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Biology subjects

Ruechel, N.

Publications and source records attributed to Ruechel, N..

3 recordsLinked to original sources

Epigenetic remodeling via HDAC6 inhibition amplifies anti-tumoral immune responses in pediatric AML

Histone deacetylase 6 (HDAC6) has emerged as a promising therapeutic target in cancer due to its immunomodulatory effects. While its prognostic significance remains debated, we demonstrate that HDAC6 loss significantly impairs myeloid leukemia progression in vivo, despite having no functional impact on leukemia cell proliferation in vitro. Global proteome and secretome profiling of HDAC6-knockout (KO) cells revealed upregulation of several immune-related modulators, including RNase T2, a tumor suppressor known to modulate the tumor microenvironment. Notably, RNase T2 upregulation upon HDAC6 loss was restricted to myeloid but not B-ALL cells. Moreover, pharmacological inhibition of HDAC6 recapitulated this phenotype, leading to RNase T2 upregulation in myeloid leukemia cells. ATAC-seq revealed increased chromatin accessibility of RNase T2 following HDAC6 loss, highlighting a functionally epigenetic regulatory contribution. Further functional assays conducted in an immunocompetent setting both ex vivo and in vivo demonstrated that HDAC6 inhibition sensitized murine myeloid leukemia cells to broad CD8+ T cell activation as evidenced by increased TNF and CD107a expression. Consistently, in a syngeneic model, HDAC6 inhibition restricted growth myeloid leukemia cells. Moreover, an extended drug screening analysis identified Cytarabine and Clofarabine as significantly synergizing with HDAC6 inhibitor (Ricolinostat) in myeloid leukemia cell lines and in patient derived xenograft (PDX) cells, while showing limited synergy in lymphoid leukemia cell lines, PDX or healthy control cells. These findings suggest that HDAC6 represents a promising therapeutic target in myeloid lineage derived leukemia cells by simultaneously enhancing immune activation and increasing chemosensitivity.

cell biology↗

Serum-free differentiation platform for the generation of B lymphocytes and natural killer cells from human CD34+ cord blood progenitors

IntroductionPre-clinical research on B and NK cell development relies on traditional murine stromal cell-based systems with reduced physiological relevance and clinical applicability. MethodsA serum-free, fully humanized co-culture system utilizing human bone marrow-derived mesenchymal stromal cells (BM-MSCs) was developed to differentiate CB-CD34+ cells towards B and NK cell lineages. Differentiation dynamics were monitored via flow cytometry, with immunophenotypic analysis tracking progression from progenitors to mature cells. ResultsThe system generated CD19+IgM+ immature B cells and CD56+CD16+ NK cells, recapitulating fetal stages of human lymphopoiesis. Serum-free media conditions ensured reproducibility and high overall yield of B and NK cell progenitors. Flow cytometry identified distinct population peaks, confirming temporal control over differentiation. ConclusionThis clinically relevant platform addresses the limitations of traditional models by providing a more physiologically accurate human microenvironment. The serum-free system supports applications in disease modeling, genotoxic compound screening, and mutational studies of hematopoiesis. By enabling scalable production of B and NK cells it aims to accelerate translational research for immunodeficiencies, cancer immunotherapy, and hematopoietic disorders. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=109 SRC="FIGDIR/small/655473v1_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@427817org.highwire.dtl.DTLVardef@1da616dorg.highwire.dtl.DTLVardef@325ff5org.highwire.dtl.DTLVardef@139f7fb_HPS_FORMAT_FIGEXP M_FIG C_FIG Significance StatementThis article presents a novel, fully humanized, serum-free co-culture system that efficiently directs cord blood-derived hematopoietic stem cells into B and natural killer (NK) cells. By using human bone marrow stromal cells and recombinant human cytokines, it overcomes the limitations of murine-based models and better mimics human blood cell development. This platform enables improved disease modeling and therapeutic testing relevant to human hematopoiesis.

developmental biology↗

MMR vaccination induces a trained immunity program characterized by functional and metabolic reprogramming of γδ T cells

The measles, mumps and rubella (MMR) vaccine protects against all-cause mortality in children, but the immunological mechanisms mediating these effects are poorly known. We systematically investigated whether MMR can induce long-term functional changes in innate immune cells, a process termed trained immunity, that could at least partially mediate this heterologous protection. In a randomized placebo-controlled trial, 39 healthy adults received either the MMR vaccine or a placebo. By using single-cell RNA-sequencing, we found that MMR caused transcriptomic changes in CD14-positive monocytes and NK cells, but most profoundly in {gamma}{delta} T cells. Surprisingly, monocyte function was not altered by MMR vaccination. In contrast, the function of {gamma}{delta} T cells was significantly enhanced by MMR vaccination, with higher production of TNF and IFN{gamma}, as well as upregulation of cellular metabolic pathways. In conclusion, we describe a new trained immunity program characterized by modulation of {gamma}{delta} T cell function induced by MMR vaccination. One-sentence summaryMMR vaccination induces cellular and metabolic reprogramming in {gamma}{delta} T cells towards a more active phenotype.

immunology↗