Kenji, Mochii Makoto

机构信息

Department of Life Science, Graduate school of Life Science, University of Hyogo, 3-2-1 Koto, Kamigori Akou, Hyogo 678-1297, Japan.

出版信息

BMC Dev Biol. 2014 Jun 18;14:27. doi: 10.1186/1471-213X-14-27.

Abstract

BACKGROUND

Appendage regeneration in amphibians is regulated by the combinatorial actions of signaling molecules. The requirement of molecules secreted from specific tissues is reflected by the observation that the whole process of regeneration can be inhibited if a certain tissue is removed from the amputated stump. Interestingly, urodeles and anurans show different tissue dependencies during tail regeneration. The spinal cord is essential for tail regeneration in urodele but not in anuran larva, whereas the notochord but not the spinal cord is essential for tail regeneration in anuran tadpoles. Sonic hedgehog is one of the signaling molecules responsible for such phenomenon in axolotl, as hedgehog signaling is essential for overall tail regeneration and sonic hedgehog is exclusively expressed in the spinal cord. In order to know whether hedgehog signaling is involved in the molecular mechanism underlying the inconsistent tissue dependency for tail regeneration between anurans and urodeles, we investigated expression of hedgehog signal-related genes in the regenerating tail of Xenopus tadpole and examined the effect of the hedgehog signal inhibitor, cyclopamine, on the tail regeneration.

RESULTS

In Xenopus, sonic hedgehog is expressed exclusively in the notochord but not in the spinal cord of the regenerate. Overall regeneration was severely impaired in cyclopamine-treated tadpoles. Notochord maturation in the regenerate, including cell alignment and vacuolation, and myofiber formation were inhibited. Proliferation of spinal cord cells in the neural ampulla and of mesenchymal cells was also impaired.

CONCLUSION

As in the axolotl, hedgehog signaling is required for multiple steps in tail regeneration in the Xenopus tadpole, although the location of the Shh source is quite different between the two species. This difference in Shh localization is the likely basis for the differing tissue requirement for tail regeneration between urodeles and anurans.

摘要

背景

两栖动物的附肢再生受信号分子的组合作用调控。特定组织分泌的分子的必要性体现在这样的观察结果中:如果从截肢残端移除某个特定组织,整个再生过程就会受到抑制。有趣的是,有尾目和无尾目在尾巴再生过程中表现出不同的组织依赖性。脊髓对有尾目动物的尾巴再生至关重要,但对无尾目幼体则不然,而脊索而非脊髓对无尾目蝌蚪的尾巴再生至关重要。音猬因子是负责蝾螈中此类现象的信号分子之一,因为刺猬信号通路对整体尾巴再生至关重要,且音猬因子仅在脊髓中表达。为了了解刺猬信号通路是否参与无尾目和有尾目动物尾巴再生组织依赖性不一致的分子机制,我们研究了非洲爪蟾蝌蚪再生尾巴中刺猬信号相关基因的表达,并检测了刺猬信号通路抑制剂环杷明对尾巴再生的影响。

结果

在非洲爪蟾中,音猬因子仅在再生体的脊索中表达,而不在脊髓中表达。环杷明处理的蝌蚪整体再生严重受损。再生体中的脊索成熟,包括细胞排列和空泡化,以及肌纤维形成均受到抑制。神经壶腹的脊髓细胞和间充质细胞的增殖也受到损害。

结论

与蝾螈一样,刺猬信号通路在非洲爪蟾蝌蚪尾巴再生的多个步骤中都是必需的,尽管两种动物中音猬因子的来源位置有很大差异。音猬因子定位的这种差异可能是有尾目和无尾目动物尾巴再生组织需求不同的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/958f/4074850/77c2715c64c4/1471-213X-14-27-1.jpg

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