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Gherghiceanu, M.

Publications and source records attributed to Gherghiceanu, M..

2 recordsLinked to original sources

In situ evidence that mast cells release mutant NLRP1 in keratoacanthomas from multiple self-healing palmoplantar carcinoma

NLRP1 is an inflammasome sensor protein expressed in barrier tissues of humans. Its activation in response to microbes or cellular stress triggers a cascade of molecular events, leading up to IL1{beta}-driven inflammation and pyroptosis. Rare germline mutations of NLRP1 cause its persistent activation, resulting in autoinflammatory syndromes. Multiple self-healing palmoplantar carcinoma (MSPC) is one such syndrome, characterized by the appearance of recurrent keratoacanthomas (KAs) on the palms and soles. Here, we aimed to compare the subcellular localization of mutant NLRP1 in MSPC-associated lesions, to wild-type NLRP1 in non-MSPC KAs and in skin from healthy donors. Using mass spectrometry, immunohistochemistry and immunoelectron tomography, we found that NLRP1 localized to mast cell (MC) granules in all samples, a novel finding which implicates MCs in NLRP1-associated responses in human skin. Moreover, we found that MCs expressing the A66V pathogenic variant of NLRP1 overpopulated MSPC-KAs, infiltrated the epidermis and degranulated, a behavior not seen in other lesions from this study. The released granules had the highest NLRP1 protein content and also contained NLRP3 and IL1{beta}, indicating coexistence of inflammasome pathways within MCs. Taken together, our findings establish cutaneous MCs as a NLRP1 reservoir in health and disease, opening a new area of research in NLRP1-related syndromes.

immunology↗

miR-210 locus deletion disrupts cellular homeostasis; an integrated genetic study

MiR-210 is widely recognized as the quintessential hypoxia-responsive miRNA and thought to fine-tune various facets of cellular homeostasis. We hereby present an integrative appraisal of phenotypic and molecular repercussions of disrupting the corresponding locus in human and mouse cells using multiple genetic strategies. Briefly, MIR210 deletion led to decreased cellular fitness and suboptimal responses to several stress types. Transcriptomic comparisons using different profiling platforms, performed independently by members of this collaboration, revealed consistent deregulation of neighboring genes, in locus-disrupted cells. Interestingly, the anticipated enrichment in miR-210 targets failed to materialize in unbiased analyses. Our results point to the biological significance of unrecognized regulatory elements that overlap miRNA genes and should serve as note of caution for studies based for genetic disruption of such loci.

molecular biology↗