@phdthesis{Ullrich2014, author = {Ullrich, Melanie}, title = {Identification of SPRED2 as a Novel Regulator of Hypothalamic-Pituitary-Adrenal Axis Activity and of Body Homeostasis}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-107355}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {SPRED proteins are inhibitors of the Ras/ERK/MAPK signaling pathway, an evolutionary highly conserved and very widespread signaling cascade regulating cell proliferation, differentiation, and growth. To elucidate physiological consequences of SPRED2 deficiency, SPRED2 KO mice were generated by a gene trap approach. An initial phenotypical characterization of KO mice aged up to five months identified SPRED2 as a regulator of chondrocyte differentiation and bone growth. Here, the loss of SPRED2 leads to an augmented FGFR-dependent ERK activity, which in turn causes hypochondroplasia-like dwarfism. However, long term observations of older KO mice revealed a generally bad state of health and manifold further symptoms, including excessive grooming associated with severe self-inflicted wounds, an abnormally high water uptake, clear morphological signs of kidney deterioration, and a reduced survival due to sudden death. Based on these observations, the aim of this study was to discover an elicitor of this complex and versatile phenotype. The observed kidney degeneration in our SPRED2 KO mice was ascribed to hydronephrosis characterized by severe kidney atrophy and apoptosis of renal tubular cells. Kidney damage prompted us to analyze drinking behavior and routine serum parameters. Despite polydipsia, which was characterized by a nearly doubled daily water uptake, the significantly elevated Na+ and Cl- levels and the resulting serum hyperosmolality could not be compensated in SPRED2 KOs. Since salt and water balance is primarily under hormonal control of aldosterone and AVP, we analyzed both hormone levels. While serum AVP was similar in WTs and KOs, even after experimental water deprivation and an extreme loss of body fluid, serum aldosterone was doubled in SPRED2 KO mice. Systematic investigation of contributing upstream hormone axes demonstrated that hyperaldosteronism developed independently of an overactivated Renin-Angiotensin system as indicated by halved serum Ang II levels in KO mice. However, aldosterone synthase expression in the adrenal gland was substantially augmented. Serum corticosterone, which is like aldosterone released from the adrenal cortex, was more than doubled in SPRED2 KOs, too. Similar to corticosterone, the production of aldosterone is at least in part under control of pituitary ACTH, which is further regulated by upstream hypothalamic CRH release. In fact, stress hormone secretion from this complete hypothalamic-pituitary-adrenal axis was upregulated because serum ACTH, the mid acting pituitary hormone, and hypothalamic CRH, the upstream hormonal inductor of HPA axis activity, were also elevated by 30\% in SPRED2 KO mice. This was accompanied by an upregulated ERK activity in paraventricular nucleus-containing hypothalamic brain regions and by augmented hypothalamic CRH mRNA levels in our SPRED2 KO mice. In vitro studies using the hypothalamic cell line mHypoE-44 further demonstrated that both SPRED1 and SPRED2 were able to downregulate CRH promoter activity, CRH secretion, and Ets factor-dependent CRH transcription. This was in line with the presence of various Ets factor binding sites in the CRH promoter region, especially for Ets1. Thus, this study shows for the first time that SPRED2-dependent inhibition of Ras/ERK/MAPK signaling by suppression of ERK activity leads to a downregulation of Ets1 factor-dependent transcription, which further results in inhibition of CRH promoter activity, CRH transcription, and CRH release from the hypothalamus. The consecutive hyperactivity of the complete HPA axis in our SPRED2 KO mice reflects an elevated endogenous stress response becoming manifest by excessive grooming behavior and self-inflicted skin lesions on the one hand; on the other hand, in combination with elevated aldosterone synthase expression, this upregulated HPA hormone release explains hyperaldosteronism and the associated salt and water imbalances. Both hyperaldosteronism and polydipsia very likely contribute further to the observed kidney damage. Taken together, this study initially demonstrates that SPRED2 is essential for the appropriate regulation of HPA axis activity and of body homeostasis. To further enlighten and compare consequences of SPRED2 deficiency in mice and particularly in humans, two follow-up studies investigating SPRED2 function especially in heart and brain, and a genetic screen to identify human SPRED2 loss-of-function mutations are already in progress.