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明确建模非生物和景观因素揭示了与蚜虫丰度相关的降水和森林。

Explicit modeling of abiotic and landscape factors reveals precipitation and forests associated with aphid abundance.

机构信息

Department of Zoology, University of Wisconsin-Madison, 250 N Mills St, Madison, Wisconsin, 53706, USA.

Department of Entomology, University of Wisconsin-Madison, 1630 Linden Drive, Madison, Wisconsin, 53706, USA.

出版信息

Ecol Appl. 2016 Dec;26(8):2598-2608. doi: 10.1002/eap.1418. Epub 2016 Nov 22.

Abstract

Increases in natural or noncrop habitat surrounding agricultural fields have been shown to be correlated with declines in insect crop pests. However, these patterns are highly variable across studies suggesting other important factors, such as abiotic drivers, which are rarely included in landscape models, may also contribute to variability in insect population abundance. The objective of this study was to explicitly account for the contribution of temperature and precipitation, in addition to landscape composition, on the abundance of a widespread insect crop pest, the soybean aphid (Aphis glycines Matsumura), in Wisconsin soybean fields. We hypothesized that higher soybean aphid abundance would be associated with higher heat accumulation (e.g., growing degree days) and increasing noncrop habitat in the surrounding landscape, due to the presence of the overwintering primary hosts of soybean aphid. To evaluate these hypotheses, we used an ecoinformatics approach that relied on a large dataset collected across Wisconsin over a 9-year period (2003-2011), for an average of 235 sites per year (n = 2,110 fields total). We determined surrounding landscape composition (1.5-km radius) using publicly available satellite-derived land cover imagery and interpolated daily temperature and precipitation information from the National Weather Service COOP weather station network. We constructed linear mixed models for soybean aphid abundance based on abiotic and landscape explanatory variables and applied model averaging for prediction using an information theoretic framework. Over this broad spatial and temporal extent in Wisconsin, we found that variation in growing season precipitation was positively related to soybean aphid abundance, while higher precipitation during the nongrowing season had a negative effect on aphid populations. Additionally, we found that aphid populations were higher in areas with proportionally more forest but were lower in areas where minor crops, such as small grains, were more prevalent. Thus, our findings support our hypothesis that including abiotic drivers increases our understanding of crop pest abundance and distribution. Moreover, by explicitly modeling abiotic factors, we may be able to explore how variable climate in tandem with land cover patterns may affect current and future insect populations, with potentially critical implications for crop yields and agricultural food webs.

摘要

农业田周围自然或非农作物栖息地的增加已被证明与昆虫作物害虫的减少有关。然而,这些模式在研究中高度可变,这表明其他重要因素,如非生物驱动因素,这些因素很少包含在景观模型中,也可能导致昆虫种群丰度的变化。本研究的目的是明确考虑温度和降水的贡献,除了景观组成,对广泛的昆虫作物害虫,大豆蚜虫(Aphis glycines Matsumura)在威斯康星州大豆田的丰度。我们假设,由于大豆蚜虫的越冬主要寄主的存在,较高的大豆蚜虫丰度将与较高的热积累(例如,生长度日)和周围景观中非农作物栖息地的增加有关。为了评估这些假设,我们使用了一种生态信息学方法,该方法依赖于在威斯康星州收集的一个大型数据集,该数据集在 9 年期间(2003-2011 年)收集,平均每年有 235 个地点(n=2110 个字段)。我们使用公共卫星衍生土地覆盖图像确定周围景观组成(1.5 公里半径),并从国家气象局 COOP 天气站网络中插值每日温度和降水信息。我们根据生物物理和景观解释变量构建了大豆蚜虫丰度的线性混合模型,并应用信息理论框架进行了预测的模型平均。在威斯康星州这个广泛的时空范围内,我们发现,生长季节降水的变化与大豆蚜虫的丰度呈正相关,而非生长季节降水较高则对蚜虫种群产生负面影响。此外,我们发现,蚜虫种群在森林比例较高的地区较高,但在小谷物等小作物更为普遍的地区较低。因此,我们的研究结果支持我们的假设,即包括非生物驱动因素可以增加我们对作物害虫丰度和分布的理解。此外,通过明确建模非生物因素,我们可能能够探索气候变异性与土地覆盖模式如何共同影响当前和未来的昆虫种群,这对作物产量和农业食物网可能具有至关重要的意义。

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