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  Domain-Scan: Combinatorial Sero-Diagnosis of Infectious Diseases Using Machine Learning

Hada-Neeman, S., Weiss-Ottolenghi, Y., Wagner, N., Avram, O., Ashkenazy, H., Maor, Y., Sklan, E., Shcherbakov, D., Pupko, T., & Gershoni, J. (2021). Domain-Scan: Combinatorial Sero-Diagnosis of Infectious Diseases Using Machine Learning. Frontiers in immunology, 11:. doi:10.3389/fimmu.2020.619896.

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アイテムのパーマリンク: https://hdl.handle.net/21.11116/0000-000A-51D8-7 版のパーマリンク: https://hdl.handle.net/21.11116/0000-000A-51D9-6
資料種別: 学術論文

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 作成者:
Hada-Neeman, S, 著者
Weiss-Ottolenghi, Y, 著者
Wagner, N, 著者
Avram, O, 著者
Ashkenazy, H1, 著者           
Maor, Y, 著者
Sklan, EH, 著者
Shcherbakov, D, 著者
Pupko, T, 著者
Gershoni, JM, 著者
所属:
1Department Molecular Biology, Max Planck Institute for Developmental Biology, Max Planck Society, ou_3375790              

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 要旨: The presence of pathogen-specific antibodies in an individual's blood-sample is used as an indication of previous exposure and infection to that specific pathogen (e.g., virus or bacterium). Measurement of the diagnostic antibodies is routinely achieved using solid phase immuno-assays such as ELISA tests and western blots. Here, we describe a sero-diagnostic approach based on phage-display of epitope arrays we term "Domain-Scan". We harness Next-generation sequencing (NGS) to measure the serum binding to dozens of epitopes derived from HIV-1 and HCV simultaneously. The distinction of healthy individuals from those infected with either HIV-1 or HCV, is modeled as a machine-learning classification problem, in which each determinant ("domain") is considered as a feature, and its NGS read-out provides values that correspond to the level of determinant-specific antibodies in the sample. We show that following training of a machine-learning model on labeled examples, we can very accurately classify unlabeled samples and pinpoint the domains that contribute most to the classification. Our experimental/computational Domain-Scan approach is general and can be adapted to other pathogens as long as sufficient training samples are provided.

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 日付: 2021-02
 出版の状態: 出版
 ページ: -
 出版情報: -
 目次: -
 査読: -
 識別子(DOI, ISBNなど): DOI: 10.3389/fimmu.2020.619896
PMID: 33643301
 学位: -

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出版物 1

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出版物名: Frontiers in immunology
  省略形 : Front immunol
種別: 学術雑誌
 著者・編者:
所属:
出版社, 出版地: Lausanne : Frontiers Media
ページ: 14 巻号: 11 通巻号: 619896 開始・終了ページ: - 識別子(ISBN, ISSN, DOIなど): ISSN: 1664-3224
CoNE: https://pure.mpg.de/cone/journals/resource/1664-3224