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Dijt, S. J.

Publications and source records attributed to Dijt, S. J..

2 recordsLinked to original sources

STED microscopy reveals mitotic stage-dependent CENP-A organization

Chromosome segregation is vital. Its disruption can cause aneuploidy, a hallmark of cancer. Centromere protein A (CENP-A) is an important protein during the segregation as it marks the location of the centromere, where the kinetochore assembles for microtubule attachment. Each mammalian centromere contains hundreds of CENP-A nucleosomes, whose spatial arrangement is expected to be critical for kinetochore function and error-free chromosome segregation. However, previous studies--mostly in fixed cells and focused on metaphase--have yielded conflicting results on CENP-A organization. Given the centromere's sub-diffraction size, we used stimulated emission depletion (STED) super-resolution microscopy to visualize the CENP-A organization in both living (about 45 nm resolution) and fixed (about 30 nm resolution) immortalized human retinal pigment epithelial cells (hTERT RPE-1). We found that CENP-A organization does not adopt a single architecture but spans a spectrum from dense clusters to fragmented subclusters, with mitotic stage-dependent abundance and morphology. CENP-A chromatin is most dispersed in prophase, and progressively compacts during prometaphase and metaphase as microtubules attach. In meta- and anaphase predominantly dense organizations are formed, often with a plate-like morphology. Yet, non-dense and non-plate-like organizations persist through metaphase and anaphase, suggesting CENP-A spatial reorganization is heterogeneous during cell division.

biophysics↗

4-HNE reduces phagocytosis through the expression of Synaptotagmin 1 in human monocyte-derived macrophages

Reactive oxygen species (ROS) react with polyunsaturated fatty acids (PUFA) and generate the reactive aldehyde 4-hydroxynonenal (4-HNE). 4-HNE is a potent modulator of cell signaling, proliferation, and death. Our transcriptomics analysis revealed that upon treatment of human monocyte-derived macrophages with 4-HNE synaptotagmin-1 (SYT1), the main calcium sensor for neurotransmitter release, became the most strongly upregulated protein. This is surprising, as SYT1 expression is normally restricted to neurons and neuroendocrine cells. Using overexpression of SYT1 fused to a fluorescent reporter protein, we found SYT1 predominantly locates at the plasma membrane in macrophages. Based on this finding, and on the reported roles of other SYT forms in macrophages and other immune phagocytes, we tested the role of SYT1 in phagocytosis. Functional assays showed that SYT1 inhibited phagocytosis of pathogenic bacteria. Thus, our findings reveal an unexpected role of SYT1 in immune cells.

molecular biology↗