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Hubner, C. A.

Publications and source records attributed to Hubner, C. A..

2 recordsLinked to original sources

High-throughput differentiation of human blood vessel organoids reveals overlapping and distinct functions of the cerebral cavernous malformation proteins

Cerebral cavernous malformations (CCMs) are clusters of thin-walled enlarged blood vessels in the central nervous system that are prone to recurrent hemorrhage and can occur in both sporadic and familial forms. The familial form results from loss-of-function variants in the CCM1, CCM2, or CCM3 gene. Despite a better understanding of CCM pathogenesis in recent years, it is still unclear why CCM3 mutations often lead to a more aggressive phenotype than CCM1 or CCM2 variants. By combining high-throughput differentiation of blood vessel organoids from human induced pluripotent stem cells (hiPSCs) with a CCM1, CCM2, or CCM3 knockout, single-cell RNA sequencing, and high-content imaging, we uncovered both shared and distinct functions of the CCM proteins. While there was a significant overlap of differentially expressed genes in fibroblasts across all three knockout conditions, inactivation of CCM1, CCM2, or CCM3 also led to specific gene expression patterns in neuronal, mesenchymal, and endothelial cell populations, respectively. Taking advantage of the different fluorescent labels of the hiPSCs, we could also visualize the abnormal expansion of CCM1 and CCM3 knockout cells when differentiated together with wild-type cells into mosaic blood vessel organoids. In contrast, CCM2 knockout cells showed even reduced proliferation. These observations may help to explain the less severe clinical course in individuals with a pathogenic variant in CCM2 and to decode the molecular and cellular heterogeneity in CCM disease. Finally, the ability to differentiate blood vessel organoids in a 96-well format will further facilitate their use in drug discovery and other biomedical research studies. STATEMENTS AND DECLARATIONSO_ST_ABSConflicts of interest statementC_ST_ABSThe authors declare no competing interests. The here described protocol for high-throughput organoid synthesis has been filed as a patent application at the European Patent Office (Process number: EP24213596.0) Author contribution statementMR, DSk, and UF designed the study. DSk, VS, LM, and RAP performed most of the functional experiments. SH and TA performed the CAM assays. SR performed the immunohistochemical stainings. SB, DSi, DSk, and VS performed the confocal microscopy and high-content imaging analyses. AE, CB, and EMB performed the scRNA sequencing analysis. AW and CAH performed and analyzed the karyotyping of the hiPSC clones. DSk, RAP, VS, KC, MR, and SB analyzed the data. DSk, VS, LM, and MR prepared figures. All authors contributed to the interpretation of the results. DSk, RAP, VS, and MR drafted the manuscript, and all authors contributed to writing. Ethics statementThis study does not involve human participants or animal subjects. Availability of data and materialsAll relevant data are published within the paper and the supplementary files. ScRNA sequencing data can be accessed through the Gene Expression Omnibus (GEO) database (record number: GSE276497).

molecular biology↗

Urinary Sodium Wasting and Disrupted Collecting Duct Function in Mice with dRTA-Causing SLC4A1 Mutations

Distal renal tubular acidosis (dRTA) results in metabolic acidosis due to impaired urinary acidification and can also result in an unexplained urinary sodium-wasting phenotype. Here, we report the generation and characterization of a novel dRTA mutant mouse line, Ae1 L919X knockin (KI). Homozygous L919X KI mice exhibit typical dRTA features including a reduced ability to acidify urine in response to an acid load. This renal acidification defect was associated with a reduced number of Ae1-positive type A intercalated cells. To assess whether these mice exhibit urinary sodium-wasting as seen in some dRTA patients, homozygous KI L919X and the previously described R607H KI mice were fed a salt-depleted acid diet. In line with human patients, both mouse strains exhibited urinary sodium loss. Additionally, we identified increased expression of tight junction proteins claudin-4 and -10b, suggesting a compensatory paracellular pathway in the loop of Henle. Consistent with data from human patients, L919X KI mice displayed a milder phenotype than R607H KI mice. Our findings reveal that both mouse strains are appropriate models for dRTA with a urinary salt-wasting phenotype and a compensatory up-regulation of the paracellular pathway in the ascending limb of the loop of Henle.

physiology↗