低氧-声刺猬轴是洞穴鱼原始造血系统发育和进化的驱动力

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-08-21 DOI:10.1016/j.ydbio.2024.08.008
Corine M. van der Weele, Katrina C. Hospes, Katherine E. Rowe, William R. Jeffery
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引用次数: 0

摘要

远足类动物 Astyanax mexicanus 包括水面栖息型(水面鱼)和洞穴栖息型(洞穴鱼)。洞穴鱼在氧气水平降低(缺氧)的地下栖息地进化,表现出受胚胎中线音速刺猬(Shh)信号增强控制的表型特征。原始造血域在前侧板中胚层和后侧板中胚层双侧形成,原始造血域的增强是洞穴鱼比水面鱼类发育出更多幼体红细胞的原因。在这项研究中,我们确定了低氧和 Shh 信号在洞穴鱼原始造血的发育和进化中的作用。我们发现,在胚胎发育过程中进行低氧处理可增加表层鱼类的原始造血和红细胞发育。我们还证明,通过 Smoothened 激动剂 SAG 上调 Shh 中线信号可增加表层鱼类的原始造血和红细胞发育,而通过 Smoothened 抑制剂环戊巴胺下调 Shh 可减少洞穴鱼类的这些特征。这些结果表明,造血功能的增强受低氧和 Shh 信号的调节。最后,我们证明缺氧会增强水面鱼胚胎中线的 Shh 信号表达。我们的结论是,缺氧介导的 Shh 可塑性可能是洞穴鱼原始造血和红细胞发育适应性进化的驱动力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Hypoxia-sonic hedgehog axis as a driver of primitive hematopoiesis development and evolution in cavefish

The teleost Astyanax mexicanus consists of surface dwelling (surface fish) and cave dwelling (cavefish) forms. Cavefish have evolved in subterranean habitats characterized by reduced oxygen levels (hypoxia) and exhibit a subset of phenotypic traits controlled by increased Sonic hedgehog (Shh) signaling along the embryonic midline. The enhancement of primitive hematopoietic domains, which are formed bilaterally in the anterior and posterior lateral plate mesoderm, are responsible for the development of more larval erythrocytes in cavefish relative to surface fish. In this study, we determine the role of hypoxia and Shh signaling in the development and evolution of primitive hematopoiesis in cavefish. We show that hypoxia treatment during embryogenesis increases primitive hematopoiesis and erythrocyte development in surface fish. We also demonstrate that upregulation of Shh midline signaling by the Smoothened agonist SAG increases primitive hematopoiesis and erythrocyte development in surface fish, whereas Shh downregulation via treatment with the Smoothened inhibitor cyclopamine decreases these traits in cavefish. Together these results suggest that hematopoietic enhancement is regulated by hypoxia and Shh signaling. Lastly, we demonstrate that hypoxia enhances expression of Shh signaling along the midline of surface fish embryos. We conclude that hypoxia-mediated Shh plasticity may be a driving force for the adaptive evolution of primitive hematopoiesis and erythrocyte development in cavefish.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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