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This SuperSeries is composed of the SubSeries listed below. Refer to individual Series
ORGANISM(S): Mus musculus 
Recent advances in direct reprogramming using cell type-specific transcription factors provide an unprecedented opportunity for rapid generation of desired human cell types from easily accessible tissues. However, due to the diversity of conversion factors that facilitate the process, an arduous scr...
ORGANISM(S): Homo sapiens 
Cellular reprogramming using chemically defined conditions, without genetic manipulation, is a promising approach for generating clinically relevant cell types for regenerative medicine and drug discovery. However, small molecule-driven approaches for inducing lineage-specific stem cells from somati...
ORGANISM(S): Mus musculus 
Cardiomyocyte-like cells can be reprogrammed from somatic fibroblasts by overexpression of cardiac genes, providing a new avenue for cardiac regenerative therapy. Here we report an alternative approach in which functional cardiomyocytes can be rapidly and efficiently generated from human fibroblasts...
ORGANISM(S): Homo sapiens 
Cardiomyocyte-like cells can be reprogrammed from somatic fibroblasts by combinations of genes, providing a new avenue for cardiac regenerative therapy. Here we show that functional cardiomyocytes can be rapidly and efficiently generated from human fibroblasts by specific combination small molecules...
ORGANISM(S): Homo sapiens 
Cellular reprogramming using chemically defined conditions, without genetic manipulation, is a promising approach for generating clinically relevant cell types for regenerative medicine and drug discovery. However, small molecule-driven approaches for inducing lineage-specific stem cells from somati...
ORGANISM(S): Mus musculus 
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