Epigenetic signature and key transcriptional regulators of human antigen-specific type 1 regulatory T cells
Cepika, A.-M.; Amaya, L.; Waichler, C.; Narula, M.; Mantilla, M. M.; Thomas, B. C.; Chen, P. P.; Freeborn, R. A.; Pavel-Dinu, M.; Nideffer, J.; Porteus, M.; Bacchetta, R.; Mueller, F.; Greenleaf, W. J.; Chang, H. Y.; Roncarolo, M. G.
Show abstract
Human adaptive immunity is orchestrated by effector and regulatory T (Treg) cells. Natural Tregs arise in the thymus where they are shaped to recognize self-antigens, while type 1 Tregs or Tr1 cells are induced from conventional peripheral CD4+ T cells in response to peripheral antigens, such as alloantigens and allergens. Tr1 cells have been developed as a potential therapy for inducing antigen-specific tolerance, because they can be rapidly differentiated in vitro in response to a target antigen. However, the epigenetic landscape and the identity of transcription factors (TFs) that regulate differentiation, phenotype, and functions of human antigen-specific Tr1 cells is largely unknown, hindering Tr1 research and broader clinical development. Here, we reveal the unique epigenetic signature of antigen-specific Tr1 cells, and TFs that regulate their differentiation, phenotype and function. We showed that in vitro induced antigen-specific Tr1 cells are distinct both clonally and transcriptionally from natural Tregs and other conventional CD4+ T cells on a single-cell level. An integrative analysis of Tr1 cell epigenome and transcriptome identified a TF signature unique to antigen-specific Tr1 cells, and predicted that IRF4, BATF, and MAF act as their transcriptional regulators. Using functional genomics, we showed that each of these TFs play a non-redundant role in regulating Tr1 cell differentiation, suppressive function, and expression of co-inhibitory and cytotoxic proteins. By using the Tr1-specific TF signature as a molecular fingerprint, we tracked Tr1 cells in peripheral blood of recipients of allogeneic hematopoietic stem cell transplantation treated with adoptive Tr1 cell therapy. Furthermore, the same signature identified Tr1 cells in resident CD4+ T cells in solid tumors. Altogether, these results reveal the epigenetic signature and the key transcriptional regulators of human Tr1 cells. These data will guide mechanistic studies of human Tr1 cell biology and the development and optimization of adoptive Tr1 cell therapies.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Two-Stage CD8+ CAR T-Cell Differentiation in Patients with Large B-Cell Lymphoma 98%
- APMAT analysis reveals the association between CD8 T cell receptors, cognate antigen, and T cell phenotype and persistence 97%
- Expression of terminal deoxynucleotidyl transferase (TdT) identifies lymphoid-primed progenitors in human bone marrow 97%
Similar papers in this journal
- High-Throughput and High-Dimensional Single Cell Analysis of Antigen-Specific CD8+ T cells 97%
- Pan-cancer profiling of tumor-infiltrating natural killer cells through transcriptional reference mapping 97%
- Stepwise chromatin and transcriptional acquisition of an intraepithelial lymphocyte program 97%
Similar papers in this journal
- Defining the cellular origin of seminoma by transcriptional and epigenetic mapping to the normal human germline 96%
- RNA Splicing Junction Landscape Reveals Abundant Tumor-Specific Transcripts in Human Cancer 96%
- Interrogation of cancer gene dependencies reveals novel paralog interactions of autosome and sexchromosome encoded genes 96%
Similar papers in this journal
- Chromatin conformation dynamics during CD4+ T cell activation implicates autoimmune disease-associated genes and regulatory elements 97%
- Patient-derived xenografts and single-cell sequencing identifies three subtypes of tumor-reactive lymphocytes in uveal melanoma metastases 97%
- Human thymopoiesis produces polyspecific CD8+ alfa/beta T cells responding to multiple viral antigens 97%
Similar papers in this journal
- Single-cell immune profiling reveals novel thymus-seeding populations, T cell commitment, and multi-lineage development in the human thymus 98%
- Quality of vaccination-induced T cell responses is conveyed by polyclonality and high, but not maximum, antigen receptor avidity 97%
- A fetal wave of human type-3 γδ T cells with restricted TCR diversity persists into adulthood 97%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.