Search bioRxiv⌕ Search

bioRxiv · 10.1101/2022.01.13.476283

Ehrlichia SLiM ligand mimetic activates Notch signaling in human monocytes

Abstract

Ehrlichia chaffeensis evades innate host defenses by reprogramming the mononuclear phagocyte through mechanisms that involve exploitation of multiple evolutionarily conserved cellular signaling pathways including Notch. This immune evasion strategy is directed in part by tandem repeat protein (TRP) effectors. Specifically, the TRP120 effector activates and regulates Notch signaling through interactions with the Notch receptor and the negative regulator, F-Box and WD repeat domain-containing 7 (FBW7). However, the specific molecular interactions and motifs required for E. chaffeensis TRP120-Notch receptor interaction and activation have not been defined. To investigate the molecular basis of TRP120 Notch activation, we compared TRP120 with endogenous canonical/non-canonical Notch ligands and identified a short region of sequence homology within the tandem repeat (TR) domain. TRP120 was predicted to share biological function with Notch ligands, and a function-associated sequence in the TR domain was identified. To investigate TRP120-Notch receptor interactions, colocalization between TRP120 and endogenous Notch-1 was observed. Moreover, direct interactions between full length TRP120, the TRP120 TR domain containing the putative Notch ligand sequence, and the Notch receptor LBR were demonstrated. To molecularly define the TRP120 Notch activation motif, peptide mapping was used to identify an 11-amino acid short linear motif (SLiM) located within the TRP120 TR that activated Notch signaling and downstream gene expression. Peptide mutants of the Notch SLiM or anti-Notch SLiM antibody reduced or eliminated Notch activation and NICD nuclear translocation. This investigation reveals a novel molecularly defined pathogen encoded Notch SLiM mimetic that activates Notch signaling consistent with endogenous ligands. ImportanceE. chaffeensis infects and replicates in mononuclear phagocytes, but how it evades innate immune defenses of this indispensable primary innate immune cell is not well understood. This investigation reveals the molecular details of a ligand mimicry cellular reprogramming strategy that involves a short linear motif (SLiM) which enables E. chaffeensis to exploit host cell signaling to establish and maintain infection. E. chaffeensis TRP120 is a moonlighting effector that has been associated with cellular activation and other functions including ubiquitin ligase activity. Herein, we identify and demonstrate that a SLiM present within each tandem repeat of TRP120 activates Notch signaling. Notch is an evolutionarily conserved signaling pathway responsible for many cell functions including cell fate, development, and innate immunity. The proposed study is significant because it reveals the first molecularly defined pathogen encoded SLiM that appears to have evolved de novo to mimic endogenous Notch ligands. Understanding Notch activation during E. chaffeensis infection provides a model in which to study pathogen exploitation of signaling pathways and will be useful in developing molecularly-targeted countermeasures for inhibiting infection by a multitude of disease-causing pathogens that exploit cell signaling through molecular mimicry. Author SummaryE. chaffeensis is a small, obligately intracellular, Gram-negative bacterium that has evolved cellular reprogramming strategies to subvert innate defenses of the mononuclear phagocyte. Ehrlichial TRP effectors interface with the host cell and are involved in pathogen-host interplay that facilitates exploitation and manipulation of cellular signaling pathways; however, the molecular interactions and functional outcomes are not well understood. This study provides molecular insight into a eukaryotic mimicry strategy whereby secreted effectors of obligately intracellular pathogens activate the evolutionarily conserved Notch signaling pathway through a short linear motif ligand mimetic to promote intracellular infection and survival.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Patterson, L. L., Velayutham, T. S., Byerly, C. D., Bui, D. C., Patel, J., Veljkovic, V., Paessler, S., McBride, J. W.. 2022-01-15. Ehrlichia SLiM ligand mimetic activates Notch signaling in human monocytes. https://doi.org/10.1101/2022.01.13.476283

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

NAE1-Dependent Protein Neddylation Preserves Endothelial Identity and Vascular Integrity

