Lipid Mediated Regulation of Adult Stem Cell Behavior is a research paper published in Frontiers in Cell and Developmental Biology (2020). On theSindex it has a DataRank of 0. It has been cited 97 times.
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National Institutes of Health
Grant: AG02892
National Institutes of Health
Grant: DK105422
NIGMS NIH HHS
Grant: R01 GM135767
NIA NIH HHS
Grant: R01 AG028092
NIDDK NIH HHS
Grant: R01 DK105442
National Institutes of Health
Grant: 5R01AG028092-09
Characterization of Age-Related Changes in Stem Cell Behavior
National Institutes of Health
Grant: 1R01DK105442-01A1
Regulation of intestinal stem cell behavior by occluding junctions
Fields of Study
Keywords
Sustainable Development Goals
Additional file 1 of Myoglobin expression by alternative transcript in different mesenchymal stem cells compartments
Additional file 1 of Myoglobin expression by alternative transcript in different mesenchymal stem cells compartments
Additional file 1 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
Additional file 1 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
Additional file 2 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
Additional file 2 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
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Additional file 10 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
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Additional file 8 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
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Additional file 7 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
Additional file 4 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
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Additional file 6 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
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Additional file 3 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
Additional file 8 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
Additional file 5 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression
Additional file 5 of Transcription factor E4F1 dictates spermatogonial stem cell fate decisions by regulating mitochondrial functions and cell cycle progression