TY - JOUR
T1 - Cell population structure prior to bifurcation predicts efficiency of directed differentiation in human induced pluripotent cells
AU - Bargaje, Rhishikesh
AU - Trachana, Kalliopi
AU - Shelton, Martin N.
AU - McGinnis, Christopher S.
AU - Zhou, Joseph X.
AU - Chadick, Cora
AU - Cook, Savannah
AU - Cavanaugh, Christopher
AU - Huang, Sui
AU - Hood, Leroy
N1 - Funding Information:
We thank Mitra Mojtahedi, Danielle Yi, and Manisha Ray for advice on single-cell qPCR experiments; and Aymeric d'Herouel, Laleh Haghverdi, Carsten Marr, and Florian Buettner for advice on diffusion maps. We also thank William Longabaugh, Leah Rommereim, Lee Rowen, Cory Funk, and Gil Omenn for critically reading the manuscript and advice. We thank the Institute for Systems Biology's Core Facilities for help with flow cytometry and single-cell qPCR and the Institute for Stem Cell & Regenerative Medicine at the University of Washington for providing access to stem cell culture facilities. This work was supported by Institute for Systems Biology-Luxembourg Center for Systems Biomedicine Strategic Partnership, National Institute of General Medical Sciences (NIGMS) Grant R01GM109964, and NIGMS National Centers for Systems Biology Grant 2P50GM076547-06A1. M.N.S. was supported, in part, by a United Negro College Fund (UNCF)-Merck Postdoctoral Science Research Fellowship.
PY - 2017/2/28
Y1 - 2017/2/28
N2 - Steering the differentiation of induced pluripotent stem cells (iPSCs) toward specific cell types is crucial for patient-specific disease modeling and drug testing. This effort requires the capacity to predict and control when and how multipotent progenitor cells commit to the desired cell fate. Cell fate commitment represents a critical state transition or "tipping point" at which complex systems undergo a sudden qualitative shift. To characterize such transitions during iPSC to cardiomyocyte differentiation, we analyzed the gene expression patterns of 96 developmental genes at single-cell resolution. We identified a bifurcation event early in the trajectory when a primitive streak-like cell population segregated into the mesodermal and endodermal lineages. Before this branching point, we could detect the signature of an imminent critical transition: increase in cell heterogeneity and coordination of gene expression. Correlation analysis of gene expression profiles at the tipping point indicates transcription factors that drive the state transition toward each alternative cell fate and their relationships with specific phenotypic readouts. The latter helps us to facilitate small molecule screening for differentiation efficiency. To this end, we set up an analysis of cell population structure at the tipping point after systematic variation of the protocol to bias the differentiation toward mesodermal or endodermal cell lineage. We were able to predict the proportion of cardiomyocytes many days before cells manifest the differentiated phenotype. The analysis of cell populations undergoing a critical state transition thus affords a tool to forecast cell fate outcomes and can be used to optimize differentiation protocols to obtain desired cell populations.
AB - Steering the differentiation of induced pluripotent stem cells (iPSCs) toward specific cell types is crucial for patient-specific disease modeling and drug testing. This effort requires the capacity to predict and control when and how multipotent progenitor cells commit to the desired cell fate. Cell fate commitment represents a critical state transition or "tipping point" at which complex systems undergo a sudden qualitative shift. To characterize such transitions during iPSC to cardiomyocyte differentiation, we analyzed the gene expression patterns of 96 developmental genes at single-cell resolution. We identified a bifurcation event early in the trajectory when a primitive streak-like cell population segregated into the mesodermal and endodermal lineages. Before this branching point, we could detect the signature of an imminent critical transition: increase in cell heterogeneity and coordination of gene expression. Correlation analysis of gene expression profiles at the tipping point indicates transcription factors that drive the state transition toward each alternative cell fate and their relationships with specific phenotypic readouts. The latter helps us to facilitate small molecule screening for differentiation efficiency. To this end, we set up an analysis of cell population structure at the tipping point after systematic variation of the protocol to bias the differentiation toward mesodermal or endodermal cell lineage. We were able to predict the proportion of cardiomyocytes many days before cells manifest the differentiated phenotype. The analysis of cell populations undergoing a critical state transition thus affords a tool to forecast cell fate outcomes and can be used to optimize differentiation protocols to obtain desired cell populations.
KW - Critical state transitions
KW - Differentiation efficiency
KW - IPSC to cardiomyocyte differentiation
KW - Prediction
KW - Single-cell analysis
UR - https://www.scopus.com/pages/publications/85014249158
U2 - 10.1073/pnas.1621412114
DO - 10.1073/pnas.1621412114
M3 - Article
C2 - 28167799
AN - SCOPUS:85014249158
SN - 0027-8424
VL - 114
SP - 2271
EP - 2276
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 9
ER -