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埃及伊蚊(双翅目:蚊科)幼虫阶段的密度依赖性种内竞争:重新审视当前范式。

Density-dependent intraspecific competition in the larval stage of Aedes aegypti (Diptera: Culicidae): revisiting the current paradigm.

作者信息

Legros Mathieu, Lloyd Alun L, Huang Yunxin, Gould Fred

机构信息

Department of Entomology, North Carolina State University, Raleigh, NC 27695, USA.

出版信息

J Med Entomol. 2009 May;46(3):409-19. doi: 10.1603/033.046.0301.

Abstract

Density-dependent intraspecific competition has been considered an important determinant of the dynamics of larval stages of Aedes aegypti. A model was published in 1984 providing a mathematical description of this density dependence, based on field data, that has since been widely used. This description, however, is based on the strong assumption that all mortality is density-dependent. We re-examine the data without this premise and find a reduced importance of density dependence, as well as a different functional form. Based on these discrepancies, we emphasize that the characterization of density dependence in the larval stages of Ae. aegypti should be based on a more complete dataset, and we use artificially generated data to explore how such additional information could help developing a better description of this density dependence. We review other empirical studies on larval competition, discuss the need for further dedicated studies, and provide a few simple guidelines for the design of such studies.

摘要

密度依赖的种内竞争被认为是埃及伊蚊幼虫阶段动态变化的一个重要决定因素。1984年发表了一个模型,该模型基于实地数据对这种密度依赖性进行了数学描述,此后被广泛使用。然而,这种描述基于一个很强的假设,即所有死亡率都是密度依赖的。我们在没有这个前提的情况下重新审视这些数据,发现密度依赖性的重要性降低了,并且函数形式也有所不同。基于这些差异,我们强调埃及伊蚊幼虫阶段密度依赖性的特征描述应该基于更完整的数据集,并且我们使用人工生成的数据来探索这些额外信息如何有助于更好地描述这种密度依赖性。我们回顾了其他关于幼虫竞争的实证研究,讨论了进一步开展专门研究的必要性,并为这类研究的设计提供了一些简单的指导方针。

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本文引用的文献

1
Population dynamics.
J Am Mosq Control Assoc. 2007;23(2 Suppl):265-75. doi: 10.2987/8756-971X(2007)23[265:PD]2.0.CO;2.
2
Analyzing the control of mosquito-borne diseases by a dominant lethal genetic system.
Proc Natl Acad Sci U S A. 2007 May 29;104(22):9540-5. doi: 10.1073/pnas.0610685104. Epub 2007 May 22.
3
Late-acting dominant lethal genetic systems and mosquito control.
BMC Biol. 2007 Mar 20;5:11. doi: 10.1186/1741-7007-5-11.
5
Ecological factors influencing Aedes aegypti (Diptera: Culicidae) productivity in artificial containers in Salinas, Puerto Rico.
J Med Entomol. 2006 May;43(3):484-92. doi: 10.1603/0022-2585(2006)43[484:efiaad]2.0.co;2.
8
Insect population control using a dominant, repressible, lethal genetic system.
Science. 2000 Mar 31;287(5462):2474-6. doi: 10.1126/science.287.5462.2474.

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