Hedgehog signaling is required for larval muscle development and larval metamorphosis of the mussel Mytilus coruscus

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-05-13 DOI:10.1016/j.ydbio.2024.05.007
Yi Tang , Yu-Qing Wang , Ji-Yue Ni , Yue-Tong Lin , Yi-Feng Li
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Abstract

Understanding the developmental processes and signaling pathways involved in larval myogenesis and metamorphosis is crucial for comprehending the life history and adaptive strategies of marine organisms. In this study, we investigated the temporal and spatial patterns of myogenesis in the mussel Mytilus coruscus (Mc), focusing on the emergence and transformation of major muscle groups during different larval stages. We also explored the role of the Hedgehog (Hh) signaling pathway in regulating myogenesis and larval metamorphosis. The results revealed distinct developmental stages characterized by the emergence of specific muscular components, such as velum retractor muscles and anterior adductor muscles, in D-veliger and umbo larvae, which are responsible for the planktonic stage. In the pediveliger stage, posterior ventral, posterior adductor, and foot muscles appeared. After larval metamorphosis, the velum structure and its corresponding retractor muscles degenerate, indicating the transition from planktonic to benthic life. We observed a conserved pattern of larval musculature development and revealed a high degree of conservation across bivalve species, with comparable emergence times during myogenesis. Furthermore, exposure to the Hh signaling inhibitor cyclopamine impaired larval muscle development, reduced larval swimming activity, and inhibited larval metamorphosis in M. coruscus. Cyclopamine-mediated inhibition of Hh signaling led to reduced expression of four key genes within the Hh signaling pathway (McHh, McPtc, McSmo, and McGli) and the striated myosin heavy chain gene (McMHC). It is hypothesised that the abnormal larval muscle development in cyclopamine-treated groups may be an indirect effect due to disrupted McMHC expression. We provide evidence for the first time that cyclopamine treatment inhibited larval metamorphosis in bivalves, highlighting the potential involvement of Hh signaling in mediating larval muscle development and metamorphosis in M. coruscus. The present study provides insights into the dynamic nature of myogenesis and the regulatory role of the Hh signaling pathway during larval development and metamorphosis in M. coruscus. The results obtained in this study contribute to a better understanding of the evolutionary significance of Hh signaling in bivalves and shed light on the mechanisms underlying larval muscle development and metamorphosis in marine invertebrates.

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刺猬信号是贻贝幼体肌肉发育和幼体变态所必需的。
了解幼体肌肉发生和变态过程中的发育过程和信号通路对于理解海洋生物的生活史和适应策略至关重要。在这项研究中,我们研究了贻贝(Mytilus coruscus,Mc)肌肉发生的时间和空间模式,重点是不同幼体阶段主要肌肉群的出现和转变。我们还探讨了刺猬(Hh)信号通路在调控肌肉发生和幼体变态过程中的作用。研究结果表明,D-绒虎和umbo幼虫的发育阶段各不相同,其特点是出现了特定的肌肉成分,如绒毛牵开肌和前内收肌,它们负责浮游阶段。在pediveliger阶段,出现了后腹肌、后内收肌和足肌。幼虫变态后,绒毛结构及其相应的缩回肌退化,表明其已从浮游生物过渡到底栖生物。我们观察到幼体肌肉发育的保守模式,并发现不同双壳类物种的肌肉发育具有高度的保守性,在肌肉发生过程中出现的时间具有可比性。此外,暴露于Hh信号抑制剂环戊丙胺会损害角杯鲽的幼体肌肉发育,降低幼体游泳活动,并抑制幼体变态。环丙胺介导的 Hh 信号抑制导致 Hh 信号通路中的四个关键基因(McHh、McPtc、McSmo 和 McGli)以及横纹肌蛋白重链基因(McMHC)的表达减少。据推测,环丙胺处理组的幼虫肌肉发育异常可能是McMHC表达紊乱造成的间接影响。我们首次提供了环丙胺处理抑制双壳类动物幼体变态的证据,强调了 Hh 信号在介导珊瑚虫幼体肌肉发育和变态过程中的潜在参与。本研究深入揭示了珊瑚虫幼虫发育和变态过程中肌肉发生的动态性质以及 Hh 信号通路的调控作用。本研究的结果有助于更好地理解双壳类动物 Hh 信号传导的进化意义,并揭示了海洋无脊椎动物幼体肌肉发育和变态的内在机制。
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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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