Understanding cell fate acquisition in stem-cell-derived pancreatic islets using single-cell multiome-inferred regulomes is a research paper published in Developmental Cell (2023). On theSindex it has a DataRank of 0.680. It has been cited 92 times.
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Base Score Contribution
0.680
From this paper's citation signal
Citation Network Contribution
0
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This paper's DataRank is currently driven only by its base citation score. Citation network data was not refreshed for this result.
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Grant: EDUC4-12804
National Institutes of Health
Grant: R01 DK068471
National Institutes of Health
Grant: U01 DK120429
National Institutes of Health
Grant: UH3 DK122639
National Institutes of Health
Grant: U01 DK105541
NIDDK NIH HHS
Grant: P30 DK063491
NIDDK NIH HHS
Grant: UG3 DK122639
NIDDK NIH HHS
Grant: R01 DK064391
Wellcome Trust
Grant: unidentified
unidentified
National Institutes of Health
Grant: 5U01DK120429-02
Single cell analysis of the human pancreas in type 1 diabetes
National Institutes of Health
Grant: 3U01DK105541-02S1
Functional Analysis of T2D Associated Non-coding SNPs
National Institutes of Health
Grant: 5R01DK068471-17
Epigenetic determinants of beta cell development and function
National Institutes of Health
Grant: 5UH3DK122639-05
A 3D vascularized islet biomimetic to model type 1 diabetes
Leona M. and Harry B. Helmsley Charitable Trust
School of Medicine, University of California, San Diego
Diabetes Research Connection
Juvenile Diabetes Research Foundation
University of California, San Diego
FWCI
26.43
Citation Percentile
1.0%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Additional file 1 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 1 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 2 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 2 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 3 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 3 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 4 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 4 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 5 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 5 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 6 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 6 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 7 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 7 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 8 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 8 of Metabolic switching, growth kinetics and cell yields in the scalable manufacture of stem cell-derived insulin-producing cells
Additional file 1 of Comparative and integrative single cell analysis reveals new insights into the transcriptional immaturity of stem cell-derived β cells
Additional file 1 of Comparative and integrative single cell analysis reveals new insights into the transcriptional immaturity of stem cell-derived β cells
Additional file 6 of Comparative and integrative single cell analysis reveals new insights into the transcriptional immaturity of stem cell-derived β cells
Additional file 4 of Comparative and integrative single cell analysis reveals new insights into the transcriptional immaturity of stem cell-derived β cells