}, subject = {Renin-Angiotensin-System}, language = {en} } @phdthesis{Engelhardt2004, author = {Engelhardt, Catherine Marie}, title = {Identification and characterisation of the Spred protein family}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-11456}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2004}, abstract = {The subject of this thesis was the cloning and the initial biochemical and functional characterisation of novel human proteins with an N-terminal Ena-VASP homology (EVH)-1 domain and a C-terminal Sprouty homologous region (SPR), which are related to the Drosophila AE33 protein. During the course of this work, three mouse homologues of the AE33 fly protein have been reported and termed Sprouty-related protein with an EVH-1 domain 1, 2 and 3 (Spred-1, -2, -3)(Wakioka et al, 2001; Kato et al, 2003). Spred-1, -2 and -3 are membrane associated substrates of receptor tyrosine kinases and they act as negative regulators of the Ras pathway during growth factor stimulation. As the Spred-family members seem to exert similar functions, the specific function of each member remains enigmatic. Therefore, we investigated the mRNA and protein expression patterns of the two murine protein family members Spred-1 and Spred-2 on the whole organ level. Furthermore, we focussed on the cellular localisation and the role of human and murine Spred-2 in the organism. The expression patterns of Spred-1 and Spred-2 differed markedly among various tissues and cell types. In mouse, Spred-1 is abundantly expressed in adult brain, cerebellum, and fetal tissues, whereas Spred-2 was ubiquitously expressed. In humans, Spred-2 was found to be strongly expressed in glandular epithelia and in invasive cytotrophoblasts, and at the subcellular level its immunoreactivity was associated with secretory vesicles and was found to colocalise with Rab11 GTPase. The new human Spred gene family was investigated in detail. Cloning of the fulllength form of human Spred-2 resulted in an 1254 bp coding sequence, corresponding to a 418 amino-acids protein. Immunoblotting with a set of affinitypurified antibodies confirmed the expression of a 47 kDa protein and suggested the presence of additional differently sized variants. Cloning of various shortened Spred- 2 mRNAs and identification of 2 additional human Spred genes (localised on different chromosomes) with their respective EST (expressed sequence tag) revealed that the new human Spred gene family displays extensive splicing, leading to the generation of short and long Spred proteins. All protein isoforms and splicing variants contain an EVH1-domain located at the N-terminus of the protein. The full-length forms ("a" forms) comprised the SPR, another functional domain localised at the C-terminus whereas the short variants (Spred-1b, 2 c-e, 3 c) lack the entire C-terminal SPR domain or part of it. The existence of short and long splicing variants of Spred-1, -2 and -3 revealed a common principle of organisation and splicing pattern in the Spred family. Functional analyses of the 5 cloned Spred-2 splicing variants revealed differential subcellular localisation and differential regulation of serum- and EGF- mediated ERK activation in HEK-293 cells. Taken together, these results indicate a highly specific expression pattern of Spred-1 and Spred-2 in various tissues suggesting a specific physiological role for the individual Spred isoform in these tissues. For example, Spred-2 appears to be involved in regulating secretory pathways. Furthermore, the human Spred family contains three genes, which are subject to extensive alternative splicing resulting in at least 8 different proteins with differential subcellular localisation and differential regulatory potential of the MAPK pathways during growth factor stimulation.}, subject = {Spred Protein}, language = {en} } @phdthesis{Bundschu2005, author = {Bundschu, Karin}, title = {Generation and characterization of spred-2 knockout mice}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-14333}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {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 (\&\#946;-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.}, subject = {Spred Protein}, language = {en} }