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Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates

Cell differentiation is typically directed by external signals that drive opposing regulatory pathways. Studying differentiation under polarizing conditions, with only one input signal provided, is limited in its ability to resolve the logic of interactions between opposing pathways. Dissection of t...

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Autores principales: Antebi, Yaron E., Reich-Zeliger, Shlomit, Hart, Yuval, Mayo, Avi, Eizenberg, Inbal, Rimer, Jacob, Putheti, Prabhakar, Pe'er, Dana, Friedman, Nir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3728017/
https://www.ncbi.nlm.nih.gov/pubmed/23935451
http://dx.doi.org/10.1371/journal.pbio.1001616
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author Antebi, Yaron E.
Reich-Zeliger, Shlomit
Hart, Yuval
Mayo, Avi
Eizenberg, Inbal
Rimer, Jacob
Putheti, Prabhakar
Pe'er, Dana
Friedman, Nir
author_facet Antebi, Yaron E.
Reich-Zeliger, Shlomit
Hart, Yuval
Mayo, Avi
Eizenberg, Inbal
Rimer, Jacob
Putheti, Prabhakar
Pe'er, Dana
Friedman, Nir
author_sort Antebi, Yaron E.
collection PubMed
description Cell differentiation is typically directed by external signals that drive opposing regulatory pathways. Studying differentiation under polarizing conditions, with only one input signal provided, is limited in its ability to resolve the logic of interactions between opposing pathways. Dissection of this logic can be facilitated by mapping the system's response to mixtures of input signals, which are expected to occur in vivo, where cells are simultaneously exposed to various signals with potentially opposing effects. Here, we systematically map the response of naïve T cells to mixtures of signals driving differentiation into the Th1 and Th2 lineages. We characterize cell state at the single cell level by measuring levels of the two lineage-specific transcription factors (T-bet and GATA3) and two lineage characteristic cytokines (IFN-γ and IL-4) that are driven by these transcription regulators. We find a continuum of mixed phenotypes in which individual cells co-express the two lineage-specific master regulators at levels that gradually depend on levels of the two input signals. Using mathematical modeling we show that such tunable mixed phenotype arises if autoregulatory positive feedback loops in the gene network regulating this process are gradual and dominant over cross-pathway inhibition. We also find that expression of the lineage-specific cytokines follows two independent stochastic processes that are biased by expression levels of the master regulators. Thus, cytokine expression is highly heterogeneous under mixed conditions, with subpopulations of cells expressing only IFN-γ, only IL-4, both cytokines, or neither. The fraction of cells in each of these subpopulations changes gradually with input conditions, reproducing the continuous internal state at the cell population level. These results suggest a differentiation scheme in which cells reflect uncertainty through a continuously tuneable mixed phenotype combined with a biased stochastic decision rather than a binary phenotype with a deterministic decision.
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spelling pubmed-37280172013-08-09 Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates Antebi, Yaron E. Reich-Zeliger, Shlomit Hart, Yuval Mayo, Avi Eizenberg, Inbal Rimer, Jacob Putheti, Prabhakar Pe'er, Dana Friedman, Nir PLoS Biol Research Article Cell differentiation is typically directed by external signals that drive opposing regulatory pathways. Studying differentiation under polarizing conditions, with only one input signal provided, is limited in its ability to resolve the logic of interactions between opposing pathways. Dissection of this logic can be facilitated by mapping the system's response to mixtures of input signals, which are expected to occur in vivo, where cells are simultaneously exposed to various signals with potentially opposing effects. Here, we systematically map the response of naïve T cells to mixtures of signals driving differentiation into the Th1 and Th2 lineages. We characterize cell state at the single cell level by measuring levels of the two lineage-specific transcription factors (T-bet and GATA3) and two lineage characteristic cytokines (IFN-γ and IL-4) that are driven by these transcription regulators. We find a continuum of mixed phenotypes in which individual cells co-express the two lineage-specific master regulators at levels that gradually depend on levels of the two input signals. Using mathematical modeling we show that such tunable mixed phenotype arises if autoregulatory positive feedback loops in the gene network regulating this process are gradual and dominant over cross-pathway inhibition. We also find that expression of the lineage-specific cytokines follows two independent stochastic processes that are biased by expression levels of the master regulators. Thus, cytokine expression is highly heterogeneous under mixed conditions, with subpopulations of cells expressing only IFN-γ, only IL-4, both cytokines, or neither. The fraction of cells in each of these subpopulations changes gradually with input conditions, reproducing the continuous internal state at the cell population level. These results suggest a differentiation scheme in which cells reflect uncertainty through a continuously tuneable mixed phenotype combined with a biased stochastic decision rather than a binary phenotype with a deterministic decision. Public Library of Science 2013-07-30 /pmc/articles/PMC3728017/ /pubmed/23935451 http://dx.doi.org/10.1371/journal.pbio.1001616 Text en © 2013 Antebi et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Antebi, Yaron E.
Reich-Zeliger, Shlomit
Hart, Yuval
Mayo, Avi
Eizenberg, Inbal
Rimer, Jacob
Putheti, Prabhakar
Pe'er, Dana
Friedman, Nir
Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates
title Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates
title_full Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates
title_fullStr Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates
title_full_unstemmed Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates
title_short Mapping Differentiation under Mixed Culture Conditions Reveals a Tunable Continuum of T Cell Fates
title_sort mapping differentiation under mixed culture conditions reveals a tunable continuum of t cell fates
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3728017/
https://www.ncbi.nlm.nih.gov/pubmed/23935451
http://dx.doi.org/10.1371/journal.pbio.1001616
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