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Edge effects, not connectivity, determine the incidence and development of a foliar fungal plant disease

机译:边缘效应而不是连通性决定了叶真菌植物病的发生和发展

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Using a model plant-pathogen system in a large-scale habitat corridor experiment, we found that corridors do not facilitate the movement of wind-dispersed plant pathogens, that connectivity of patches does not enhance levels of foliar fungal plant disease, and that edge effects are the key drivers of plant disease dynamics. Increased spread of infectious disease is often cited as a potential negative effect of habitat corridors used in conservation, but the impacts of corridors on pathogen movement have never been tested empirically. Using sweet corn (Zea mays) and southern corn leaf blight (Cochliobolus heterostrophus) as a model plant-pathogen system, we tested the impacts of connectivity and habitat fragmentation on pathogen movement and disease development at the Savannah River Site, South Carolina, USA. Over time, less edgy patches had higher proportions of diseased plants, and distance of host plants to habitat edges was the greatest determinant of disease development. Variation in average daytime temperatures provided a possible mechanism for these disease patterns. Our results show that worries over the potentially harmful effects of conservation corridors on disease dynamics are misplaced, and that, in a conservation context, many diseases can be better managed by mitigating edge effects.
机译:在大规模栖息地走廊实验中使用模型植物-病原体系统,我们发现走廊不利于风散性植物病原体的移动,斑块的连通性不会提高叶面真菌植物病害的水平,并且存在边缘效应是植物病害动态的关键驱动力。人们通常认为传染病传播的增加是保护中使用的栖息地走廊的潜在负面影响,但是走廊对病原体运动的影响尚未经过经验检验。以甜玉米(Zea mays)和南部玉米叶枯病(Cochliobolus heterostrophus)为模型植物-病原体系统,我们在美国南卡罗来纳州萨凡纳河站点测试了连通性和生境破碎化对病原体运动和疾病发展的影响。随着时间的流逝,前锋斑块越少,患病植物的比例越高,寄主植物到生境边缘的距离是疾病发展的最大决定因素。白天平均温度的变化为这些疾病提供了可能的机制。我们的研究结果表明,人们对保护区走廊对疾病动态的潜在有害影响的担心错位了,在保护区中,通过减轻边缘效应可以更好地管理许多疾病。

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