Single-cell RNA sequencing deconvolutes the in vivo heterogeneity of human bone marrow-derived mesenchymal stem cells is a research paper published in International Journal of Biological Sciences (2021). On theSindex it has a DataRank of 0. It has been cited 115 times.
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NIA NIH HHS
Grant: U19 AG055373
NIGMS NIH HHS
Grant: P20 GM109036
NIA NIH HHS
Grant: R01 AG061917
NIAMS NIH HHS
Grant: R01 AR069055
National Institutes of Health
Grant: 1R01AR069055-01A1
Decoding Methylation Mediated Epigenomic Contributions to Male Osteoporosis
National Institutes of Health
Grant: 5P20GM109036-05
Tulane COBRE for Clinical and Translational Research in Cardiometabolic Diseases
National Institutes of Health
Grant: 5R01AG061917-02
Identification of Metabolomic Profiles for Sarcopenia Traits in Older Whites and Blacks
National Institutes of Health
Grant: 5U19AG055373-04
Trans-omics integration of multi-omics studies for male osteoporosis
FWCI
8.73
Citation Percentile
1.0%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Additional file 1 of Revealing the developmental origin and lineage predilection of neural progenitors within human bone marrow via single-cell analysis: implications for regenerative medicine
Additional file 1 of Revealing the developmental origin and lineage predilection of neural progenitors within human bone marrow via single-cell analysis: implications for regenerative medicine
Additional file 2 of Revealing the developmental origin and lineage predilection of neural progenitors within human bone marrow via single-cell analysis: implications for regenerative medicine
Additional file 2 of Revealing the developmental origin and lineage predilection of neural progenitors within human bone marrow via single-cell analysis: implications for regenerative medicine
Additional file 1 of Specific lipid magnetic sphere sorted CD146-positive bone marrow mesenchymal stem cells can better promote articular cartilage damage repair
Additional file 1 of Specific lipid magnetic sphere sorted CD146-positive bone marrow mesenchymal stem cells can better promote articular cartilage damage repair