蝾螈肢体胚基:驱动四足动物胚基形成和肢体再生的细胞和分子机制

Regeneration (Oxford, England) Pub Date : 2015-05-11 eCollection Date: 2015-04-01 DOI:10.1002/reg2.32
Catherine McCusker, Susan V Bryant, David M Gardiner
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引用次数: 143

摘要

美西螈是为数不多的能够在成年期再生复杂生物结构的四足动物之一,比如完整的四肢。在受伤后,美西螈会产生一群具有再生能力的肢体祖细胞,称为胚体,这些细胞会生长,建立模式,并分化成缺失的肢体结构。在这篇综述中,我们将重点关注在伤口愈合过程中发生的关键早期事件,驱动早期胚基形成的神经-上皮相互作用,以及这些机制与其他具有有限再生潜力的物种(如人类)的机制有何不同。我们还讨论了如何需要来自肢体不同轴的细胞的存在来继续生长和建立极坐标模型中描述的胚基细胞模式,以及这些位置信息如何在再生过程中在胚基细胞中重新编程。来自成熟残肢的多种细胞类型在再生的不同阶段对胚基有贡献,我们讨论了这些类型对再生细胞的贡献,参考它们是“模式形成”还是“模式遵循”细胞。最后,我们解释了工程方法将如何帮助解决肢体再生中悬而未决的问题,目标是将这些概念转化为开发更好的人类再生疗法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The axolotl limb blastema: cellular and molecular mechanisms driving blastema formation and limb regeneration in tetrapods.

The axolotl limb blastema: cellular and molecular mechanisms driving blastema formation and limb regeneration in tetrapods.

The axolotl limb blastema: cellular and molecular mechanisms driving blastema formation and limb regeneration in tetrapods.

The axolotl limb blastema: cellular and molecular mechanisms driving blastema formation and limb regeneration in tetrapods.

The axolotl is one of the few tetrapods that are capable of regenerating complicated biological structures, such as complete limbs, throughout adulthood. Upon injury the axolotl generates a population of regeneration-competent limb progenitor cells known as the blastema, which will grow, establish pattern, and differentiate into the missing limb structures. In this review we focus on the crucial early events that occur during wound healing, the neural-epithelial interactions that drive the formation of the early blastema, and how these mechanisms differ from those of other species that have restricted regenerative potential, such as humans. We also discuss how the presence of cells from the different axes of the limb is required for the continued growth and establishment of pattern in the blastema as described in the polar coordinate model, and how this positional information is reprogrammed in blastema cells during regeneration. Multiple cell types from the mature limb stump contribute to the blastema at different stages of regeneration, and we discuss the contribution of these types to the regenerate with reference to whether they are "pattern-forming" or "pattern-following" cells. Lastly, we explain how an engineering approach will help resolve unanswered questions in limb regeneration, with the goal of translating these concepts to developing better human regenerative therapies.

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