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Malkiel, S.

Publications and source records attributed to Malkiel, S..

2 recordsLinked to original sources

B lymphocytes in Treatment-Naive Pediatric Lupus Patients are Epigenetically Distinct from Healthy Children

BackgroundSystemic lupus erythematosus (SLE) is a complex disease likely triggered by gene-environment interactions. We have shown that most of the SLE-associated haplotypes encompass genomic regions enriched for epigenetic marks associated with enhancer function in neutrophils, and T and B cells, suggesting that genetic risk is exerted through altered gene regulation. Data remain scarce on how epigenetic variance contributes to disease risk in pediatric SLE (pSLE). We aim to identify differences in epigenetically-regulated chromatin architecture in treatment-naive pSLE patients compared to healthy children. MethodsUsing the assay for transposase-accessible chromatin with sequencing (ATACseq), we surveyed open chromatin in 8 treatment-naive pSLE patients, with at least moderate disease severity, and 5 healthy children. We investigated whether regions of open chromatin unique to pSLE patients demonstrate enrichment for specific transcriptional regulators, using standard computational approaches to identify unique peaks and a false discovery rate of <0.05. Further analyses for differential transcription factor binding, histone modification enrichment, and variant calling were performed using multiple bioinformatics packages in R and Linux. ResultsThere were 30,139 differentially accessible regions (DAR) identified unique to pSLE B cells, of which 64.3% are more accessible in pSLE than B cells from healthy children. Many of these DAR are found in distal, intergenic regions, and are enriched for enhancer histone marks (p=0.027). When we compared B cells from pSLE patients to those of untreated adults, we found more regions of inaccessible chromatin, and fewer DAR within 10-100kb of known SLE haplotypes. In pSLE B cells, 65.2% of the DAR are located within or near known SLE haplotypes. Further analysis revealed enrichment of several transcription factor binding motifs within these DAR that may regulate genes involved in the pro-inflammatory responses and cellular adhesion. ConclusionsThis is the first report describing differences in chromatin architecture between pSLE patients and healthy children. We demonstrate an epigenetically-distinct profile in pSLE B cells when compared to those from healthy children and adults with lupus, indicating that pSLE B cells are predisposed for disease onset and development. Increased chromatin accessibility in non-coding genomic regions controlling activation of inflammation and the immune response suggest that transcriptional dysregulation by regulatory elements that control B cell activation plays an important role in the pathogenesis of pSLE.

genomics↗

FcγRIIB regulates (auto)antibody responses by limiting marginal zone B cell activation

Fc{gamma}RIIB is an inhibitory receptor expressed throughout B cell development. Diminished expression or function is associated with lupus in mice and humans, in particular through an effect on autoantibody production and plasma cell differentiation. Here, we analysed the effect of B cell-intrinsic Fc{gamma}RIIB expression on B cell activation and plasma cell differentiation. Loss of Fc{gamma}RIIB on B cells (Fcgr2b cKO mice) led to a spontaneous increase in autoantibody titers. This increase was most striking for IgG3, suggestive of increased extrafollicular responses. Marginal zone (MZ) and IgG3+ B cells had the highest expression of Fc{gamma}RIIB and the increase in serum IgG3 was linked to increased MZ B cell signaling and activation in the absence of Fc{gamma}RIIB. Likewise, human circulating MZ-like B cells had the highest expression of Fc{gamma}RIIB, and their activation was most strongly inhibited by engaging Fc{gamma}RIIB. Finally, marked increases in IgG3+ plasma cells and B cells were observed during extrafollicular plasma cell responses with both T-dependent and T-independent antigens in Fcgr2b cKO mice. The increased IgG3 response following immunization of Fcgr2b cKO mice was lost in MZ-deficient Notch2/Fcgr2b cKO mice. Thus, we present a model where high Fc{gamma}RIIB expression in MZ B cells prevents their hyperactivation and ensuing autoimmunity. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=81 SRC="FIGDIR/small/471075v1_ufig1.gif" ALT="Figure 1"> View larger version (12K): org.highwire.dtl.DTLVardef@10bf17corg.highwire.dtl.DTLVardef@11b067aorg.highwire.dtl.DTLVardef@1465e36org.highwire.dtl.DTLVardef@d3351c_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