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Misztal, K.

Publications and source records attributed to Misztal, K..

3 recordsLinked to original sources

Pronounced sequence specificity of the TET enzyme catalytic domain guides its cellular function

TET (ten-eleven translocation) enzymes catalyze the oxidation of 5-methylcytosine bases in DNA, thus driving active and passive DNA demethylation. Here, we report that the catalytic cores of mammalian TET enzymes favor CpGs embedded within bHLH and bZIP transcription factor binding sites, with 250-fold preference in vitro. Crystal structures and molecular dynamics calculations show that sequence preference is caused by intra-substrate interactions and CpG flanking sequence indirectly affecting enzyme conformation. TET sequence preferences are physiologically relevant as they explain the rates of DNA demethylation in TET-rescue experiments in culture and in vivo within the zygote and germline. Most and least favorable TET motifs represent DNA sites that are bound by methylation-sensitive immediate-early transcription factors and OCT4, respectively, illuminating TET function in transcriptional responses and pluripotency support. One-Sentence SummaryThe catalytic domains of the enzymes that facilitate passive and drive active DNA demethylation have intrinsic sequence preferences that target DNA demethylation to bHLH and bZIP transcription factor binding sites.

molecular biology↗

Ectosome effect on endothelial monolayers in hyperglycemic and normoglycemic conditions

Extracellular vesicles, namely those larger ones - Ectosomes (Ect), are thought to be important cell-to-cell communication medium. Ect are considered as a potential therapeutic for type-1 and type-2 diabetes mellitus. Ect can be internalized by endothelial cells and, owing to their cargo, they modulate targeted cell behavior. Under hyperglycemic conditions (HGC), endothelial cells changed their properties and became stiffer and less mobile which causes endothelial dysfunction and abnormalities in micro- and macrovascular systems. The aim of this study was to find whether Ect restore mobility and motility of macrovascular endothelial cells under HGC. Uptake of Ect, cell morphology, cytoskeleton organization and membrane stiffness (by atomic force microscopy) were analyzed after the exposure to isolated Ect. To find which cellular pathways were deregulated by HGC and whether Ect could potentially restore gene expression profile, transcriptome analysis was done. We observed that endothelial cells internalized more Ect under normoglycemic conditions (NGC) then HGC. Hyperglycemic cells (HG) were bigger and showed the stiffer surface with denser actin cytoskeleton in comparison to normoglycemic cells. Number of metabolic pathways was influenced under HGC, especially those related to intracellular transport, metabolism and cellular component organization and Ect did not restore HGC impaired cell signaling. Ectosomes cannot reverse this harmful effect of hyperglycemia in endothelial cells, which can have clinical implication in use Ect as therapeutic target in diabetes treatment.

cell biology↗

Adar-mediated A-to-I editing is required for establishment of embryonic body axes in zebrafish

Adenosine deaminases (ADARs) catalyze the deamination of adenosine to inosine, also known as A-to-I editing, in RNA. Although A-to-I editing occurs widely across animals, and is well studied, new biological roles are still being discovered. Here, we study the role of A-to-I editing in early zebrafish development. We demonstrate that Adar, the zebrafish orthologue of mammalian ADAR1, is essential for establishing the antero-posterior and dorso-ventral axes and patterning. Genome-wide editing discovery revealed pervasive editing in maternal and the earliest zygotic transcripts, the majority of which occurred in the 3-UTR. Interestingly, transcripts implicated in gastrulation as well as dorso-ventral and antero-posterior patterning were found to contain multiple editing sites. Adar knockdown or overexpression affected gene expression and global editing patterns at 12 hpf, but not earlier. Our study established that RNA editing by Adar is necessary for the earliest steps of embryonic patterning along the zebrafish antero-posterior and dorso-ventral axes.

developmental biology↗