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Piubeli, F. A.

Publications and source records attributed to Piubeli, F. A..

2 recordsLinked to original sources

Ubiquitylome Rewiring by Bacterial E3 Ligases Reveals Multifaceted Host Subversion

Salmonella enterica has evolved an arsenal of effector proteins secreted via type III secretion systems (T3SS) to manipulate host cell functions. Among these, the NEL family E3 ubiquitin ligases (SlrP, SspH1, and SspH2) are known to modulate immune signaling, but the breadth of their impact on the host ubiquitylome remains unexplored. In this study, we have performed a global proteomic analysis to identify host proteins ubiquitylated in response to expression of these three effectors in human cells. Using enrichment strategies combined with mass spectrometry under conditions where the proteasome is active or not, we identified 214 putative substrates of ubiquitylation. Gene ontology and KEGG pathway analysis revealed enrichment in pathways related to RNA processing, ribosome biogenesis, cytoskeleton organization, chromatin remodeling, and vesicular trafficking. In vitro ubiquitylation assays validated five novel substrates and revealed differential substrate specificity and patterns of ubiquitin chain topology among the effectors. Notably, expression of SspH1 in Saccharomyces cerevisiae disrupted polysome profiles in a ligase activity dependent manner, indicating a direct impact of the bacterial effector on translation of eukaryotic cells. Comparison with previously published global interactomes and ubiquitylomes supports a model in which Salmonella NEL effectors subvert a broader range of host pathways through targeted ubiquitylation. Our findings uncover new roles for NEL ubiquitin ligases in host manipulation and provide a holistic analysis of their effects on the ubiquitylome of the host cell, constituting a valuable resource for the study of bacterial pathogenesis and infection biology.

microbiology↗

HLH-30/TFEB is necessary for chromatin reorganization and maintenance of cell quiescence during starvation in C. elegans

Cellular quiescence is a metabolically active, non-proliferative state critical for tissue maintenance and regenerative capacity, with broad implications for aging and age-related diseases. In Caenorhabditis elegans, L1 developmental arrest upon hatching in the absence of food provides a robust in vivo model to study quiescence. Here, we investigate the roles of the transcription factors HLH-30/TFEB and DAF-16/FOXO during L1 arrest. We show that HLH-30 and DAF-16 collaborate to ensure survival under starvation, with reciprocal regulation of their subcellular localization and transcriptional activity. HLH-30 exerts broad transcriptional control during L1 arrest, modulating genes involved in chromosome organization and cell cycle progression. Profiling of chromatin spatial distribution reveals that HLH-30 is required for fasting-induced 3D chromatin reorganization. Loss of HLH-30 disrupts seam cell cycle arrest and leads to overactivation of the pioneer transcription factor BLMP-1, leading to premature initiation of developmental programs under starvation. Our findings uncover previously unrecognized functions of HLH-30 in genome architecture and quiescence regulation, highlighting conserved mechanisms of transcriptional control during nutrient deprivation with implications for aging and disease.

developmental biology↗