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Temperature-size rule is mediated by thermal plasticity of critical size in Drosophila melanogaster

机译:温度大小规律是由果蝇的临界大小的热可塑性介导的

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摘要

Most ectotherms show an inverse relationship between developmental temperature and body size, a phenomenon known as the temperature-size rule (TSR). Several competing hypotheses have been proposed to explain its occurrence. According to one set of views, the TSR results from inevitable biophysical effects of temperature on the rates of growth and differentiation, whereas other views suggest the TSR is an adaptation that can be achieved by a diversity of mechanisms in different taxa. Our data reveal that the fruitfly, Drosophila melanogaster, obeys the TSR using a novel mechanism: reduction in critical size at higher temperatures. In holometabolous insects, attainment of critical size initiates the hormonal cascade that terminates growth, and hence, Drosophila larvae appear to instigate the signal to stop growth at a smaller size at higher temperatures. This is in contrast to findings from another holometabolous insect, Manduca sexta, in which the TSR results from the effect of temperature on the rate and duration of growth. This contrast suggests that there is no single mechanism that accounts for the TSR. Instead, the TSR appears to be an adaptation that is achieved at a proximate level through different mechanisms in different taxa.
机译:大多数外温显示发育温度与体型之间呈反比关系,这种现象称为温度大小法则(TSR)。已经提出了几种相互竞争的假设来解释其发生。根据一组观点,TSR是由温度对生长和分化速率的不可避免的生物物理效应产生的,而其他观点则表明,TSR是一种适应性,可以通过不同分类单元中的多种机制来实现。我们的数据表明,果蝇果蝇(Drosophila melanogaster)通过一种新颖的机制服从了TSR:在更高的温度下减小临界大小。在全代谢昆虫中,达到临界大小会引发激素级联反应,从而终止生长,因此,果蝇幼虫似乎会发出信号,阻止在较高温度下以较小尺寸停止生长。这与另一种同形昆虫曼杜卡六倍体的发现相反,在后者中,温度对生长速率和持续时间的影响导致了TSR。这种对比表明,没有单一机制可以解释TSR。取而代之的是,TSR似乎是通过不同分类单元中不同机制在最近的水平上实现的一种适应。

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