高级检索

黄河上游极边扁咽齿鱼胚胎及其早期仔鱼的发育特征

Developmental characteristics of the embryo and early larva of Platypharodon extremus in the upper reaches of the Yellow River

  • 摘要: 以黄河上游特有濒危物种极边扁咽齿鱼(Platypharodon extremus)为研究对象,系统揭示了其胚胎及早期仔鱼发育特征。研究结果表明,极边扁咽齿鱼受精卵呈淡白色,为沉性微黏性卵,成熟卵径为(1.71±0.11) mm,吸水膨胀后达(2.78±0.10) mm;在(13.1±0.58) ℃的水温条件下,胚胎发育历时207 h 59 min完成孵化,总积温为2 687.58 h·℃。其胚胎发育具3个时序特征:耳囊形成早于尾芽;肌肉效应期出现在眼晶体形成后;耳石期出现在心跳期启动后。初孵仔鱼全长为(6.60±0.21) mm,出膜7 d后完成鱼鳔充气平游,12 d后卵黄囊完全吸收并转向外源摄食。这些快速发育的适应性特征是其对高寒贫饵环境的进化响应。研究为人工繁殖、栖息地修复及气候变化下的物种保护提供科学依据,并为高原鱼类进化生态学与黄河上游生物多样性管理奠定数据基础。

     

    Abstract: This study provides a comprehensive analysis of the embryonic and early larval development of Platypharodon extremus, an endemic and endangered fish species inhabiting the upper Yellow River basin. Our experimental results demonstrate that fertilized eggs exhibit pale white coloration, demersal characteristics, and slight adhesiveness, with mature eggs measuring (1.71±0.11) mm in diameter that expand significantly to (2.78±0.10) mm after water absorption. Under controlled temperature conditions (13.1±0.58) °C, the embryonic developmental process required precisely 207 hours and 59 minutes to complete hatching, corresponding to a cumulative thermal unit of 2 687.58 h·℃. Notably, the embryonic development of Platypharodon extremus displays three distinctive sequential patterns: (1) otic vesicle formation preceded tail bud emergence; (2) lens crystallization occurred prior to muscle contraction; (3) otolith appearance followed heartbeat initiation. Newly hatched larvae measured (6.60±0.21) mm in total length, demonstrating rapid developmental progression. Critical milestones included: (1) achievement of swim bladder inflation and horizontal swimming capabilities within 7 days post-hatching (d); (2) complete absorption of yolk reserves by 12 d; (3) successful transition to exogenous feeding at 12 d. These accelerated developmental traits are interpreted as adaptive evolutionary responses to the dual challenges of low water temperatures and limited food availability characteristic of the upper Yellow River's alpine environment. The significance of this research extends beyond fundamental biological knowledge. By establishing the first detailed developmental timeline for this endangered species, the study fills critical gaps in our understanding of cold-adapted fish developmental strategies. These findings have direct implications for conservation efforts, particularly in informing: (1) the design of artificial propagation protocols; (2) habitat restoration initiatives for hydropower-affected river sections; (3) the implementation of species-specific protection measures in the context of climate change. The dataset generated provides essential baseline information for future studies on the evolutionary ecology of high-altitude fish species and contributes to the scientific foundation for sustainable management of the upper Yellow River's aquatic biodiversity.

     

/

返回文章
返回