bioRxiv Science⌕ Search

Biology subjects

Mavers, M.

Publications and source records attributed to Mavers, M..

2 recordsLinked to original sources

Single cell resolution analysis of multi-tissue derived human iNKT cells reveals novel transcriptional paradigms

Invariant natural killer T (iNKT) cells are evolutionarily conserved innate lymphocytes important for host defense against pathogens. Further, they are increasingly recognized to play a role in tumor immune surveillance and in protection against graft versus host disease, and they are of particular importance as a universal donor for cellular therapies. Therefore, a thorough understanding of the biology of iNKT cells is critical. Murine studies have revealed the existence of transcriptionally and functionally distinct subsets, similar to T helper cell subsets. However, a comprehensive study of human iNKT cell heterogeneity is lacking. Herein, we define the transcriptomic heterogeneity of human iNKT cells derived from multiple immunologically relevant tissues, including peripheral blood, cord blood, bone marrow, and thymus, using single cell RNA-sequencing. We describe human iNKT cells with a naive/precursor transcriptional pattern, a Th2-like signature, and Th1/17/NK-like gene expression. This combined Th1/17 pattern of gene expression differs from previously described murine iNKT subsets in which Th1- and Th17- like iNKT cells are distinct populations. We also describe transcription factors regulating human iNKT cells with distinct gene expression patterns not previously described in mice. Further, we demonstrate a novel T effector memory RA+ (TEMRA)-like pattern of expression in some human iNKT cells. Additionally, we provide an in-depth transcriptional analysis of human CD8+ iNKT cells, revealing cells with two distinct expression patterns--one consistent with naive/precursor cells and one consistent with Th1/17/NK-like cells. Collectively, our data provide critical insights into the transcriptional heterogeneity of human iNKT cells, providing a platform to facilitate future functional studies and to inform the development of iNKT-based cellular therapies.

immunology↗

Loss of FOXP3 function causes expansion of two pools of autoreactive T cells in patients with IPEX syndrome.

The monogenic autoimmune disease Immunedysregulation polyendocrynopathy entheropathy X-linked syndrome (IPEX) has elucidated the essential function of the transcription factor FOXP3 and of thymic-derived regulatory T (Treg) cells in controlling autoimmunity. However, the presence of autoreactive T cells in IPEX remains undetermined, thus representing a crucial gap in understanding the origin of autoimmunity in a FOXP3 deficient immune system. Combining epigenetic analysis as a lineage marker of Treg identity and TCR sequencing to assess the self-reactive clones, we showed that IPEX patients have two pools of expanded autoreactive T cells. The first originates from the expansion of autoreactive effector T cells (Teff), likely due to loss of Treg suppressive function since it is absent in carrier mothers, in whom Treg cells are functional. The second pool originates, unexpectedly, from Treg cells which lose their phenotypic markers, including CD25 and FOXP3. We call these loss of identity Treg cells and show that they are i) suppressed by healthy donor Treg in a patient post hematopoietic transplantation despite low donor chimerism, and ii) not detectable in patients with Autoimmune polyendocrinopathy-candidiasis-ectodermal dystrophy syndrome (APECED), a monogenic autoimmune disease of thymic origin. Moreover, we demonstrate that FOXP3 knock-out in Treg cells leads to increased Treg expansion and production of Th17 and Th2 cytokines, known to be increased in IPEX patients. These results suggest that the loss of identity Treg cells could directly contribute to immune dysregulation in IPEX. Collectively, we provide a better understanding of autoimmunity and novel ways to monitor the effects of Treg cell therapies in IPEX disease or other autoimmune diseases. One Sentence SummaryMutations of FOXP3 gene in humans cause expansion of autoreactive T cells originating from both effector T cells and regulatory T cells which gain effector function.

immunology↗