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Biology subjects

Welp, L.

Publications and source records attributed to Welp, L..

3 recordsLinked to original sources

Identification and characterization of a human MORC2 DNA binding region that is required for gene silencing

The eukaryotic microrchidia (MORC) protein family are DNA gyrase, Hsp90, histidine kinase, MutL (GHKL)-type ATPases involved in gene expression regulation and chromatin compaction. The molecular mechanisms underlying these activities are incompletely understood. Here we studied the full-length human MORC2 protein biochemically. We identified a DNA binding site in the C-terminus of the protein, and we observe that this region is heavily phosphorylated in cells. Phosphorylation of MORC2 reduces its affinity for DNA and appears to exclude the protein from the nucleus. We observe that DNA binding by MORC2 reduces its ATPase activity and that MORC2 can topologically entrap multiple DNA substrates between its N-terminal GHKL and C-terminal coiled coil 3 dimerization domains. Finally, we observe that the MORC2 C-terminal DNA binding region is required for gene silencing in cells. Together, our data provide a model to understand how MORC2 engages with DNA substrates to mediate gene silencing.

biochemistry↗

Plk1 inhibition delays mitotic entry revealing prophase-specific changes to the phosphoproteome

Polo-like kinase 1 (plk1) is a conserved regulator of cell division. During prophase, plk1 phosphorylates direct substrates and is involved in activation of the cyclin-dependent kinase 1 (cdk1). However, the exact functions of plk1 in prophase remain incompletely understood. By testing several cell lines and small-molecule inhibitors, we confirm that plk1 inhibition causes a delay in mitotic entry. We show that cells are delayed in a prophase-like state displaying progressively condensing chromosomes, increased microtubule dynamics, reorganization of the actin cortex, while the nuclear envelope remains intact. We show that during this prolonged prophase cdk1 activity increases gradually over several hours with individual cells stochastically reaching the entry threshold, explaining the highly variable timing of mitotic entry. We then use phosphoproteomics to characterize this prolonged prophase state revealing for the first time phosphosites specific to prophase including several regulators of chromatin organization and the cytoskeleton. Together, we show that plk1 functions as a catalyst of prophase to prometaphase transition, and by using plk1 inhibition as a tool, we identify early changes in the phosphoproteome as the cell prepares for division.

cell biology↗

Phosphoproteomics identifies targets of Mos-MAPK regulating translation and spindle organization in oocyte meiosis

The Mos kinase activates the ERK/MAPK pathway during oocyte meiosis, controlling essential meiotic functions in species across metazoa. However, despite its significance, the molecular targets of Mos-MAPK remain largely unidentified. Here, we addressed this question using starfish oocytes ideally suited to combine cellular assays with phosphoproteomics. This revealed CPE-mediated mRNA polyadenylation as a prominent target of Mos-MAPK, and we show that translation is required to drive the second meiotic division. Secondly, we identify a well-defined subset of cytoskeletal regulators as targets of Mos-MAPK. We show that this regulation is critical to ensure the asymmetry of meiotic divisions primarily by reducing the growth of astral microtubules. This allows positioning of the spindle directly beneath the cortex and prevents the separation of spindle poles in anaphase, thereby minimizing polar body size. Thus, by phosphoproteomics we reveal molecular modules controlled by Mos-MAPK explaining how this single, conserved kinase can act as a switch between the mitotic and meiotic division programs.

cell biology↗