Background: Endothelial dysfunction is a central driver of cardiovascular and inflammatory diseases, yet the post-translational mechanisms that preserve endothelial homeostasis remain incompletely understood. Protein neddylation, the covalent conjugation of a ubiquitin-like modifier, regulates diverse cellular processes, yet its physiological role in the vascular endothelium remains unknown. This study investigated whether protein neddylation is required to preserve endothelial identity and vascular homeostasis. Methods: We generated tamoxifen-inducible endothelial-specific Nae1 knockout mice to inhibit neddylation and combined bulk RNA sequencing, single-cell and single-nucleus transcriptomics, quantitative proteomics, biochemical analyses, and gain- and loss-of-function approaches to define the role of endothelial neddylation in vascular homeostasis and inflammatory injury. Results: Endothelial-specific Nae1 deletion caused rapid mortality associated with vascular leakage, platelet accumulation, inflammation, and multi-organ injury. Multi-omics analyses demonstrated profound loss of endothelial identity, characterized by suppression of core endothelial programs and activation of inflammatory, procoagulant, and pyroptotic pathways. Single-cell analyses revealed progressive endothelial dysfunction culminating in depletion of the endothelial population and remodeling of the vascular niche. Mechanistically, endothelial neddylation deficiency activated gasdermin D (GSDMD)- and gasdermin E (GSDME)-dependent pyroptosis, whereas dual inhibition of GSDMD and GSDME markedly attenuated inflammatory transcriptomic remodeling, vascular injury, hepatocyte death, immune cell infiltration, and platelet accumulation. Translational analyses demonstrated reduced endothelial neddylation in experimental endotoxemia and decreased expression of neddylation pathway components in human atherosclerosis and COVID-19 datasets. Conversely, restoration of endothelial neddylation partially reversed inflammatory endothelial transcriptomic reprogramming in vivo. Conclusions: NAE1-dependent protein neddylation is an essential regulator of endothelial identity and vascular integrity. Loss of endothelial neddylation promotes gasdermin-dependent pyroptosis and thrombo-inflammatory vascular injury, whereas restoration of the neddylation pathway mitigates inflammatory endothelial dysfunction. These findings identify endothelial neddylation as a fundamental mechanism maintaining vascular homeostasis and a potential therapeutic target for cardiovascular and inflammatory diseases.

pathology↗

EZH2 inhibition stimulates viral mimicry in resting splenic B cells

In mammalian cells expression of repetitive genomic sequences is repressed by heterochromatin, underscoring the potential threat of repeat expression to cellular homeostasis. However, the specific consequences of ectopic repeat expression remains unclear. Here we demonstrate that EZH2 inhibitors stimulate repeat misexpression and cell death in resting splenic B cells. We show that B cells are uniquely sensitive to these agents because of high levels of H3K27me3 at repeats and correspondingly low DNA methylation. We generated a pattern recognition receptor loss-of-function mouse model called RIC with mutations in Rigi, Ifih1 (MDA5), and Cgas to specifically block the consequences of repeat misexpression. In both WT and RIC mutant B cells, EZH2 inhibition caused focused loss of H3K27me3 at repetitive elements and upregulated their expression. However, expression of inflammatory chemokines and cell death were interrupted by the RIC mutations. Furthermore, the chemokine expression patterns induced by EZH2 inhibitors resemble the B cell response to Epstein-Barr virus infection. This study demonstrates a viral mimicry effect induced by pharmacological activation of repeat expression that induces inflammation and B cell death.

pathology↗

NON-TOXIC ACID-FREE GLYOXAL FIXATIVE FOR VETERINARY HISTOPATHOLOGY, IMMUNOHISTOCHEMISTRY AND MOLECULAR ANALYSIS

Formaldehyde fixation is worldwide the most used system for histopathological examination. However, its toxicity is well known, and preservation of proteins and nucleic acids is not optimal. Alternative fixatives warranting similar morphological quality of tissues and costs, but lacking toxicity and allowing better preservation of proteins and nucleic acids would therefore increase both safety of operators and quality of molecular analysis in pathology. This multi-institutional study aimed to compare the morphological, histochemical, immunohistochemical (IHC), and molecular analyses outcomes of a newly patented, non-toxic, acid-free Glyoxal (GAF) fixative with neutral buffered formaldehyde (NBF). Tissues from a total of 73 subjects were analyzed, including 13 necropsies. Gross features were preserved after GAF fixation, with no tissue hardening or discoloration. Cellular ultrastructure was also better preserved with GAF and histology and histochemistry on GAF-fixed samples showed good results when compared to NBF-fixed samples, with the exception of loss of tinctorial affinity of erythrocytes and mast cell granules. IHC analyses also showed comparable results with only slight and rare protocol adjustment. DNA and RNA yields were higher from GAF-fixed samples (P<0.05) and the tested genes (p53 and COX1) were better amplified. RNA scope showed positive results for c-KIT expression in GAF-fixed mast cell tumors. Based on these data, the non-toxic GAF fixative allows good macroscopical, histological and immunohistochemical analyses of tissue samples, including on-field application, and better molecular analyses when compared to NBF. This represents a promising possibility for teaching, diagnostic, and research in veterinary pathology.

pathology↗