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华盛顿州西北部木乃伊浆果病管理决策支持系统的开发

Development of a Decision Support System for the Management of Mummy Berry Disease in Northwestern Washington.

作者信息

Cucak Mladen, Harteveld Dalphy O C, Wasko DeVetter Lisa, Peever Tobin L, Moral Rafael de Andrade, Mattupalli Chakradhar

机构信息

Department of Plant Pathology and Environmental Microbiology, Pennsylvania State University, State College, PA 16801, USA.

Division of Biotechnology and Plant Health, Norwegian Institute of Bioeconomy Research (NIBIO), P.O. Box 115, NO-1431 Ås, Norway.

出版信息

Plants (Basel). 2022 Aug 4;11(15):2043. doi: 10.3390/plants11152043.

Abstract

Mummy berry, caused by , is the most important disease of the northern highbush blueberry ( L.) in North America and can cause up to 70% yield losses in affected fields. A key event in the mummy berry disease cycle is the primary infection phase where ascospores are released by apothecia that infect emerging floral and vegetative tissues. Current management of mummy berry disease in northwestern Washington is predominantly reliant on the prevention of primary infections through prophylactic, calendar-based fungicide spray applications early in the growing season. To improve the understanding of risk during these periods and to help tailor management strategies, we developed a decision support system (DSS) based on field records spanning over five seasons and four locations in northwestern Washington. Environmental conditions across the region were highly uniform but different dynamics of apothecial development were observed under high- and low-management regimes. Based on our analysis, we suggest basing the initial iteration of the DSS on two sub-models. The first sub-model predicts the onset of apothecia based on chill-unit accumulation under high- and low-management regimes, and the second predicts primary infection risk, which provides opportunities to improve the timing of fungicide applications. The synoptic DSS proposed here is based on the current biological knowledge of the pathosystem and available data for the northwestern Washington region. We provide the analysis and the DSS implementation and evaluation as an open-source repository, providing opportunities for further improvements. Finally, we provide suggestions for future research and the operational efforts needed for improving the utility and accuracy of the mummy berry DSS.

摘要

僵果病由[病原体名称未给出]引起,是北美北部高丛蓝莓(Vaccinium corymbosum L.)最重要的病害,在受影响的田块中可导致高达70%的产量损失。僵果病病害循环中的一个关键事件是初次感染阶段,在此阶段,子囊盘释放的子囊孢子会感染新出现的花和营养组织。华盛顿州西北部目前对僵果病的管理主要依赖于在生长季节早期通过基于日历的预防性杀菌剂喷雾来预防初次感染。为了更好地了解这些时期的风险并帮助制定管理策略,我们基于华盛顿州西北部五个季节和四个地点的田间记录开发了一个决策支持系统(DSS)。该地区的环境条件高度一致,但在高管理和低管理模式下观察到子囊盘发育的不同动态。基于我们的分析,我们建议DSS的初始迭代基于两个子模型。第一个子模型根据高管理和低管理模式下的冷量积累预测子囊盘的出现,第二个子模型预测初次感染风险,这为改进杀菌剂施用时间提供了机会。这里提出的概要DSS基于当前病原体系的生物学知识和华盛顿州西北部的可用数据。我们将分析以及DSS的实施和评估作为一个开源存储库提供,为进一步改进提供了机会。最后,我们为未来的研究以及提高僵果病DSS的实用性和准确性所需的运营工作提供了建议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/306c/9370572/a70924fa3785/plants-11-02043-g003.jpg

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