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Image Search Results
Journal: PLOS Computational Biology
Article Title: scCaT: An explainable capsulating architecture for sepsis diagnosis transferring from single-cell RNA sequencing
doi: 10.1371/journal.pcbi.1012083
Figure Lengend Snippet: Single-cell RNA-seq and bulk RNA cohorts used in this study.
Article Snippet: We collected
Techniques: Microarray, Biomarker Discovery
Journal: PLOS Computational Biology
Article Title: scCaT: An explainable capsulating architecture for sepsis diagnosis transferring from single-cell RNA sequencing
doi: 10.1371/journal.pcbi.1012083
Figure Lengend Snippet: A. Single-cell gene expression of peripheral blood mononuclear cells collected from sepsis patients and normal controls. B. Deep neural network architecture of scCaT. scCaT was constructed by blending capsule network and Transformer, and then it was trained using the gene expression of cells. C. Dynamic routing procedures of scCaT. D. Transfer learning. scCaT was transferred to subjects using bulk RNA data for fine-tune. It was evaluated and compared on independent cohorts.
Article Snippet: We collected
Techniques: Gene Expression, Construct
Journal: PLOS Computational Biology
Article Title: scCaT: An explainable capsulating architecture for sepsis diagnosis transferring from single-cell RNA sequencing
doi: 10.1371/journal.pcbi.1012083
Figure Lengend Snippet: A-B. ROC and PRC demonstrating the performance of scCaT, existing biomarkers, and traditional machine learning methods, for sepsis diagnosis from single-cell data. C-D. AUROC and AUPRC scores demonstrating the performance of scCaT and the other methods for sepsis diagnosis from microarray data. E-F. Heatmap showing the AUROC and AUPRC scores of scCaT transferred on one cohort and tested on the others.
Article Snippet: We collected
Techniques: Biomarker Discovery, Microarray
Journal: Nature Communications
Article Title: Single-cell analysis of two severe COVID-19 patients reveals a monocyte-associated and tocilizumab-responding cytokine storm
doi: 10.1038/s41467-020-17834-w
Figure Lengend Snippet: a Flowchart depicting the overall design of the study. Blood draws from patient P1 were performed at 2 time points (day 1 and day 5) and from P2 at 3 time points (day 1, day 5 and day 7). P1 on day 1 and P2 on day 1 and day 5 were positive based on a nucleic acid test of a throat swab specimen. P1 on day 5 and P2 on day 7 were negative based on a nucleic acid test of a throat swab specimen. Patients on day 1 were at the severe stage, and patients were in the remission stage on day 5 (P1 and P2); the day 7 blood draw for P2 (still in the remission stage) was performed based on a positive nucleic acid test on day 5. Note that the samples on day 1 were collected within 12 hours of tocilizumab treatment. b - d UMAP representations of integrated single-cell transcriptomes of 69,237 PBMCs, with 13,239 cells derived from our COVID-19 patients and 55,998 derived from the 10X Genomics official website . Cells are colour-coded by clusters ( b ), disease state ( c ), and sample origin ( d ). Dotted circles represent cell types with a > 5% proportion within PBMCs in ( b ), and clusters significantly enriched in patients versus controls are shown in ( c , d ). Mono, monocyte; NK, natural killer cells; mDCs, myeloid dendritic cells; pDCs, plasmacytoid dendritic cells. e Violin plots of selected marker genes (upper row) for multiple cell subpopulations. The left column presents the cell subtypes identified based on combinations of marker genes.
Article Snippet: We also used published datasets as controls or comparable data, including (1) the scRNA-seq data of
Techniques: Derivative Assay, Marker