Literature DB >> 35653572

Accurate virus identification with interpretable Raman signatures by machine learning.

Jiarong Ye1, Yin-Ting Yeh2, Yuan Xue3, Ziyang Wang4, Na Zhang2, He Liu2, Kunyan Zhang4, RyeAnne Ricker5,6, Zhuohang Yu2, Allison Roder6, Nestor Perea Lopez2, Lindsey Organtini7, Wallace Greene8, Susan Hafenstein7, Huaguang Lu9, Elodie Ghedin6, Mauricio Terrones2, Shengxi Huang4, Sharon Xiaolei Huang1.   

Abstract

Rapid identification of newly emerging or circulating viruses is an important first step toward managing the public health response to potential outbreaks. A portable virus capture device, coupled with label-free Raman spectroscopy, holds the promise of fast detection by rapidly obtaining the Raman signature of a virus followed by a machine learning (ML) approach applied to recognize the virus based on its Raman spectrum, which is used as a fingerprint. We present such an ML approach for analyzing Raman spectra of human and avian viruses. A convolutional neural network (CNN) classifier specifically designed for spectral data achieves very high accuracy for a variety of virus type or subtype identification tasks. In particular, it achieves 99% accuracy for classifying influenza virus type A versus type B, 96% accuracy for classifying four subtypes of influenza A, 95% accuracy for differentiating enveloped and nonenveloped viruses, and 99% accuracy for differentiating avian coronavirus (infectious bronchitis virus [IBV]) from other avian viruses. Furthermore, interpretation of neural net responses in the trained CNN model using a full-gradient algorithm highlights Raman spectral ranges that are most important to virus identification. By correlating ML-selected salient Raman ranges with the signature ranges of known biomolecules and chemical functional groups—for example, amide, amino acid, and carboxylic acid—we verify that our ML model effectively recognizes the Raman signatures of proteins, lipids, and other vital functional groups present in different viruses and uses a weighted combination of these signatures to identify viruses.

Entities:  

Keywords:  Raman spectroscopy; interpretable machine learning; virus identification

Mesh:

Year:  2022        PMID: 35653572      PMCID: PMC9191668          DOI: 10.1073/pnas.2118836119

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   12.779


  23 in total

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8.  Ultra-fast and onsite interrogation of Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) in waters via surface enhanced Raman scattering (SERS).

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10.  A rapid and label-free platform for virus capture and identification from clinical samples.

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Journal:  Proc Natl Acad Sci U S A       Date:  2019-12-27       Impact factor: 11.205

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  2 in total

1.  Accurate virus identification with interpretable Raman signatures by machine learning.

Authors:  Jiarong Ye; Yin-Ting Yeh; Yuan Xue; Ziyang Wang; Na Zhang; He Liu; Kunyan Zhang; RyeAnne Ricker; Zhuohang Yu; Allison Roder; Nestor Perea Lopez; Lindsey Organtini; Wallace Greene; Susan Hafenstein; Huaguang Lu; Elodie Ghedin; Mauricio Terrones; Shengxi Huang; Sharon Xiaolei Huang
Journal:  Proc Natl Acad Sci U S A       Date:  2022-06-02       Impact factor: 12.779

2.  Engineered 2D materials for optical bioimaging and path toward therapy and tissue engineering.

Authors:  Jeewan C Ranasinghe; Arpit Jain; Wenjing Wu; Kunyan Zhang; Ziyang Wang; Shengxi Huang
Journal:  J Mater Res       Date:  2022-05-20       Impact factor: 2.909

  2 in total

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