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A method to increase efficiency in testing pooled field-collected mosquitoes.

机译:一种提高测试池中收集的蚊子效率的方法。

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Testing field-caught mosquito collections can result in thousands of pools, and testing pools of 50 mosquitoes each can be both time consuming and cost prohibitive. Consequently, we have developed an alternative approach to testing mosquito pools for arboviruses, utilizing a superpool strategy. When mosquito samples are processed for extraction of viral RNA and subsequent virus testing via quantitative real-time polymerase chain reaction, each pool is tested individually. Using the method described here, 0.025 ml from each of 10 pools is combined into a superpool for RNA extraction and testing. When a virus-positive superpool sample is found, each of the original 10 pools that constitute this sample is tested individually in order to find the specific positive sample. By retesting the original samples after the initial superpool screen, we are still able to obtain reliable estimates for minimum infection rates or maximum likelihood estimations. To test this principle, we created controlled mosquito pools of known titer and subjected them to our superpool process. We were able to detect our entire range of laboratory-created pools as being West Nile virus (WNV) positive. In 2005, field surveillance efforts from our laboratory resulted in over 4,000 mosquito pools tested, with 8 resulting WNV-positive samples. We found that all of these field samples were detected as WNV positive using the superpool method and contained calculated virus titers from < 0.1 to 4.1 log10 plaque-forming units/ml WNV, indicating that the limit of superpool detection of WNV is below this point. These results reveal that the superpool method could be accurately used to detect WNV in field-collected specimens.
机译:对现场捕获的蚊子进行测试可能会导致成千上万个蚊子池,而每个50个蚊子的测试池既费时又费钱。因此,我们开发了一种替代方法,利用超级池策略来测试蚊虫池中的虫媒病毒。当蚊子样本经过处理以提取病毒RNA并通过定量实时聚合酶链反应进行随后的病毒测试时,将分别测试每个库。使用此处描述的方法,将来自10个池中每个池的0.025 ml合并到一个超级池中,以进行RNA提取和测试。当发现病毒阳性超级池样品时,构成该样品的原始10个库中的每一个都将进行单独测试,以找到特定的阳性样品。通过在初始超级池筛选后重新测试原始样本,我们仍然能够获得最小感染率或最大似然估计的可靠估计。为了测试该原理,我们创建了已知效价的受控蚊帐,并对其进行了超池处理。我们能够检测到整个实验室创建的库都是西尼罗河病毒(WNV)阳性。 2005年,我们实验室的现场监视工作共测试了4,000多个蚊帐,并生成了8个WNV阳性样本。我们发现,使用超级池方法将所有这些野外样品检测为WNV阳性,并且计算出的病毒滴度范围为<0.1至4.1 log10噬菌斑形成单位/ ml WNV,这表明WNV的超级池检测极限低于此点。这些结果表明,超级池法可以准确地用于检测野外采集标本中的西尼罗病毒。

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