An immune-cell signature of bacterial sepsis is a research paper published in Nature Medicine (2020). On theSindex it has a DataRank of 10.2. It has been cited 519 times, with 200 citing works in its 1-hop citation network.
Scored on demand from live citation data
Linked data & code
DataRank reads this dataset's downstream impact straight off the citation graph — no black box, no proprietary weighting. How is this computed?
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Base Score Contribution
0.938
From this paper's citation signal
Citation Network Contribution
9.2
From 200 citing papers with measurable signal
Ranked by each citer's contribution to N(p) — log1p(Cq) divided by its reference count — out of 200 citers.
U.S. Department of Health & Human Services | NIH | National Institute of Allergy and Infectious Diseases
Grant: U24AI118668
U.S. Department of Health & Human Services | National Institutes of Health
Grant: 1K08AI119157-04
U.S. Department of Health & Human Services | Biomedical Advanced Research and Development Authority
Grant: 1DSEP160030-01-00
NIAID NIH HHS
Grant: K08 AI119157
NHGRI NIH HHS
Grant: P50 HG006193
NHLBI NIH HHS
Grant: R01 HL142093
NIAID NIH HHS
Grant: U24 AI118656
NIAID NIH HHS
Grant: R56 AI137244
NHGRI NIH HHS
Grant: RM1 HG006193
Fundação para a Ciência e a Tecnologia, I.P.
Grant: PTDC/CCI-INF/6762/2020
MS3: New foundations for micro-services and serverless systems
National Institutes of Health
Grant: 5U24AI118668-03
Low-input multiplex isolation and profiling of human immune cell subsets using an integrated microfluidics device
National Institutes of Health
Grant: ADA16003001-1-0-1
Small systematic review on Naloxone guidelines for pre hospital settings for EMTs
National Institutes of Health
Grant: 1K08AI119157-01
Bioinformatic and functional analysis of antibiotic-responsive small non-coding RNAs in bacterial pathogens
Ellison Foundation
Allergan Foundation
Broad Institute
Burroughs Wellcome Fund
David P. Ryan, MD Endowed Chair in Cancer Research
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Additional file 1 of Single-cell transcriptome profiling of sepsis identifies HLA-DRlowS100Ahigh monocytes with immunosuppressive function
Additional file 1 of Single-cell transcriptome profiling of sepsis identifies HLA-DRlowS100Ahigh monocytes with immunosuppressive function
Additional file 1 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 1 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 2 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 2 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 3 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 3 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 4 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 4 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 5 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 5 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 6 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 6 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 7 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 7 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 8 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 8 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 9 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations
Additional file 9 of Regulatory role of Chitinase 3-like 1 gene in papillary thyroid carcinoma proved by integration analyses of single-cell sequencing with cohort and experimental validations