Interpretable unsupervised learning enables accurate clustering with high-throughput imaging flow cytometry.


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
23 Nov 2023
Historique:
received: 26 01 2023
accepted: 04 11 2023
medline: 27 11 2023
pubmed: 24 11 2023
entrez: 23 11 2023
Statut: epublish

Résumé

A primary challenge of high-throughput imaging flow cytometry (IFC) is to analyze the vast amount of imaging data, especially in applications where ground truth labels are unavailable or hard to obtain. We present an unsupervised deep embedding algorithm, the Deep Convolutional Autoencoder-based Clustering (DCAEC) model, to cluster label-free IFC images without any prior knowledge of input labels. The DCAEC model first encodes the input images into the latent representations and then clusters based on the latent representations. Using the DCAEC model, we achieve a balanced accuracy of 91.9% for human white blood cell (WBC) clustering and 97.9% for WBC/leukemia clustering using the 3D IFC images and 3D DCAEC model. Above all, although no human recognizable features can separate the clusters of cells with protein localization, we demonstrate the fused DCAEC model can achieve a cluster balanced accuracy of 85.3% from the label-free 2D transmission and 3D side scattering images. To reveal how the neural network recognizes features beyond human ability, we use the gradient-weighted class activation mapping method to discover the cluster-specific visual patterns automatically. Evaluation results show that the automatically identified salient image regions have strong cluster-specific visual patterns for different clusters, which we believe is a stride for the interpretable neural network for cell analysis with high-throughput IFCs.

Identifiants

pubmed: 37996496
doi: 10.1038/s41598-023-46782-w
pii: 10.1038/s41598-023-46782-w
pmc: PMC10667244
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

20533

Informations de copyright

© 2023. The Author(s).

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Auteurs

Zunming Zhang (Z)

Department of Electrical and Computer Engineering, University of California, San Diego, La Jolla, CA, 92093, USA.

Xinyu Chen (X)

Department of Electrical and Computer Engineering, University of California, San Diego, La Jolla, CA, 92093, USA.

Rui Tang (R)

NanoCellect Biomedical, Inc., San Diego, CA, 92121, USA.

Yuxuan Zhu (Y)

Department of Electrical and Computer Engineering, University of California, San Diego, La Jolla, CA, 92093, USA.

Han Guo (H)

Department of Electrical and Computer Engineering, University of California, San Diego, La Jolla, CA, 92093, USA.

Yunjia Qu (Y)

Department of Bioengineering, Institute of Engineering in Medicine, University of California, San Diego, 9500 Gilman Drive, La Jolla, CA, 92093-0435, USA.

Pengtao Xie (P)

Department of Electrical and Computer Engineering, University of California, San Diego, La Jolla, CA, 92093, USA.

Ian Y Lian (IY)

Department of Biology, Lamar University, Beaumont, TX, 77710, USA.

Yingxiao Wang (Y)

Department of Bioengineering, Institute of Engineering in Medicine, University of California, San Diego, 9500 Gilman Drive, La Jolla, CA, 92093-0435, USA.

Yu-Hwa Lo (YH)

Department of Electrical and Computer Engineering, University of California, San Diego, La Jolla, CA, 92093, USA. ylo@ucsd.edu.

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Classifications MeSH