Cargando…

CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3

Regulatory T cells (Tregs) are required to control immune responses and maintain homeostasis, but are a significant barrier to anti-tumor immunity(1). Conversely, Treg instability, characterized by loss of the master transcription factor Foxp3 and acquisition of pro-inflammatory properties(2), can p...

Descripción completa

Detalles Bibliográficos
Autores principales: Cortez, Jessica T., Montauti, Elena, Shifrut, Eric, Gatchalian, Jovylyn, Zhang, Yusi, Shaked, Oren, Xu, Yuanming, Roth, Theodore L., Simeonov, Dimitre R., Zhang, Yana, Chen, Siqi, Li, Zhongmei, Woo, Jonathan M., Ho, Josephine, Vogel, Ian A., Prator, Grace Y., Zhang, Bin, Lee, Youjin, Sun, Zhaolin, Ifergan, Igal, Van Gool, Frédéric, Hargreaves, Diana C., Bluestone, Jeffrey A., Marson, Alexander, Fang, Deyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7305989/
https://www.ncbi.nlm.nih.gov/pubmed/32499641
http://dx.doi.org/10.1038/s41586-020-2246-4
_version_ 1783548572238610432
author Cortez, Jessica T.
Montauti, Elena
Shifrut, Eric
Gatchalian, Jovylyn
Zhang, Yusi
Shaked, Oren
Xu, Yuanming
Roth, Theodore L.
Simeonov, Dimitre R.
Zhang, Yana
Chen, Siqi
Li, Zhongmei
Woo, Jonathan M.
Ho, Josephine
Vogel, Ian A.
Prator, Grace Y.
Zhang, Bin
Lee, Youjin
Sun, Zhaolin
Ifergan, Igal
Van Gool, Frédéric
Hargreaves, Diana C.
Bluestone, Jeffrey A.
Marson, Alexander
Fang, Deyu
author_facet Cortez, Jessica T.
Montauti, Elena
Shifrut, Eric
Gatchalian, Jovylyn
Zhang, Yusi
Shaked, Oren
Xu, Yuanming
Roth, Theodore L.
Simeonov, Dimitre R.
Zhang, Yana
Chen, Siqi
Li, Zhongmei
Woo, Jonathan M.
Ho, Josephine
Vogel, Ian A.
Prator, Grace Y.
Zhang, Bin
Lee, Youjin
Sun, Zhaolin
Ifergan, Igal
Van Gool, Frédéric
Hargreaves, Diana C.
Bluestone, Jeffrey A.
Marson, Alexander
Fang, Deyu
author_sort Cortez, Jessica T.
collection PubMed
description Regulatory T cells (Tregs) are required to control immune responses and maintain homeostasis, but are a significant barrier to anti-tumor immunity(1). Conversely, Treg instability, characterized by loss of the master transcription factor Foxp3 and acquisition of pro-inflammatory properties(2), can promote autoimmunity and/or facilitate more effective tumor immunity(3,4). A comprehensive understanding of the pathways that regulate Foxp3 could lead to more effective Treg therapies for autoimmune disease and cancer. Despite improved functional genetic tools that now allow for systematic interrogation, dissection of the gene regulatory programs that modulate Foxp3 expression has not yet been reported. In this study, we developed a CRISPR-based pooled screening platform for phenotypes in primary mouse Tregs and applied this technology to perform a targeted loss-of-function screen of ~490 nuclear factors to identify gene regulatory programs that promote or disrupt Foxp3 expression. We discovered several novel modulators including ubiquitin-specific peptidase 22 (Usp22) and ring finger protein 20 (Rnf20). Usp22, a member of the deubiquitination module of the SAGA chromatin modifying complex, was discovered to be a positive regulator that stabilized Foxp3 expression; whereas the screen suggested Rnf20, an E3 ubiquitin ligase, can serve as a negative regulator of Foxp3. Treg-specific ablation of Usp22 in mice reduced Foxp3 protein and created defects in their suppressive function that led to spontaneous autoimmunity but protected against tumor growth in multiple cancer models. Foxp3 destabilization in Usp22-deficient Tregs could be rescued by ablation of Rnf20, revealing a reciprocal ubiquitin switch in Tregs. These results reveal novel modulators of Foxp3 and demonstrate a screening method that can be broadly applied to discover new targets for Treg immunotherapies for cancer and autoimmune disease.
format Online
Article
Text
id pubmed-7305989
institution National Center for Biotechnology Information
language English
publishDate 2020
record_format MEDLINE/PubMed
