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Bals, R.

Publications and source records attributed to Bals, R..

5 recordsLinked to original sources

Modeling of lung-liver interaction during infection in a human microfluidic organ-on-a-chip

BackgroundInfections of the respiratory tract such as pneumonia or COVID-19 cause high mortality and morbidity worldwide. Organ-on-a-chip (OC) technologies have been developed in the last years to establish human-based disease models, to study basic disease mechanisms and to provide a tool to speed up drug development. The aim of this study was to establish a lung-liver microfluidic system to study the interaction of both organ modules during infection. MethodsA two organ (lung / liver) microfluidic system was established using primary human bronchial (HBECs) or alveolar type epithelial cells (ATC) for the lung module and Huh-7 cells for the liver module. Inactivated non typeable Haemophilus influenzae (NTHi) and Pseudomonas aeruginosa PAO1 (PAO1) were applied to the lung module. Secreted mediators were screened by dot-blot analysis and quantified. The effect of lung epithelial bacterial stimulation on the liver cell transcriptome was analyzed by mRNA sequencing. ResultsLung and liver cells established stable cultures in a circulatory microfluidic system. Activation of HBECs or ATCs with NTHi or PAO1 resulted in the secretion of multiple inflammatory mediators into the microfluidic medium including TNF-, monocyte chemotactic protein-1 (MCP-1) and macrophage inflammatory protein-3 (MIP-3). Addition of lung cells and application of bacterial onto the HBECs module resulted in the gross change of the transcriptome of the liver cell module. Gene ontology enrichment analysis showed the induction of various pathways involved in host defense, metabolisms, repair, and acute phase response. InterpretationIn conclusion, a two-organ lung/liver microfluidic system was established to study the interaction of the organ modules during infection. Mediators released from epithelial culture modules into the microfluidic circulation after exposure to bacterial pathogens significantly modify the gene expression patterns of liver cells. FundingThis research was funded by the German Federal Ministry of Education and Research (BMBF), 031L0153 VISION "Alternativmethoden zum Tierversuch" and the Dr. Rolf M. Schwiete Stiftung.

cell biology↗

IgG4 serum levels are not elevated in cases of Post-COVID syndrome

Recently, unexpectedly high virus-specific IgG4 levels were reported after more than two mRNA vaccinations. Class switch towards IgG4 occurs after long-term antigen exposure, downregulates immune responses and is associated with several autoimmune diseases. Here, we examined differences in antigen-specific IgG subtypes in serum samples from 64 Post-COVID patients and an equally sized cohort of convalescent controls. In both cohorts, the relative amounts of spike protein-specific IgG subtypes were comparable. IgG1 was the most frequent, followed by IgG3, IgG2, and IgG4. A difference between cohorts was observed only for IgG2, which was significantly lower in the Post-COVID cohort. Further analysis of the reactive IgG4 revealed a small but significant difference for the spike protein receptor-binding domain but not for the spike ectodomain. Since the total IgG4 levels are very low, we do not expect a biologically relevant role in Post-COVID syndrome. However, reduced virus-specific IgG2 levels could contribute to the persistence of SARS-CoV-2, causing chronic inflammation in the setting of Post-COVID syndrome.

immunology↗

Mutual regulation of transcriptomes between pneumocytes and fibroblasts mediates alveolar regeneration

Alveolar type 2 (AT2) and club cells are part of the stem cell niche of the lung and their differentiation is required for pulmonary homeostasis and tissue regeneration. A disturbed crosstalk between fibroblasts and epithelial cells contributes to the loss of lung structure in chronic lung diseases. Therefore, it is important to understand how fibroblasts and lung epithelial cells interact during regeneration. Here we analyzed the interaction of fibroblasts and the alveolar epithelium modelled in air-liquid interface cultures. Single-cell transcriptomics showed that co-cultivation with fibroblasts leads to increased expression of type 2 markers in pneumocytes, activation of regulons associated with maintenance of alveolar type 2 cells, and trans-differentiation of club cells towards pneumocytes. This was accompanied by an intensified transepithelial barrier. Vice versa, activation of NF{kappa}B pathways and the CEBPB regulon as well as the expression of IL-6 and other differentiation factors (e.g. FGFs) were increased in fibroblasts co-cultured with epithelial cells. Recombinant IL-6 enhanced epithelial barrier formation. Therefore, in our co-culture model, regulatory loops were identified by which lung epithelial cells mediate regeneration and differentiation of the alveolar epithelium in a cooperative manner with the mesenchymal compartment.

