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Atkinson, C.

Publications and source records attributed to Atkinson, C..

3 recordsLinked to original sources

Kidney tubular epithelial cell ferroptosis links glomerular injury to tubulointerstitial pathology in lupus nephritis

ObjectiveAn appreciation of factors that lead to tubular injury in lupus nephritis is lacking. Iron accumulates in the kidney tubules of nephritic patients and lupus-prone nephritic mice. Ferroptosis is a druggable, iron-dependent form of cell death that has received little attention in lupus nephritis. This study investigated whether intra-renal ferroptosis is a target for intervention in lupus nephritis. MethodsKidneys of lupus nephritis patients and two spontaneous murine models of lupus nephritis were characterized for ferroptosis using protein, RNA, and lipidomics-based approaches. Susceptibility of heavy chain ferritin (FtH1; an essential iron sequestration protein) deficient proximal tubular epithelial cells (PTECs) was studied using nephrotoxic serum nephritis and FtH1 knockdown human PTECs. The benefit of Liproxstatin-2, a novel second-generation ferroptosis, was evaluated using human PTECs exposed to lupus nephritis patients serum. ResultsHuman and murine nephritic kidneys have the characteristic markers of ferroptosis, such as 4-hydroxynonenal and acyl-CoA synthetase long-chain family member 4, mainly in the tubular segments. Murine kidneys showed impairment in the glutathione synthesis pathway, decreased expression of glutathione peroxidase 4, a glutathione-dependent ferroptosis inhibitor, and characteristic ferroptotic lipid signature. Loss of FtH1 increased PTEC pathology independent of glomerular injury. These findings were recapitulated in human PTECs. Of translational relevance, Liproxstatin-2 demonstrated a prophylactic and therapeutic benefit in mitigating lupus nephritis patient serum-induced PTEC ferroptosis. ConclusionOur findings highlight tubular cell ferroptosis as a pathological feature in human and murine lupus nephritis and identify ferroptosis inhibitors as potential novel adjunct therapeutics to treat lupus nephritis.

immunology↗

Computational modeling of macrophage iron sequestration during host defense against Aspergillus

Iron is essential to the virulence of Aspergillus species, and restricting iron availability is a critical mechanism of antimicrobial host defense. Macrophages recruited to the site of infection are at the crux of this process, employing multiple intersecting mechanisms to orchestrate iron sequestration from pathogens. To gain an integrated understanding of how this is achieved in invasive aspergillosis, we generated a transcriptomic time-series of the response of human monocyte-derived macrophages to Aspergillus and used this and the available literature to construct a mechanistic computational model of iron handling of macrophages during this infection. We found an overwhelming macrophage response beginning 2-4 hours after exposure to the fungus, which included upregulated transcription of iron import proteins transferrin receptor-1, divalent metal transporter-1, and ZIP family transporters, and downregulated transcription of the iron exporter ferroportin. The computational model, based on a discrete dynamical systems framework, consisted of 21 3-state nodes, and was validated with additional experimental data that were not used in model generation. The model accurately captures the steady state and the trajectories of most of the quantitatively measured nodes. In the experimental data, we surprisingly found that transferrin receptor-1 upregulation preceded the induction of inflammatory cytokines, a feature that deviated from model predictions. Model simulations suggested that direct induction of TfR1 after fungal recognition, independent of the Iron Regulatory Protein - Labile Iron Pool system, explains this finding. We anticipate that this model will contribute to a quantitative understanding of iron regulation as a fundamental host defense mechanism during aspergillosis. ImportanceInvasive pulmonary aspergillosis is a major cause of death among immunosuppressed individuals despite the best available therapy. Depriving the pathogen of iron is an essential component of host defense in this infection, but the mechanisms by which the host achieves this are complex. To understand how recruited macrophages mediate iron deprivation during the infection, we developed and validated a mechanistic computational model that integrates the available information in the field. The insights provided by this approach can help in designing iron modulation therapies as anti-fungal treatments.

immunology↗

Phenogenomic characterization of a newly domesticated and novel species from the genus Verrucosispora

The concept of bacterial dark matter stems from our inability to culture most microbes and represents a fundamental hole in our knowledge of microbial diversity. Herein we present the domestication of such an organism: a previously uncultured, novel species from the rare-Actinomycetes genus Verrucosispora. Although initial recovery took >4 months, isolation of phenotypically distinct, domesticated generations occurred within weeks. Two isolates were subjected to phenogenomic analyses, revealing domestication correlated with enhanced growth rates in nutrient-rich media, but diminished capacity to metabolize diverse amino acids. This is seemingly mediated by genomic decay through the pseudogenization of amino acids metabolism genes. Conversely, later generational strains had enhanced spore germination rates, potentially through the reversion of a sporulation-associated kinase from pseudogene to true gene status. We observed that our most wild-type isolate had the greatest potential for antibacterial activity, which correlated with extensive mutational attrition of biosynthetic gene clusters in domesticated strains. Comparative analyses revealed wholesale genomic reordering in strains, with widespread SNP, indel and pseudogene mutations observed. We hypothesize that domestication of this previously unculturable organism resulted from the shedding of genomic flexibility required for life in a dynamic marine environment, parsing out genetic redundancy to allow for a newfound cultivable amenability.

microbiology↗