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降水变化加剧或逆转了温度对蚜虫扩散的影响。

Precipitation change accentuates or reverses temperature effects on aphid dispersal.

机构信息

Department of Entomology and Wildlife Ecology, University of Delaware, Newark, Delaware, USA.

United States Department of Agriculture-Agricultural Research Service, Urbana, Illinois, USA.

出版信息

Ecol Appl. 2022 Jul;32(5):e2593. doi: 10.1002/eap.2593. Epub 2022 Apr 28.

Abstract

Global temperatures are generally increasing, and this is leading to a well documented advancement and extension of seasonal activity of many pest insects. Effects of changing precipitation have received less attention, but might be complex because rain and snow are increasing in some places but decreasing in others. This raises the possibility that altered precipitation could accentuate, or even reverse, the effects of rising temperatures on pest outbreaks. We used >592 K aphid suction-trap captures over 15 years, in the heavily farmed central USA, to examine how the activity of Aphis glycines (soybean aphid), Rhopalosiphum maidis (corn aphid), and Rhopalosiphum padi (bird cherry-oat aphid) changed with variation in both temperature and precipitation. Increasing precipitation caused late-season flight activity of A. glycines and early-season activity of R. padi to shift earlier, while increasing temperature did the same for early-season activity of A. glycines and R. maidis. In these cases, precipitation and temperature exhibited directionally similar, but independent, effects. However, precipitation sometimes mediated temperature effects in complex ways. At relatively low temperatures, greater precipitation generally caused late-season flights of R. maidis to occur earlier. However, this pattern was reversed at higher temperatures with precipitation delaying late-season activity. In contrast, greater precipitation delayed peak flights of R. padi at lower temperatures, but caused them to occur earlier at higher temperatures. So, in these two cases the interactive effects of precipitation on temperature were mirror images of one another. When projecting future aphid flight phenology, models that excluded precipitation covariates consistently underpredicted the degree of phenological advance for A. glycines and R. padi, and underpredicted the degree of phenological delay for R. maidis under expected future climates. Overall, we found broad evidence that changing patterns of aphid flight phenology could only be understood by considering both temperature and precipitation changes. In our study region, temperature and precipitation are expected to increase in tandem, but these correlations will be reversed elsewhere. This reinforces the need to include both main and interactive effects of precipitation and temperature when seeking to accurately predict how pest pressure will change with a changing climate.

摘要

全球气温普遍升高,这导致许多害虫的季节性活动明显提前和延长。降水变化的影响受到的关注较少,但可能很复杂,因为有些地方的雨和雪在增加,而有些地方在减少。这增加了降水变化可能会加剧甚至逆转气温升高对虫害爆发影响的可能性。我们使用了超过 592000 个蚜虫诱捕器在 15 年以上的时间里的捕获数据,在美国中部这个农业发达的地区,研究了大豆蚜、玉米蚜和禾谷缢管蚜的活动如何随温度和降水的变化而变化。降水增加导致大豆蚜的后期飞行活动和禾谷缢管蚜的早期活动更早发生,而温度增加则使玉米蚜和大豆蚜的早期活动更早发生。在这些情况下,降水和温度表现出方向相似但独立的影响。然而,降水有时以复杂的方式调节温度的影响。在相对较低的温度下,较大的降水通常会使玉米蚜的后期飞行更早发生。然而,在较高的温度下,这种模式会发生逆转,降水会延迟后期活动。相比之下,较高的降水会延迟禾谷缢管蚜在较低温度下的高峰期飞行,但会使它们在较高温度下更早发生。因此,在这两种情况下,降水对温度的交互影响是相互镜像的。在预测未来蚜虫飞行物候时,排除降水协变量的模型始终低估了大豆蚜和禾谷缢管蚜物候提前的程度,并且低估了玉米蚜物候延迟的程度,预计在未来气候下。总的来说,我们发现了广泛的证据表明,只有考虑到温度和降水的变化,才能理解蚜虫飞行物候的变化模式。在我们的研究区域,温度和降水预计将同步增加,但在其他地方,这些相关性将被逆转。这加强了在寻求准确预测气候变化下害虫压力将如何变化时,需要同时考虑降水和温度的主要和交互影响。

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