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昆虫雌性个体体型大小和繁殖率的种内变异——适应的异速生长还是生物物理限制?

Intraspecific variation in body size and the rate of reproduction in female insects - adaptive allometry or biophysical constraint?

机构信息

Department of Zoology, Stockholm University, 106 91, Stockholm, Sweden.

Evolutionary Biology Centre, Uppsala University, 752 36, Uppsala, Sweden.

出版信息

J Anim Ecol. 2012 Nov;81(6):1244-1258. doi: 10.1111/j.1365-2656.2012.02010.x. Epub 2012 Jun 15.

DOI:10.1111/j.1365-2656.2012.02010.x
PMID:22702372
Abstract
  1. A high rate of reproduction may be costly if ecological factors limit immediate reproductive output as a fast metabolism compromises own future survival. Individuals with more reserves need more time and opportunity to realize their reproductive potential. Theory therefore predicts that the reproductive rate, defined as the investment in early reproduction in proportion to total potential, should decrease with body size within species. 2. However, metabolic constraints on body size- and temperature-dependent biological rates may impede biophysical adaptation. Furthermore, the sequential manner resources that are allocated to somatic vs. reproductive tissue during ontogeny may, when juveniles develop in unpredictable environments, further contribute to non-adaptive variation in adult reproductive rates. 3. With a model on female egg laying in insects, we demonstrate how variation in body reserves is predicted to affect reproductive rate under different ecological scenarios. Small females always have higher reproductive rates but shorter lifespans. However, incorporation of female host selectivity leads to more similar reproductive rates among female size classes, and oviposition behaviour is predicted to co-evolve with reproductive rate, resulting in small females being more selective in their choice and gaining relatively more from it. 4. We fed simulations with data on the butterfly Pararge aegeria to compare model predictions with reproductive rates of wild butterflies. However, simulated reproductive allometry was a poor predictor of that observed. Instead, reproductive rates were better explained as a product of metabolic constraints on rates of egg maturation, and an empirically derived positive allometry between reproductive potential and size. However, fitness is insensitive to moderate deviations in reproductive rate when oviposition behaviour is allowed to co-evolve in the simulations, suggesting that behavioural compensation may mitigate putative metabolic and developmental constraints. 5. More work is needed to understand how physiology and development together with compensatory behaviours interact in shaping reproductive allometry. Empirical studies should evaluate adaptive hypotheses against proper null hypotheses, including prediction from metabolic theory, preferentially by studying reproductive physiology in combination with behaviour. Conversely, inferences of constraint explanations on reproductive rates must take into consideration that adaptive scenarios may predict similar allometric exponents.
摘要
  1. 如果生态因素限制了即时生殖输出,因为快速新陈代谢会危及自身未来的生存,那么高繁殖率可能代价高昂。拥有更多储备的个体需要更多的时间和机会来实现其生殖潜力。因此,理论预测,生殖率(定义为早期繁殖投资与总潜力的比例)应随物种内的体型而减小。

  2. 然而,新陈代谢对体型和温度依赖的生物率的限制可能会阻碍生物物理适应。此外,在个体发育过程中,资源分配给躯体组织与生殖组织的顺序方式可能会导致,当幼体在不可预测的环境中发育时,进一步导致成年生殖率的非适应性变异。

  3. 通过昆虫雌性产卵的模型,我们展示了在不同的生态情景下,个体的体型储备变化如何预测对生殖率的影响。小雌性总是有更高的生殖率,但寿命更短。然而,雌性宿主选择性的纳入会导致不同体型类别的雌性之间生殖率更加相似,并且产卵行为被预测会与生殖率共同进化,导致小雌性在选择时更加具有选择性,并从中相对获得更多收益。

  4. 我们用蝴蝶 Pararge aegeria 的数据来模拟喂食,以将模型预测与野生蝴蝶的生殖率进行比较。然而,模拟生殖的异速生长是对观察到的生殖率的一个较差预测。相反,生殖率更好地解释为卵成熟率的新陈代谢限制的产物,以及生殖潜力与体型之间的经验衍生的正异速生长。然而,当允许在模拟中共同进化产卵行为时,适应性适中偏离生殖率对适应度不敏感,这表明行为补偿可能减轻潜在的新陈代谢和发育限制。

  5. 需要更多的工作来理解生理学和发育如何与补偿行为一起塑造生殖的异速生长。实证研究应根据代谢理论的预测,优先通过研究生殖生理学与行为相结合,来评估适应性假设对适当的零假设的作用。相反,对生殖率的约束解释的推断必须考虑到适应性情景可能预测相似的异速生长指数。

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