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Ras 调控斑马鱼鳍条再生过程中的黑素细胞扩增。

Ras controls melanocyte expansion during zebrafish fin stripe regeneration.

机构信息

Department of Cell Biology and Howard Hughes Medical Institute, Duke University Medical Center, Durham, NC 27710, USA.

出版信息

Dis Model Mech. 2010 Jul-Aug;3(7-8):496-503. doi: 10.1242/dmm.004515. Epub 2010 May 18.

Abstract

Regenerative medicine for complex tissues like limbs will require the provision or activation of precursors for different cell types, in the correct number, and with the appropriate instructions. These strategies can be guided by what is learned from spectacular events of natural limb or fin regeneration in urodele amphibians and teleost fish. Following zebrafish fin amputation, melanocyte stripes faithfully regenerate in tandem with complex fin structures. Distinct populations of melanocyte precursors emerge and differentiate to pigment regenerating fins, yet the regulation of their proliferation and patterning is incompletely understood. Here, we found that transgenic increases in active Ras dose-dependently hyperpigmented regenerating zebrafish fins. Lineage tracing and marker analysis indicated that increases in active Ras stimulated the in situ amplification of undifferentiated melanocyte precursors expressing mitfa and kita. Active Ras also hyperpigmented early fin regenerates of kita mutants, which are normally devoid of primary regeneration melanocytes, suppressing defects in precursor function and survival. By contrast, this protocol had no noticeable impact on pigmentation by secondary regulatory melanocyte precursors in late-stage kita regenerates. Our results provide evidence that Ras activity levels control the repopulation and expansion of adult melanocyte precursors after tissue loss, enabling the recovery of patterned melanocyte stripes during zebrafish appendage regeneration.

摘要

对于像四肢这样的复杂组织,再生医学将需要提供或激活不同细胞类型的前体细胞,数量要正确,并具有适当的指令。这些策略可以从有尾两栖动物和硬骨鱼的壮观肢体或鳍再生自然事件中所学到的知识来指导。在斑马鱼鳍切除后,黑色素条纹与复杂的鳍结构一起忠实再生。不同群体的黑色素前体细胞出现并分化为再生的色素鳍,但它们的增殖和模式形成的调节仍不完全清楚。在这里,我们发现,活性 Ras 的转基因增加以剂量依赖的方式使再生的斑马鱼鳍过度黑化。谱系追踪和标记分析表明,活性 Ras 的增加刺激了表达 mitfa 和 kita 的未分化黑色素前体细胞的原位扩增。活性 Ras 还使 kita 突变体的早期鳍再生过度黑化,这些突变体通常缺乏原发性再生黑色素细胞,抑制了前体细胞功能和存活的缺陷。相比之下,该方案对晚期 kita 再生中二级调节黑色素前体细胞的色素沉着没有明显影响。我们的结果提供了证据表明,Ras 活性水平控制组织损失后成年黑色素前体细胞的再群体化和扩增,从而在斑马鱼附肢再生过程中恢复有图案的黑色素条纹。

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