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van Leeuwen, M. E.

Publications and source records attributed to van Leeuwen, M. E..

2 recordsLinked to original sources

Human DCM-time machine unravels cell state changes during primitive gut tube differentiation

Cell state changes in development and differentiation are directed by gene and enhancer activity changes, the dynamics of which are difficult to study in real time. To be able to define lineage paths and monitor time resolved cell state changes during pluripotent stem cell differentiation, we introduced the DCM-time machine technology (DCM-TM) into human induced pluripotent stem cells (iPSCs). We demonstrate that, at time of induction, human DCM-TM labels active genes and enhancers. In addition, we find that the majority of the DCM methylation labels are propagated during S-phase, which makes it well suited to trace gene and enhancer activity during cell state changes. As proof of concept, we applied the DCM-time machine to study differentiation from iPSCs towards definitive endoderm and primitive gut tube cells. In a comparative analysis with scRNA-seq, we show the capacity of the system to label gene and enhancer activity during differentiation and trace back gene and enhancer activity over time across multiple cell divisions. In addition, we demonstrate that combining DCMTM with methylated DNA sequencing (MeD-seq) enables the detection of CpG methylation changes, which can be correlated with gene and enhancer activity dynamics. Human DCM-TM provides a novel genome-wide lineage tracing tool for iPSCs and will be a significant contribution to the understanding of healthy and pathogenic embryonic development.

developmental biology↗

Proteolytic activity of surface exposed HtrA determines its expression level and is needed to survive acidic conditions in Clostridioides difficile

To survive in the host, pathogenic bacteria need to be able to react to the unfavourable conditions that they encounter, like low pH, elevated temperatures, antimicrobial peptides and many more. These conditions may lead to unfolding of envelope proteins and this may be lethal. One of the mechanisms through which bacteria are able to survive these conditions is through the protease/foldase activity of the high temperature requirement A (HtrA) protein. The gut pathogen Clostridioides difficile encodes one HtrA homolog that is predicted to contain a membrane anchor and a single PDZ domain. The function of HtrA in C. difficile is hitherto unknown but previous work has shown that an insertional mutant of htrA displayed elevated toxin levels, less sporulation and decreased binding to target cells. Here, we show that HtrA is membrane associated and localized on the surface of C. difficile and characterize the requirements for proteolytic activity of recombinant soluble HtrA. In addition, we show that the level of HtrA in the bacteria heavily depends on its proteolytic activity. Finally, we show that proteolytic activity of HtrA is required for survival under acidic conditions.

microbiology↗