首页> 外文期刊>Evolution: International Journal of Organic Evolution >REDUCTION OF THE PECTORAL SPINE AND GIRDLE IN DOMESTICATED CHANNEL CATFISH IS LIKELY CAUSED BY CHANGES IN SELECTION PRESSURE
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REDUCTION OF THE PECTORAL SPINE AND GIRDLE IN DOMESTICATED CHANNEL CATFISH IS LIKELY CAUSED BY CHANGES IN SELECTION PRESSURE

机译:选择压力的变化很可能是导致通道状卡纸中的脊椎和环带减少的原因

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Locked pectoral spines of the Channel Catfish Ictalurus punctatus more than double the fish's width and complicate ingestion by gape-limited predators. The spine mates with the pectoral girdle, a robust structure that anchors the spine. This study demonstrates that both spine and girdle exhibit negative allometric growth and that pectoral spines and girdles are lighter in domesticated than in wild Channel Catfish. This finding could be explained by changes in selection pressure for spine growth during domestication or by an epigenetic effect in which exposure to predators in wild fish stimulates pectoral growth.We tested the epigenetic hypothesis by exposing domesticated Channel Catfish fingerlings to Largemouth Bass Micropterus salmoides predators for 13 weeks. Spines and girdles grow isometrically in the fingerlings, and regression analysis indicates no difference in proportional pectoral growth between control and predator-exposed fish. Therefore a change in selection pressure likely accounts for smaller pectoral growth in domesticated Channel Catfish. Decreasing spine growth in older fish suggests anti-predator functions are most important in smaller fish. Additionally, growth of the appendicular and axial skeleton is controlled differentially, and mechanical properties of the spine and not just its length are an important component of this defensive adaptation.
机译:海峡Cat鱼Ictalurus punctatus的锁住的胸棘使鱼的宽度增加了一倍以上,并使有限的捕食者使捕食变得复杂。脊柱与胸带相交,胸带是一种牢固的结构,可固定脊柱。这项研究表明,与野生海g鱼相比,驯养的脊椎和腰带均呈现负向异形生长,而胸棘和腰带较轻。可以通过驯化过程中脊柱生长的选择压力变化或表观遗传效应(其中暴露于野生鱼中的食肉动物刺激胸腺生长)来解释这一发现。 13个星期。刺和腰带在鱼种上等距生长,回归分析表明,对照鱼和捕食性鱼类之间的比例胸腺生长没有差异。因此,选择压力的变化很可能导致驯养的Channel鱼的胸腺生长较小。年长鱼的脊柱生长速度下降表明,抗鱼肉功能在小鱼中最重要。另外,阑尾和轴向骨骼的生长受到不同的控制,并且脊柱的机械性能而不仅仅是其长度是这种防御适应的重要组成部分。

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