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Spreds are a new Sprouty-related family of membrane-associated proteins inhibiting the MAPK signaling pathway by interacting with Ras and Raf-1. Different studies have already demonstrated the inhibitory function of Spreds in cell culture systems, but the in vivo function of Spreds in the whole organism was still unclear. Therefore, Spred-2 knockout mice were generated using a gene trap approach. The Spred-2 deficiency was verified on RNA and protein levels and the lack of functional Spred-2 protein in mice caused a dwarf phenotype similar to achondroplasia, the most common form of human dwarfism. Spred-2-/- mice showed reduced growth and body weight, they had a shorter tibia length and showed narrower growth plates as compared to wildtype mice. Spred-2 promoter activity and protein expression were detected in chondrocytes, suggesting an important function of Spred-2 in chondrocytes and bone development. Furthermore, stimulation of chondrocytes with different FGF concentrations showed earlier and augmented ERK phosphorylation in Spred-2-/- chondrocytes as compared to Spred-2+/+ chondrocytes. These observations suggest a model, in which loss of Spred-2 inhibits bone growth by inhibiting chondrocyte differentiation through upregulation of the MAPK signaling pathway. An additional observation of Spred-2-/- mice was an increased bleeding phenotype after injuries, whereas the bleeding volume was extremely enlarged and the bleeding time was significantly prolonged. So far, hypertension as cause could be excluded, but to discover the physiological reasons for this phenotype, the different steps of the clotting cascade have to be investigated further. As the Spred-2 promoter activity studies demonstrated a high and specific Spred-2 expression in vascular smooth muscle cells and previous studies showed an interaction of Spreds with RhoA, a key regulator of vascular smooth muscle contraction, the regulation of smooth muscle contractility seems to be a good candidate of this phenomenon. Moreover, Spred-1 and Spred-2 specific antibodies were generated as important tools to study the protein expression patterns in mice. Furthermore, nothing was known about the Spred-2 promoter region and its regulation. Here, a detailed in situ analysis of the physiological promoter activity profile in the gene trapped Spred-2-deficient mouse strain was shown. In these mice, the beta-galactosidase and neomycin fusion gene (β-geo) of the gene trap vector was brought under control of the endogenous Spred-2 promoter, giving the opportunity to monitor Spred-2 promoter activity in practically every organ and their corresponding sub-compartments. X-Gal staining of sections of newborn and adult mice revealed 1) a very high Spred-2 promoter activity in neural tissues and different glands; 2) a high activity in intestinal and uterine smooth muscle cells, and kidney; 3) a low activity in heart, testis, lung, and liver; 4) an almost lacking activity in skeletal muscle and spleen, and 5) very interestingly, a very distinct and strong activity in vascular smooth muscle cells. Moreover, comparison of newborn and adult mouse organs revealed a nearly congruent Spred-2 promoter activity. These detailed data provide valuable information for further studies of the physiological functions of Spred-2 in organs showing strong Spred-2 promoter activity, which are in most of these organs still unclear. Finally, gene targeting vectors for Spred-1 and Spred-2 were cloned, to generate ES cells with a floxed exon 2 of the Spred-1 and Spred-2 gene, respectively. Now, these ES cells are valuable tools to establish conditional knockout mice. This is of major interest to investigate the physiological tissue specific functions of Spred-1 and Spred-2, especially if the double knockout mice are not viable.
The mammalian Vasodilator Stimulated Phosphoprotein (VASP) is a founding member of the Ena/VASP family of proteins that includes Drosophila Enabled (ena), the mammalian Ena homologue (Mena) and the Ena-VASP-like protein (Evl). VASP was initially discovered and characterized as a substrate for cGMP- and cAMP-dependent protein kinases (cGKs and cAKs). Ena/VASP proteins are involved in Actin-filament formation, plasma membrane protrusion, acceleration of Actin-based motility of Listeria and the establishment of cell-cell adhesion. Moreover, Ena/VASP proteins have been implicated as inhibitory factors in repulsive axon guidance and inhibition of plasma membrane activity and random motility in fibroblast. In order to study the physiological function of VASP, VASP-deficient mice had been generated in the laboratory by homologous recombination. VASP-/- mice showed hyperplasia of megakaryocytes in the bone marrow and spleen and a two-fold increase in thrombin- and collagen-induced platelet activation. To further investigate the cellular function of VASP, I established cardiac fibroblast cell lines derived from both wild type and VASP-/- mice. Both cell lines presented similar growth rates and normal contact dependent-growth inhibition but showed differences in morphology, migration and adhesion. Adherent VASP-/- cells, despite normal Mena and Evl expression levels, were highly spread. VASP-/- cells covered about twice the substrate surface area as wild type cells, while the cell volumes were unchanged. This shape difference suggests that VASP is involved in the regulation of spreading. Since the small GTPases Rac and Cdc 42 and their effector p21-activated kinase (Pak) are key regulators of lamellipodia formation and cell spreading, I analyzed this signalling pathway in VASP-/- cells stimulated with Platelet Derived Growth Factor-BB (PDGF-BB) or fetal calf serum. In wild type cells Rac and Pak were rapidly and transiently activated by PDGF or serum; however, in the absence of VASP both Rac and Pak activation was dramatically prolonged. The Rac/Pak pathway is known to play an essential role in cell motility. VASP deficient cells showed compromised migration and reorientation in a wound healing assay, probably due to enhanced Rac activity. The spreading phenotype, compromised migration and the effect observed on the Rac and Pak activities were reverted in VASP-/- cells stably transfected with full lenght human VASP, indicating a VASP dependent modulation of the Rac/Pak pathway and Rac/Pak regulated processes. Moreover, adhesion and detachment of VASP-deficient cells were significantly slower when compared to wild type cells. Preincubation of VASP+/+ cells with a cGMP analog accelerated adhesion. This acceleration did not take place in the VASP-/- cells, suggesting a VASP dependent effect. The second part of this work focused on VASP function in platelets. On the one hand I investigated the possibility of VASP-dependent Rac regulation in mouse platelets. Murine platelets are a good model for studying Rac regulation since they express high levels of VASP but not Mena/Evl and since VASP-deficient platelets show an increased platelet activation. Rac was activated by platelet agonists which was inhibited by preincubation with cGMP and cAMP analogs. Initial results which need to be extended showed that the cGMPcaused inhibition of Rac activation was VASP-dependent. Finally, in vivo platelet adhesion (platelet-vessel wall interactions) was studied using VASP-deficient mice. These studies demonstrated in-vivo that VASP down regulates platelet adhesion to the vascular wall under both physiological and pathophysiological conditions.