cell biology↗

MetaProFi: A protein-based Bloom filter for storing and querying sequence data for accurate identification of functionally relevant genetic variants

Technological advances of next-generation sequencing present new computational challenges to develop methods to store and query these data in time- and memory-efficient ways. We present MetaProFi (https://github.com/kalininalab/metaprofi), a Bloom filter-based tool that, in addition to supporting nucleotide sequences, can for the first time directly store and query amino acid sequences and translated nucleotide sequences, thus bringing sequence comparison to a more biologically relevant protein level. Owing to the properties of Bloom filters, it has a zero false-negative rate, allows for exact and inexact searches, and leverages disk storage and Zstandard compression to achieve high time and space efficiency. We demonstrate the utility of MetaProFi by indexing UniProtKB datasets at organism- and at sequence-level in addition to the indexing of Tara Oceans dataset and the 2585 human RNA-seq experiments, showing that MetaProFi consumes far less disk space than state-of-the-art-tools while also improving performance.

bioinformatics↗

Autoantibodies against Progranulin and IL-1 receptor antagonist in critically ill COVID-19

STRUCTURED ABSTRACTHyperinflammation is frequently observed in patients with severe COVID-19. Inadequate and defective IFN type I responses against SARS-CoV-2, associated with autoantibodies in a proportion of patients, lead to severe courses of disease. In addition, hyperactive responses of the humoral immune system have been described. In the current study we investigated a possible role of neutralizing autoantibodies against antiinflammatory mediators. Plasma from adult patients with severe and critical COVID-19 was screened by ELISA for antibodies against PGRN, IL-1-Ra, IL-10, IL-18BP, IL-22BP, IL-36-Ra, CD40, IFN-2, IFN-{gamma}, IFN-{omega} and serpinB1. Autoantibodies were characterized and the antigens were analyzed for immunogenic alterations. In a discovery cohort with severe to critical COVID-19 high titers of PGRN-autoantibodies were detected in 11 of 30 (36.7%), and of IL-1-Ra-autoantibodies in 14 of 30 (46.7%) patients. In a validation cohort of 64 patients with critical COVID-19 high-titer PGRN-Abs were detected in 25 (39%) and IL-1-Ra-Abs in 32 of 64 patients (50%). PGRN-Abs and IL-1-Ra-Abs belonged to IgM and several IgG subclasses. In separate cohorts with non-critical COVID-19, PGRN-Abs and IL-1-Ra-Abs were detected in low frequency (i.e. in < 5% of patients) and at low titers. Neither PGRN-nor IL-1-Ra-Abs were found in 40 healthy controls vaccinated against SARS-CoV-2 or 188 unvaccinated healthy controls. PGRN-Abs were not cross-reactive against SARS-CoV-2 structural proteins nor against IL-1-Ra. Plasma levels of both free PGRN and free IL-1-Ra were significantly decreased in autoantibody-positive patients compared to Ab-negative and non-COVID-19 controls. In vitro PGRN-Abs from patients functionally reduced PGRN-dependent inhibition of TNF- signaling, and IL-1-Ra-Abs from patients reduced IL-1-Ra- or anakinra-dependent inhibition of IL-1{beta} signaling. The pSer81 hyperphosphorylated PGRN isoform was exclusively detected in patients with high-titer PGRN-Abs; likewise, a hyperphosphorylated IL-1-Ra isoform was only found in patients with high-titer IL-1-Ra-Abs. Thr111 was identified as the hyperphophorylated amino acid of IL-1-Ra. In longitudinally collected samples hyperphosphorylated isoforms of both PGRN and IL-1-Ra emerged transiently, and preceded the appearance of autoantibodies. In hospitalized patients, the presence of IL-1-Ra-Abs or IL-1-Ra-Abs in combination with PGRN-Abs was associated with a higher morbidity and mortality. To conclude, neutralizing autoantibodies to IL-1-Ra and PGRN occur in a significant portion of patients with critical COVID-19, with a concomitant decrease in circulating free PGRN and IL-1-Ra, indicative of a misdirected, proinflammatory autoimmune response. The break of self-tolerance is likely caused by atypical hyperphosphorylated isoforms of both antigens, whose appearances precede autoantibody induction. Our data suggest that these immunogenic secondary modifications are induced by the SARS-CoV-2-infection itself or the inflammatory environment evoked by the infection and predispose for a critical course of COVID-19.

immunology↗