TY - JOUR
T1 - Single-cell gene expression analysis reveals regulators of distinct cell subpopulations among developing human neurons
AU - Wang, Jiaxu
AU - Jenjaroenpun, Piroon
AU - Bhinge, Akshay
AU - Angarica, Vladimir Espinosa
AU - Sol, Antonio Del
AU - Nookaew, Intawat
AU - Kuznetsov, Vladimir A.
AU - Stanton, Lawrence W.
N1 - Publisher Copyright:
© 2017 Wang et al.
PY - 2017
Y1 - 2017
N2 - The stochastic dynamics and regulatory mechanisms that govern differentiation of individual human neural precursor cells (NPC) into mature neurons are currently not fully understood. Here, we used single-cell RNA-sequencing (scRNA-seq) of developing neurons to dissect/identify NPC subtypes and critical developmental stages of alternative lineage specifications. This study comprises an unsupervised, high-resolution strategy for identifying cell developmental bifurcations, tracking the stochastic transcript kinetics of the subpopulations, elucidating regulatory networks, and finding key regulators. Our data revealed the bifurcation and developmental tracks of the two NPC subpopulations, and we captured an early (24 h) transition phase that leads to alternative neuronal specifications. The consequent up-regulation and down-regulation of stage- and subpopulation-specific gene groups during the course of maturation revealed biological insights with regard to key regulatory transcription factors and lincRNAs that control cellular programs in the identified neuronal subpopulations.
AB - The stochastic dynamics and regulatory mechanisms that govern differentiation of individual human neural precursor cells (NPC) into mature neurons are currently not fully understood. Here, we used single-cell RNA-sequencing (scRNA-seq) of developing neurons to dissect/identify NPC subtypes and critical developmental stages of alternative lineage specifications. This study comprises an unsupervised, high-resolution strategy for identifying cell developmental bifurcations, tracking the stochastic transcript kinetics of the subpopulations, elucidating regulatory networks, and finding key regulators. Our data revealed the bifurcation and developmental tracks of the two NPC subpopulations, and we captured an early (24 h) transition phase that leads to alternative neuronal specifications. The consequent up-regulation and down-regulation of stage- and subpopulation-specific gene groups during the course of maturation revealed biological insights with regard to key regulatory transcription factors and lincRNAs that control cellular programs in the identified neuronal subpopulations.
UR - https://www.scopus.com/pages/publications/85041231805
U2 - 10.1101/gr.223313.117
DO - 10.1101/gr.223313.117
M3 - Article
C2 - 29030469
AN - SCOPUS:85041231805
SN - 1088-9051
VL - 27
SP - 1783
EP - 1794
JO - Genome Research
JF - Genome Research
IS - 11
ER -