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Megakaryocyte localization in the bone marrow depending on the knock-out of small Rho GTPases
(2020)
This work focuses on megakaryocyte physiology with a special interest in the description of the localization of megakaryocytes in the bone marrow in mice single-deficient of the small Rho GTPase RhoA or double-deficient for RhoA and Cdc42. RhoA knock-out mice revealed intraluminal presence of megakaryocytes in bone marrow sinusoids. In a next step, potential aggravation, attenuation or preservation of this phenotype was studied in related mouse strains and also in the setting of platelet depletion and blockage of important megakaryocyte and platelet glycoprotein receptors in order to understand underlying singling pathways. A second part of this thesis studied the role of RhoF in filopodia formation and scrutinized RhoF deficient mice with regard to platelet activation and degranulation.
Mouse embryonic stem cells (ESCs) are maintained in a naive ground state of pluripotency in the presence of MEK and GSK3 inhibitors. Here, we show that ground-state ESCs express low Myc levels. Deletion of both c-myc and N-myc (dKO) or pharmacological inhibition of Myc activity strongly decreases transcription, splicing, and protein synthesis, leading to proliferation arrest. This process is reversible and occurs without affecting pluripotency, suggesting that Myc-depleted stem cells enter a state of dormancy similar to embryonic diapause. Indeed, c-Myc is depleted in diapaused blastocysts, and the differential expression signatures of dKO ESCs and diapaused epiblasts are remarkably similar. Following Myc inhibition, pre-implantation blastocysts enter biosynthetic dormancy but can progress through their normal developmental program after transfer into pseudo-pregnant recipients. Our study shows that Myc controls the biosynthetic machinery of stem cells without affecting their potency, thus regulating their entry and exit from the dormant state.