首页> 美国卫生研究院文献>Regeneration >Positional information in axolotl and mouse limb extracellular matrix is mediated via heparan sulfate and fibroblast growth factor during limb regeneration in the axolotl (Ambystoma mexicanum)
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Positional information in axolotl and mouse limb extracellular matrix is mediated via heparan sulfate and fibroblast growth factor during limb regeneration in the axolotl (Ambystoma mexicanum)

机译:在limb的肢体再生过程中通过硫酸乙酰肝素和成纤维细胞生长因子介导a和小鼠肢体细胞外基质中的位置信息。

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摘要

Urodele amphibians are unique among adult vertebrates in their ability to regenerate complex body structures after traumatic injury. In salamander regeneration, the cells maintain a memory of their original position and use this positional information to recreate the missing pattern. We used an in vivo gain‐of‐function assay to determine whether components of the extracellular matrix (ECM) have positional information required to induce formation of new limb pattern during regeneration. We discovered that salamander limb ECM has a position‐specific ability to either inhibit regeneration or induce de novo limb structure, and that this difference is dependent on heparan sulfates that are associated with differential expression of heparan sulfate sulfotransferases. We also discovered that an artificial ECM containing only heparan sulfate was sufficient to induce de novo limb pattern in salamander limb regeneration. Finally, ECM from mouse limbs is capable of inducing limb pattern in axolotl blastemas in a position‐specific, developmental‐stage‐specific, and heparan sulfate‐dependent manner. This study demonstrates a mechanism for positional information in regeneration and establishes a crucial functional link between salamander regeneration and mammals.
机译:在成年脊椎动物中,Urodele两栖动物是独一无二的,因为它们在创伤后能够再生复杂的身体结构。在sal更新过程中,细胞会保留其原始位置的记忆,并使用此位置信息来重建缺失的模式。我们使用体内功能获得试验确定细胞外基质(ECM)的成分是否具有在再生过程中诱导形成新肢体模式所需的位置信息。我们发现sal sal肢体ECM具有抑制再生或诱导从头肢体结构的特定位置能力,并且这种差异取决于与硫酸乙酰肝素磺基转移酶差异表达有关的硫酸乙酰肝素。我们还发现仅含硫酸乙酰肝素的人工ECM足以在sal肢再生中诱导从头肢体形成。最后,来自小鼠肢体的ECM能够以位置特异性,发育阶段特异性和硫酸乙酰肝素依赖性的方式诱导a虫胚芽的肢体模式。这项研究证明了再生中位置信息的机制,并在sal再生和哺乳动物之间建立了至关重要的功能联系。

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