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Seve, M.

Publications and source records attributed to Seve, M..

2 recordsLinked to original sources

Type I Interferon Signaling Defines a Novel Disease Signature in Xeroderma Pigmentosum C Human Keratinocytes

Xeroderma Pigmentosum C (XPC) is a DNA damage recognition protein central to the global genome nucleotide excision repair (GG-NER) pathway, where it acts as a primary sensor of UV-induced DNA lesions. Loss-of-function mutations in the XPC gene lead to a photosensitive phenotype, with marked accumulation of unrepaired DNA damage and a dramatically elevated risk (10,000-fold) of skin cancer. However, understanding the molecular signaling mechanisms associated with XP-C has been hindered by the lack of reproducible disease models. Here, we overcome this challenge using our genetically engineered human XPC knockout (KO) keratinocytes, the predominant cell type affected by UV radiation. To uncover upstream signaling changes associated with the absence of XPC expression, we quantified protein tyrosine kinase (PTK) activity one-hour post-UVB exposure. XPC KO keratinocytes showed significant dysregulation of PTK activity on [~]100 phosphosites compared to controls. Complementary mass spectrometry (MS)-based quantitative proteomic analysis performed 24 hours post-UVB exposure identified a downstream signature comprising 791 differentially expressed proteins in XPC KO cells irradiated compared to non-irradiated counterparts. An integrative bioinformatic assessment of the kinase activity and proteomic data revealed a significant perturbation in type I interferon signaling via the JAK/STAT pathway in XPC-deficient keratinocytes, which is further exacerbated by UVB exposure. These findings were validated by western blot analysis, establishing a novel disease-associated molecular signature. Given the central role played by JAK/STAT signaling in inflammatory processes, our results implicate this pathway as a key mediator of XP-Cs hypersensitivity, thereby highlighting its potential as a therapeutic target to alleviate the disease pathology.

molecular biology↗

QUANTITATIVE PROTEOMICS OF PLASMA EXTRACELLULAR VESICLES REVEALS A TTR - PLASMINOGEN NETWORK IN ATTR CARDIAC AMYLOIDOSIS

BackgroundDespite recent progress, the prognosis of patients with transthyretin (TTR) cardiac amyloidosis remains poor; this is primarily due to late diagnosis, when irreversible damage has already occurred. Todays diagnostic work-up still relies on peripheral tissue or a cardiac biopsy, while circulating levels of TTR or other plasma markers have little diagnostic value. Although extracellular vesicles (EVs, as key mediators of intercellular communication) may reflect disease-specific molecular changes, their protein cargo has not yet been explored in the context of TTR amyloidosis (ATTR) cardiomyopathy. ObjectivesTo characterize the plasma EV proteome in ATTR cardiomyopathy and identify potential biomarkers for pathophysiological pathways, diagnosis, or prognosis. MethodsWe performed mass-spectrometry-based, label-free, proteomic profiling of plasma EVs from 65 patients with hypertrophic cardiomyopathy due to TTR amyloidosis (the ATTR+ group, n=41) or non-amyloid cardiac disease (the ATTR- group, n=24). The groups were matched by age and sex. ResultsA distinct protein signature comprising 117 deregulated proteins was identified in EVs from ATTR+ patients. The ATTR+ EVs were enriched in proteins associated with vascular homeostasis, coagulation, and inflammation. At least 18 of these proteins formed an interconnected network centered on plasmin/plasminogen. Notably, EV levels of TTR and plasminogen levels were elevated, while the level of alpha2-antiplasmin (plasmins primary inhibitor) was low. This imbalance is particularly relevant because plasmin is known to promote amyloidogenesis via TTR cleavage. ConclusionsOur findings provide new insights into the molecular mechanisms underlying ATTR cardiomyopathy and suggest that plasma EV proteins are potential diagnostic or prognostic biomarkers and/or therapeutic targets. CONDENSED ABSTRACTTTR amyloidosis (ATTR) causes severe cardiac damage, which is often diagnosed late. Through a comparative proteomic analysis of plasma extracellular vesicles (EVs) in patients with ATTR cardiomyopathy vs. patients with other cardiomyopathies, we identified several proteins of relevance to the pathophysiology of ATTR. Our analysis is the first to have highlighted an enrichment of plasmin/plasminogen (known to initiate the amyloidogenic process) and TTR in circulating EVs. Our results might foster the development of (i) diagnostic and prognostic markers for ATTR cardiomyopathy that do not require invasive procedures, and (ii) new therapeutic strategies. CENTRAL ILLUSTRATION - GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=194 HEIGHT=200 SRC="FIGDIR/small/662124v1_ufig1.gif" ALT="Figure 1"> View larger version (53K): org.highwire.dtl.DTLVardef@e64a55org.highwire.dtl.DTLVardef@11a1f38org.highwire.dtl.DTLVardef@1f7b1cborg.highwire.dtl.DTLVardef@b990aa_HPS_FORMAT_FIGEXP M_FIG C_FIG ETHICAL APPROVALThe present analysis was based on blood samples collected as part of a research project entitled "Study of the myocardial microenvironment and toxicity of amyloid proteins in patients with cardiac amyloidosis", which was approved by an institutional review board (CPP Sud- Mediterranee II, Marseille, France; approval references: 2021T2-12/2021-A00950-41 and 2022-A02416-37).

biochemistry↗