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Effects of temperature variation on TSD in turtle (C. picta) populations

机译:温度变化对乌龟(C. picta)种群TSD的影响

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We formulate a two-sex model of temperature-dependent sex determination (TSD) for a freshwater turtle (C. picta) population. The aim is to understand how environmental temperature variations and nest heat conduction properties affect the long term dynamics of the population. This is a key to understanding how global temperature changes may affect their survival. With stochastic inputs of ambient temperature and solar radiation, the model uses the heat equation to determine the temperature in the egg layer in the nest; in turn, this determines the sex ratio in the egg clutch using a variable degree-day model. Finally, a nonlinear Leslie type, stage-based, two-sex model, is used to determine the long term male and female populations. A two-sex model is required because of different development rates for males and females. The model is flexible enough to enable other researchers to examine the effects of temperature variation variations on other species with TSD, e.g., crocodilians, reptilians, as well as other turtle species. It can be adapted to study effects of nest location, soil type, rain events, different incubation periods, and density effects, for example, the dependence of the mating function on the ratio of males to females and each's contribution to the sex of hatchlings. Modifications can be easily made to fit a specific life history traits. The model is a beginning step in understanding the long term, high fitness shown by many reptile species with TSD, and it may suggest to experimentalists what data may be relevant to these issues; it can also be useful to wildlife managers in developing strategies for intervention if needed. Among the principal findings are that temperature variability and detailed nest heat conduction properties may buffer projected negative effects on a population.
机译:我们为淡水龟(C. picta)种群制定了温度依赖性别确定(TSD)的两性模型。目的是了解环境温度变化和巢式热传导特性如何影响种群的长期动态。这是了解全球温度变化如何影响其生存的关键。在随机输入环境温度和太阳辐射的情况下,该模型使用热量方程式确定蛋巢中蛋层的温度。反过来,这将使用可变度数日模型确定蛋形离合器中的性别比。最后,使用非线性莱斯利类型,基于阶段的两性别模型来确定长期的男性和女性人口。由于男性和女性的发育速度不同,因此需要两性别模型。该模型具有足够的灵活性,可以使其他研究人员研究温度变化对其他具有TSD的物种的影响,例如鳄鱼,爬行动物以及其他海龟物种。它可以用于研究巢的位置,土壤类型,降雨事件,不同的潜伏期和密度效应的影响,例如,交配功能对雄性与雌性比例的依赖性以及每种对孵化性别的影响。可以很容易地进行修改以适合特定的生活史特征。该模型是了解许多具有TSD的爬行动物物种所表现出的长期,高适应性的开始,它可能会向实验人员建议哪些数据可能与这些问题有关。如果需要,它对于野生动植物管理者制定干预策略也很有用。主要发现包括温度变异性和详细的巢状导热特性可以缓冲预计的对种群的负面影响。

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