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Neven, B.

Publications and source records attributed to Neven, B..

2 recordsLinked to original sources

Actin dynamics regulation by TTC7A/PI4KIIIα axis limits DNA damage and cell death during leukocyte migration

The actin cytoskeleton has a crucial role in the maintenance of the immune homeostasis by controlling various cell processes, including cell migration. Mutations in the TTC7A gene have been described as the cause of a primary immunodeficiency associated to different degrees of gut involvement and alterations in the actin cytoskeleton dynamics. Although several cellular functions have been associated with TTC7A, the role of the protein in the maintenance of the immune homeostasis is still poorly understood. Here we leverage microfabricated devices to investigate the impact of TTC7A deficiency in leukocytes migration at the single cell level. We show that TTC7A-deficient leukocytes exhibit an altered cell migration and reduced capacity to deform through narrow gaps. Mechanistically, TTC7A-deficient phenotype resulted from impaired phosphoinositides signaling, leading to the downregulation of the PI3K/AKT/RHOA regulatory axis and imbalanced actin cytoskeleton dynamic. This resulted in impaired cell motility, accumulation of DNA damage and increased cell death during chemotaxis in dense 3D gels. Our results highlight a novel role of TTC7A as a critical regulator of leukocyte migration. Impairment of this cellular function is likely to contribute to pathophysiology underlying progressive immunodeficiency in patients.

immunology↗

Single cell analysis of FOXP3 deficiencies in humans and mice unmasks intrinsic and extrinsic CD4+ T cell perturbations

ABSTRACTFOXP3 deficiency in humans with IPEX syndrome and mice results in fatal systemic autoimmunity by altering regulatory T cell (Treg) physiology, but actual cellular and molecular mechanisms of disease are unclear, part because Treg surface markers may be unreliable in disease states. We used deep profiling by flow cytometry, population and single-cell RNAseq to analyze Tregs and conventional (Tconv) CD4+ T lymphocytes in cohorts of IPEX patients with a range of genetic lesions, and in Foxp3-deficient mice. In all patients and mice, heterogeneous Treg-like cells with an active FOXP3 locus were observed, some differing very little from normal Tregs, others more distant. Tconv showed no widespread activation or Th bias. The dominant mark was a monomorphic signature equally affecting all CD4+ T cells, unexpectedly dampening tumor-Treg and cytokine-signaling modules. In mixed bone marrow chimeras, WT Tregs exerted dominant suppression, normalizing the states of mutant Treg and Tconv, extinguishing the disease signature, and revealing a small gene cluster truly regulated, cell-intrinsically, by FOXP3. These results suggest a two-step pathogenesis model, with therapeutic implications: limited downregulation of a few core Treg genes de-represses a systemic mediator(s), which imprints the disease signature on all T cells, and further dampens Treg function.Competing Interest StatementThe authors have declared no competing interest.View Full Text

immunology↗