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Pallotti, F.

Publications and source records attributed to Pallotti, F..

2 recordsLinked to original sources

UBA1 Mutations Drive RIPK1-Mediated Cell Death and Monocyte Dysfunction in VEXAS Syndrome

VEXAS syndrome is a severe adult-onset autoinflammatory disease caused by somatic mutations in UBA1 gene, disrupting cytoplasmic ubiquitin-activating enzyme E1 function in hematopoietic progenitors. The pathogenesis remains poorly understood, particularly how UBA1 mutations perturb myeloid function. Here, we combine a genetically engineered THP-1 monocytic model with ex vivo analyses of blood and tissue samples from VEXAS patients to investigate the consequences of the canonical UBA1M41V mutation. We show that UBA1-mutated monocytes exhibit TNF--induced cell death, characterized by RIPK1 phosphorylation, and MLKL-and caspase-8-mediated cell death. This is associated with defective transcriptional induction of NF-{kappa}B target genes and reduced cFLIP(L) expression in response to TNF-. Monocytes also display blunted cytokine responses to multiple Toll-like receptor (TLR) agonists despite preserved TLR expression, linked to an impaired NF-{kappa}B response. UBA1M41V-derived macrophages exhibit an inflammatory transcriptional profile and increased secretion of chemokines that promote monocyte recruitment. We demonstrate that these UBA1M41V macrophages display impaired efferocytosis due to lysosomal dysfunction. Together, these findings reveal a pathogenic axis in VEXAS syndrome linking UBA1 loss of function and defective ubiquitination to RIPK1-mediated inflammatory cell death, impaired antimicrobial signaling, and defective resolution mechanisms. Our study provides novel mechanistic insights into the myeloid dysfunction that drives inflammation and cytopenia in VEXAS and highlights the necroptosis and efferocytosis pathways as potential therapeutic targets. Key points1/ UBA1-mutated monocytes are susceptible to RIPK1 dependent cell death and display impaired NF-{kappa}B-mediated cytokine responses to TLR agonists. 2/ UBA1-mutated macrophages promote inflammation and chemokine-mediated monocyte recruitment, while exhibiting defective efferocytosis.

immunology↗

Transcutaneous auricular vagus nerve stimulation during movement modulates motor neural circuitry without widespread cortical or autonomic activation

Transcutaneous auricular vagus nerve stimulation (taVNS) is a promising neuromodulatory approach for treating neurological disorders, with growing interest in its potential to support motor rehabilitation. Yet, its mechanisms of action, potentially influenced by behavioral context, remain elusive. This sham-controlled study investigated transient taVNS interactions with movement in healthy adults, focusing on autonomic, neuromodulatory, and motor circuits. During a finger-tapping paradigm, heart rate (HR), galvanic skin response (GSR), pupil diameter, and electroencephalography (EEG) were recorded to probe movement-dependent stimulation effects. This study first identified a novel physiological dissociation: all measures responded to movement, but taVNS did not significantly alter HR, GSR, or general EEG spectral slope; taVNS increased pupil diameter in both conditions, but enhanced sensorimotor EEG spectral slope solely during movement. This context-specific effect on motor systems was further supported by a transcranial magnetic stimulation (TMS) experiment demonstrating increased corticospinal excitability during taVNS. These findings provide mechanistic insights into how taVNS may selectively enhance motor system responsiveness during active states, supporting future exploration of behaviorally paired stimulation protocols for neurorehabilitation.

neuroscience↗