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Lindenmeyer, M.

Publications and source records attributed to Lindenmeyer, M..

2 recordsLinked to original sources

The tricellular junction protein ILDR2 in glomerulopathies: insights and implications

The tricellular tight junctions are crucial for the regulation of paracellular flux at tricellular junctions, where tricellulin (MARVELD2) and angulins (ILDR1, ILDR2 or LSR) are localized. The role of ILDR2 in podocytes, specialized epithelial cells in the kidney, is still unknown. We investigated the role of ILDR2 in glomeruli and its influence on blood filtration. Western blots, scRNA-seq and superresolution microscopy showed a strong expression of MARVELD2 and ILDR2 in podocytes that colocalizes with the podocyte-specific claudin CLDN5. Co-immunoprecipitation revealed that ILDR2 directly binds CLDN5. In glomerulopathies, induced by nephrotoxic serum and by DOCA-salt heminephrectomy, ILDR2 was strongly upregulated. Furthermore, Ildr2 knockout mice exhibited glomerular hypertrophy and decreased podocyte density, however, did not develop effacement of podocyte foot processes or proteinuria. LC-MS/MS proteomic analysis of isolated glomeruli showed an increase in matrix proteins such as fibronectin and agrin. This suggests a protective role of ILDR2 in glomerulopathies.

cell biology↗

A universal preservation protocol for multi-omic and histological analysis of kidney tissue

Biobanking of tissue from clinically obtained kidney biopsies for later use with multi-omic and imaging techniques is an inevitable step to overcome the need of disease model systems and towards translational medicine. Hence, collection protocols ensuring integration into daily clinical routines using preservation media not requiring liquid nitrogen but instantly preserving kidney tissue for clinical and scientific analyses are of paramount importance. Thus, we modified a robust single nucleus dissociation protocol for kidney tissue stored snap frozen or in the preservation media RNAlater and CellCover. Using porcine kidney tissue as surrogate for human kidney tissue, we conducted single nucleus RNA sequencing with the Chromium 10X Genomics platform. The resulting data sets from each storage condition were analyzed to identify any potential variations in transcriptomic profiles. Furthermore, we assessed the suitability of the preservation media for additional analysis techniques (proteomics, metabolomics) and the preservation of tissue architecture for histopathological examination including immunofluorescence staining. In this study, we show that in daily clinical routines the RNAlater facilitates the collection of highly preserved kidney biopsies and enables further analysis with cutting-edge techniques like single nucleus RNA sequencing, proteomics, and histopathological evaluation. Only metabolome analysis is currently restricted to snap frozen tissue. This work will contribute to build tissue biobanks with well-defined cohorts of the respective kidney disease that can be deeply molecularly characterized, opening new horizons for the identification of unique cells, pathways and biomarkers for the prevention, early identification, and targeted therapy of kidney diseases.

genomics↗