Search bioRxiv⌕ Search

Biology subjects

van der Kroef, M.

Publications and source records attributed to van der Kroef, M..

2 recordsLinked to original sources

Nuclear receptor subfamily 4A signaling as a key disease pathway of CD1c+ dendritic cell dysregulation in systemic sclerosis

ObjectivesTo identify key disease pathways driving conventional dendritic cell (cDC) alterations in Systemic Sclerosis (SSc). MethodsTranscriptomic profiling was performed on peripheral blood CD1c+ cDCs (cDC2s) isolated from 12 healthy donors and 48 SSc patients with all major disease subtypes. Differential expression analysis comparing the different SSc subtypes and healthy donors was performed to uncover genes dysregulated in SSc. To identify biologically relevant pathways, a gene co-expression network was built using Weighted Gene Correlation Network Analysis. We validated the role of key transcriptional regulators using ChIP-sequencing and in vitro functional assays. ResultsWe identified 17 modules of co-expressed genes in cDC2s that correlated with SSc subtypes and key clinical traits including auto-antibodies, skin score, and occurrence of interstitial lung disease. A module of immune regulatory genes was markedly down regulated in patients with the diffuse SSc subtype characterized by severe fibrosis. Transcriptional regulatory network analysis performed on this module predicted NR4A (nuclear receptor 4A) subfamily (NR4A1, NR4A2, NR4A3) genes as the key transcriptional mediators of inflammation. Indeed, ChIP-sequencing analysis supported that these NR4A members target numerous differentially expressed genes in SSc cDC2s. Inclusion of NR4A receptor agonists in culture-based experiments provided functional proof that dysregulation of NR4As affects cytokine production by cDC2s and modulates downstream T-cell activation. ConclusionsNR4A1, NR4A2 and NR4A3 are important regulators of immunosuppressive and fibrosis-associated pathways in SSc cDC2s. Thus, the NR4A family represent novel potential targets to restore cDC homeostasis in SSc. KEY MESSAGESO_ST_ABSWhat is already known about this subject?C_ST_ABSO_LICD1c+ conventional dendritic cells (cDC2s) are implicated as key players in Systemic Sclerosis (SSc), but key molecular mechanisms underlying their dysregulation were unknown. C_LI What does this study add?O_LITranscriptomic analysis and network analysis identified modules of coexpressed genes in cDC2s that correlated with SSc subtypes and key clinical traits. C_LIO_LIThe NR4A (nuclear receptor 4A) subfamily (NR4A1, NR4A2, NR4A3) genes act as master regulators of key immune regulatory genes dysregulated in SSc cDC2s, as shown by multi-omics integration analysis using transcriptomics and targeted ChIP-sequencing. C_LIO_LIPharmacological activation of NR4As inhibits pro-inflammatory cytokine production and CD4+ T-cell activation by cDC2s. C_LI How might this impact on clinical practice or future developments?O_LINR4As are attractive candidates for novel treatment options to attenuate pro-inflammatory and pro-fibrotic responses in SSc patients. C_LI

immunology↗

Inhibitory CD200-receptor signaling is rewired by type I interferon

CD200 Receptor 1 (CD200R) is an established inhibitory immune receptor that inhibits TLR-induced cytokine production through Dok2 and RasGAP. RasGAP can be cleaved under certain conditions of mild cellular stress. We found that in the presence of cleaved RasGAP, CD200R loses its capacity to inhibit rpS6 phosphorylation. Furthermore, IFN pre-stimulation of human mononuclear cells results in increased amounts of cleaved RasGAP. Coherently, upon pretreatment with increasing concentrations of IFN, CD200R gradually shifts from an inhibitor to a potentiator of TLR7/8-induced IFNG mRNA production. In peripheral blood mononuclear cells from Systemic Lupus Erythematosus (SLE) patients, a prototypic type I IFN disease, we found an increased proportion of cleaved RasGAP compared to healthy controls. In line with this, in subsets of SLE patients the inhibitory function of CD200R is lost or converted to a potentiating signal for IFNG mRNA production. Thus, our data show that type I IFN rewires CD200R signaling and suggest that this cell-extrinsic regulation of signaling could contribute to perpetuation of inflammation in SLE.

immunology↗