Search bioRxiv⌕ Search

Biology subjects

Kondo, E.

Publications and source records attributed to Kondo, E..

2 recordsLinked to original sources

Characterization of a maintainable human myeloid model of VEXAS syndrome with enhanced TNF-induced cell death and DAMP release

Background: VEXAS syndrome is an adult-onset autoinflammatory disorder caused by somatic UBA1 mutations. UBA1-mutated myeloid cells have been reported to exhibit increased susceptibility to inflammatory cell death; however, the mechanisms underlying this phenotype and the extracellular consequences of enhanced cell death remain incompletely understood. Methods: Disease-associated UBA1 M41 mutations were introduced into U937 cells by CRISPR/Cas9-mediated genome editing. The resulting cells were characterized by genomic, molecular, and functional analyses, with particular focus on UBA1-associated cellular phenotypes, cell death signaling, and extracellular release of damage-associated molecular patterns (DAMPs). Results: Genome editing yielded UBA1-mutated cells that could be maintained under standard culture conditions while recapitulating multiple molecular and cellular features associated with VEXAS syndrome. Long-read sequencing revealed the intended UBA1 M41 mutation on one allele and a CRISPR/Cas9-induced on-target genomic deletion on the other. The mutant cells exhibited reduced UBA1b and increased UBA1c expression, prominent cytoplasmic vacuolization, reduced proliferative capacity, and increased basal cell death. They also showed enhanced susceptibility to TNF-induced cell death under conditions favoring either apoptosis or necroptosis. Mechanistic analyses demonstrated enhanced apoptotic and necroptotic signaling, together with increased basal abundance of RIPK1, RIPK3, and MLKL. Pharmacological inhibition of RIPK1, RIPK3, or MLKL attenuated membrane permeabilization under caspase-inhibited conditions. Enhanced cell death was accompanied by increased extracellular release of ATP, HMGB1, and S100A8/A9. Conclusions: We characterized a maintainable UBA1-mutated human myeloid model that recapitulates multiple molecular and cellular features associated with VEXAS syndrome. Using this model, we showed that UBA1 dysfunction is associated with heightened susceptibility to TNF-dependent apoptotic and necroptotic cell death and increased extracellular release of multiple DAMPs. These findings provide insight into the cellular consequences of UBA1 dysfunction and establish a tractable experimental platform for further mechanistic studies of VEXAS syndrome.

immunology↗

A Complex Containing the Na+/K+ ATPase Regulates Epileptogenesis in Drosophilamelanogaster

Epileptogenesis, the process through which the brain becomes seizure-prone, is not well understood. Previous work identified a novel gene in Drosophila, julius seizure (jus), that when mutated or developmentally knocked down, leads to epilepsy in adult Drosophila, providing a useful model for dissecting epileptogenesis. Here we report that when a GFP-tagged version of Jus was used as bait in a co-immunoprecipitation (co-IP) assay, a complex of 23 associated proteins was identified that included ATPalpha and Nervana 3, two subunits of the Na+/K+ ATPase. RNAi-mediated knockdown of ATPalpha, Nervana 3, or any of 8 additional complex proteins enhanced seizure susceptibility. The critical period of Jus expression in epileptogenesis was further defined, occurring between pupal stages P4-7; remarkably, the jus seizure phenotype could be rescued by increasing neural activity of jus-expressing neurons during these mid-pupal stages, suggesting that altered neural activity in these neurons may contribute to the seizure phenotype. Our data support a model that, in wild type flies, a protein complex containing Na+/K+ ATPase and Jus prevents epileptogenesis, possibly by regulating neural activity.

neuroscience↗