spelling pubmed-73059892020-10-29 CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3 Cortez, Jessica T. Montauti, Elena Shifrut, Eric Gatchalian, Jovylyn Zhang, Yusi Shaked, Oren Xu, Yuanming Roth, Theodore L. Simeonov, Dimitre R. Zhang, Yana Chen, Siqi Li, Zhongmei Woo, Jonathan M. Ho, Josephine Vogel, Ian A. Prator, Grace Y. Zhang, Bin Lee, Youjin Sun, Zhaolin Ifergan, Igal Van Gool, Frédéric Hargreaves, Diana C. Bluestone, Jeffrey A. Marson, Alexander Fang, Deyu Nature Article Regulatory T cells (Tregs) are required to control immune responses and maintain homeostasis, but are a significant barrier to anti-tumor immunity(1). Conversely, Treg instability, characterized by loss of the master transcription factor Foxp3 and acquisition of pro-inflammatory properties(2), can promote autoimmunity and/or facilitate more effective tumor immunity(3,4). A comprehensive understanding of the pathways that regulate Foxp3 could lead to more effective Treg therapies for autoimmune disease and cancer. Despite improved functional genetic tools that now allow for systematic interrogation, dissection of the gene regulatory programs that modulate Foxp3 expression has not yet been reported. In this study, we developed a CRISPR-based pooled screening platform for phenotypes in primary mouse Tregs and applied this technology to perform a targeted loss-of-function screen of ~490 nuclear factors to identify gene regulatory programs that promote or disrupt Foxp3 expression. We discovered several novel modulators including ubiquitin-specific peptidase 22 (Usp22) and ring finger protein 20 (Rnf20). Usp22, a member of the deubiquitination module of the SAGA chromatin modifying complex, was discovered to be a positive regulator that stabilized Foxp3 expression; whereas the screen suggested Rnf20, an E3 ubiquitin ligase, can serve as a negative regulator of Foxp3. Treg-specific ablation of Usp22 in mice reduced Foxp3 protein and created defects in their suppressive function that led to spontaneous autoimmunity but protected against tumor growth in multiple cancer models. Foxp3 destabilization in Usp22-deficient Tregs could be rescued by ablation of Rnf20, revealing a reciprocal ubiquitin switch in Tregs. These results reveal novel modulators of Foxp3 and demonstrate a screening method that can be broadly applied to discover new targets for Treg immunotherapies for cancer and autoimmune disease. 2020-04-29 2020-06 /pmc/articles/PMC7305989/ /pubmed/32499641 http://dx.doi.org/10.1038/s41586-020-2246-4 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Cortez, Jessica T.
Montauti, Elena
Shifrut, Eric
Gatchalian, Jovylyn
Zhang, Yusi
Shaked, Oren
Xu, Yuanming
Roth, Theodore L.
Simeonov, Dimitre R.
Zhang, Yana
Chen, Siqi
Li, Zhongmei
Woo, Jonathan M.
Ho, Josephine
Vogel, Ian A.
Prator, Grace Y.
Zhang, Bin
Lee, Youjin
Sun, Zhaolin
Ifergan, Igal
Van Gool, Frédéric
Hargreaves, Diana C.
Bluestone, Jeffrey A.
Marson, Alexander
Fang, Deyu
CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3
title CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3
title_full CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3
title_fullStr CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3
title_full_unstemmed CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3
title_short CRISPR Screen in Regulatory T Cells Reveals Modulators of Foxp3
title_sort crispr screen in regulatory t cells reveals modulators of foxp3
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7305989/
https://www.ncbi.nlm.nih.gov/pubmed/32499641
http://dx.doi.org/10.1038/s41586-020-2246-4
work_keys_str_mv AT cortezjessicat crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT montautielena crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT shifruteric crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT gatchalianjovylyn crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT zhangyusi crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT shakedoren crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT xuyuanming crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT roththeodorel crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT simeonovdimitrer crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT zhangyana crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT chensiqi crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT lizhongmei crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT woojonathanm crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT hojosephine crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT vogeliana crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT pratorgracey crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT zhangbin crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT leeyoujin crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT sunzhaolin crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT iferganigal crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT vangoolfrederic crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT hargreavesdianac crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT bluestonejeffreya crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT marsonalexander crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3
AT fangdeyu crisprscreeninregulatorytcellsrevealsmodulatorsoffoxp3