@article{BarahonadeBritoKleinHesslingSerflingetal.2022, author = {Barahona de Brito, Carlotta and Klein-Hessling, Stefan and Serfling, Edgar and Patra, Amiya Kumar}, title = {Hematopoietic stem and progenitor cell maintenance and multiple lineage differentiation is an integral function of NFATc1}, series = {Cells}, volume = {11}, journal = {Cells}, number = {13}, issn = {2073-4409}, doi = {10.3390/cells11132012}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-278809}, year = {2022}, abstract = {Hematopoietic stem and progenitor cell (HSPC) maintenance and the differentiation of various lineages is a highly complex but precisely regulated process. Multiple signaling pathways and an array of transcription factors influence HSPC maintenance and the differentiation of individual lineages to constitute a functional hematopoietic system. Nuclear factor of activated T cell (NFAT) family transcription factors have been studied in the context of development and function of multiple mature hematopoietic lineage cells. However, until now their contribution in HSPC physiology and HSPC differentiation to multiple hematopoietic lineages has remained poorly understood. Here, we show that NFAT proteins, specifically NFATc1, play an indispensable role in the maintenance of HSPCs. In the absence of NFATc1, very few HSPCs develop in the bone marrow, which are functionally defective. In addition to HSPC maintenance, NFATc1 also critically regulates differentiation of lymphoid, myeloid, and erythroid lineage cells from HSPCs. Deficiency of NFATc1 strongly impaired, while enhanced NFATc1 activity augmented, the differentiation of these lineages, which further attested to the vital involvement of NFATc1 in regulating hematopoiesis. Hematopoietic defects due to lack of NFATc1 activity can lead to severe pathologies such as lymphopenia, myelopenia, and a drastically reduced lifespan underlining the critical role NFATc1 plays in HSPC maintenance and in the differentaion of various lineages. Our findings suggest that NFATc1 is a critical component of the myriad signaling and transcriptional regulators that are essential to maintain normal hematopoiesis.}, language = {en} } @phdthesis{Becker2021, author = {Becker, Isabelle Carlotta}, title = {The role of megakaryocytes and platelets in vascular and osteogenic development}, doi = {10.25972/OPUS-21024}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-210241}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {Platelets, small anucleate cell fragments in the blood stream, derive from large precursor cells, so-called megakaryocytes (MK) residing in the bone marrow (BM). In addition to their role in wound healing, platelets have been shown to play a significant role during inflammatory bleeding. Above all, the immunoreceptor tyrosine-based activation motif (ITAM) receptors GPVI as well as CLEC-2 have been identified as main regulators of vascular integrity. In addition to ITAM-bearing receptors, our group identified GPV as another potent regulator of hemostasis and thrombosis. Surprisingly, concomitant lack of GPV and CLEC-2 deteriorated blood-lymphatic misconnections observed in Clec2-/- mice resulting in severe edema formation and intestinal inflammation. Analysis of lymphatic and vascular development in embryonic mesenteries revealed severely defective blood-lymph-vessel separation, which translated into thrombocytopenia and increased vascular permeability due to reduced tight junction density in mesenteric blood vessels and consequent leakage of blood into the peritoneal cavity. Recently, platelet granule release has been proposed to ameliorate the progression of retinopathy of prematurity (ROP), a fatal disease in newborns leading to retinal degradation. The mechanisms governing platelet activation in this process remained elusive nonetheless, which prompted us to investigate a possible role of ITAM signaling. In the second part of this thesis, granule release during ROP was shown to be GPVI- and partly CLEC-2-triggered since blockade or loss of these receptors markedly deteriorated ROP progression. Proplatelet formation from MKs is highly dependent on a functional microtubule and actin cytoskeleton, the latter of which is regulated by several actin-monomer binding proteins including Cofilin1 and Twinfilin1 that have been associated with actin-severing at pointed ends. In the present study, a redundancy between both proteins especially important for the guided release of proplatelets into the bloodstream was identified, since deficiency in both proteins markedly impaired MK functionality mainly due to altered actin-microtubule crosstalk. Besides ITAM-triggered activation, platelets and MKs are dependent on inhibitory receptors, which prevent overshooting activation. We here identified macrothrombocytopenic mice with a mutation within Mpig6b encoding the ITIM-bearing receptor G6b-B. G6b-B-mutant mice developed a severe myelofibrosis associated with sex-specific bone remodeling defects resulting in osteosclerosis and -porosis in female mice. Moreover, G6b-B was shown to be indispensable for MK maturation as verified by a significant reduction in MK-specific gene expression in G6b-B-mutant MKs due to reduced GATA-1 activity.}, subject = {Megakaryozyt}, language = {en} } @phdthesis{Harder2002, author = {Harder, Friedrich}, title = {Untersuchungen zum in vivo Differenzierungspotenzial muriner und humaner h{\"a}matopoetischer sowie muriner neuraler Stammzellen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-4214}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2002}, abstract = {Zusammenfassung Im Zuge der S{\"a}ugerentwicklung entsteht aus der totipotenten Eizelle ein Organismus aus mehr als 200 verschiedenen Zelltypen. Dabei wird die Entwicklung und der Erhalt des Tieres von Stammzellen gew{\"a}hrleistet. W{\"a}hrend der Embryonalentwicklung gibt es nur transient vorkommende Stammzelltypen, w{\"a}hrend der adulte K{\"o}rper die Homoeostase mittels permanent vorhandener somatischer Stammzellen aufrechterh{\"a}lt. Als kennzeichnend f{\"u}r die somatischen Stammzellen galt, dass sie nur die Zellen ihres Gewebes ersetzen k{\"o}nnen. In der vorliegenden Arbeit wurde untersucht, ob SSZ tats{\"a}chlich auf die Bildung von Zellen ihres Stammzellkompartiments beschr{\"a}nkt sind. Dazu wurden drei verschiedene Stammzelltypen, murine h{\"a}matopoetische und humane HSZ sowie murine NSZ in murine Pr{\"a}implantationsblastozysten injiziert. Da dies die Zellen mit einer Umgebung exponiert, von der die Bildung aller Zelltypen des erwachsenen Tieres ausgeht. Es konnte gezeigt werden, dass zur Mitte der Schwangerschaft Nachkommen aller drei injizierten Stammzelltypen sich pr{\"a}ferentiell in den f{\"o}talen h{\"a}matopoetischen Geweben befinden. F{\"u}r humane h{\"a}matopoetische und murine NSZ wurde gezeigt, dass diese h{\"a}matopoetische Vorl{\"a}ufer in h{\"a}matopoetischen Geweben der Embryonen bilden, sowie dass Nachkommen dieser Zellen ein erythroides Genexpressionsmuster aktivieren. Der Vergleich adulter chim{\"a}rer Tiere zeigte, dass HSZ zu nahezu gleichen Teilen neurale und h{\"a}matopoetische Gewebe besiedelt hatten. Nachkommen neuraler Stammzellen dagegen vor allem in neuralen Geweben adulter Tiere gefunden wurden. Aus diesen Ergebnisssen l{\"a}sst sich ableiten, dass SSZ durch die Exposition mit der fr{\"u}hen embryonalen Mikroumgebung zur Bildung heterologer Zelltypen angeregt werden k{\"o}nnen. Außerdem demonstrieren diese Ergebnisse das unterschiedliche Entwicklungspotenzial von HSZ und NSZ und grenzen es gegen{\"u}ber dem pluripotenten Differenzierungspotenzial von ES-Zellen ab.}, subject = {Maus}, language = {de} }