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An indexed modeling and experimental strategy for biosignatures of pathogen and host

机译:病原体和宿主生物特征的索引建模和实验策略

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Summary form only given. In information theory, a signature is characterized by the information content as well as noise statistics of the communication channel. Biosignatures have analogous properties. A biosignature can be associated with a particular attribute of a pathogen or a host. However, the signature may be lost in backgrounds of similar or even identical signals from other sources. In this paper, we highlight statistical and signal processing challenges associated with identifying good biosignatures for pathogens in host and other environments. In some cases it may be possible to identify useful signatures of pathogens through indirect but amplified signals from the host. Discovery of these signatures requires new approaches to modeling and data interpretation. For environmental biosignal collections, it is possible to use signal processing techniques from other applications (e.g., synthetic aperture radar) to track the natural progression of microbes over large areas. We also present a computer-assisted approach to identify unique nucleic-acid based microbial signatures. Finally, an understanding of host-host-pathogen interactions would result in better detectors as well as opportunities in vaccines and therapeutics.
机译:仅提供摘要表格。在信息论中,签名的特征在于信息内容以及通信信道的噪声统计信息。生物签名具有类似的特性。生物签名可​​以与病原体或宿主的特定属性相关联。但是,在来自其他来源的相似或什至相同信号的背景中,签名可能会丢失。在本文中,我们重点介绍了与识别宿主和其他环境中病原体的良好生物特征相​​关的统计和信号处理挑战。在某些情况下,有可能通过来自宿主的间接但放大的信号来鉴定病原体的有用特征。这些签名的发现需要新的建模和数据解释方法。对于环境生物信号采集,可以使用其他应用程序(例如合成孔径雷达)的信号处理技术来跟踪微生物在大面积上的自然进程。我们还提出了一种计算机辅助方法来识别基于核酸的独特微生物签名。最后,对宿主-宿主-病原体相互作用的理解将导致更好的检测器以及疫苗和治疗剂的机会。

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