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EGFL7 regulates adult neural stem cell maintenance and differentiation by inhibition of Notch1
(2010)
In neurobiology the preexisting dogma on the unchangeability of the adult mammalian brain and its inability to give rise to new neurons has been challenged since the early nineties. Generally, it is now accepted that neurogenesis persists in adults. Progress in developmental and stem cell biology in recent years led to an increasing interest in regeneration-based treatment strategies for damaged tissue of the central nervous system. Thus, the enhancement of the endogenous potential of the brain to repair itself is potentially a feasible therapeutic strategy to treat various types of brain damage. Therefore, it is of great interest to understand the molecular mechanism that regulate adult neurogenesis. One of the prominent pathways suggested to be involved here is the Notch signaling cascade. Previously, it has been shown that various components of Notch signaling are expressed in the stem cell niche of the adult subventricular zone (SVZ) in vivo. Interestingly, a recent study demonstrated that the self-renewal potential of adult neural stem cells (NSCs) isolated from the SVZ depend on Notch signaling in vitro.
Recently, we identified a novel non-canonical Notch ligand termed epidermal growth factor-like domain 7 (EGFL7), which was originally described as a protein secreted by endothelial cells and functionally implicated in cellular responses of the vascular system such as cell migration and blood vessel formation. We were able to show that secreted EGFL7 binds to a region in Notch that is involved in ligand-mediated receptor activation, thus acting as an antagonist of Notch signaling.
The present study identifies neurons of the human and murine brain as a novel source of EGFL7, which suggests functions of EGFL7 in the neural system. Expression analyses by quantitative RT-PCR (qRT-PCR) revealed EGFL7 is down regulated in the adult SVZ, which suggests that endogenous EGFL7 may act as a Notch modulator of NSCs. We assessed the expression of Notch pathway components in adult NSCs isolated from the SVZ of adult mice and demonstrated that inhibition of Notch activity by the γ-secretase inhibitor DAPT reduced the self-renewal potential of NSCs. Accordingly, adenoviral-mediated expression of EGFL7 in vitro decreased Notch-specific signaling and reduced proliferation and self-renewal of NSCs. Conversely, activation of Notch by a constitutive active form of Notch (NICD) rescued the EGFL7-mediated reduction of NSC self-renewal verifying that this effect was directly linked to Notch signaling. Congruent to the reduced proliferation rate measured in vitro, induced expression of EGFL7 in vivo significantly reduced the number of Ki-67 positive cells within the SVZ upon cerebroventricular injection of EGFL7 adenovirus.
Expression analyses in the developing brain showed single EGFL7-positive cells within the marginal zone of the neocortex as measured by in situ hybridization. These cells might be Cajal-Retzius cells, specialized neurons, which specifically express Reelin, which is a protein of the extracellular matrix known to control neuronal migration and differentiation. Interstingly, we could show that Reelin and EGFL7 are expressed in a subtype of neurons of the adult mouse cortex. This implied an interaction of both proteins and was verified by co-immunoprecipitation assays, suggesting an additional role for EGFL7 in neuronal maintenance. QRT-PCR based expression analyses in vitro comparing differentiated and non-differentiated NSCs displayed an increase in EGFL7 expression during the differentiation process, which was paralled by reduced Notch signaling. NSCs differentiated on coverslips coated with EGFL7 differentiated into all three cell types - neurons, oligodendrocytes and astrocytes. EGFL7 favored the formation of neurons as compared to control comparable to the effect of the Notch-inhibitor DAPT. Furthermore, additional oligodendrocytes were formed. These cells displayed a mature morphology with distinct sprouts and branches in contrast to the small and round oligodendrocytes that formed on control coverslips, which resembled us of precursor cells. Neurons and oligodendrocytes were formed at the expense of astrocytes. Congruently to the effect observed in vitro, adenoviral-based expression of EGFL7 in the SVZ yielded a slight induction of neuronal differentiation in vivo. Taken together, these results show for the first time a previously unrecognized role for EGFL7 in the brain by modulation of the Notch pathway in adult NSCs, which changes the proliferation and differentiation potential of adult NSCs in vitro and in vivo.
In contrast to the class A heat stress transcription factors (Hsfs) of plants, a considerable number of Hsfs assigned to classes B and C have no evident function as transcription activators on their own. In the course of my PhD work I showed that tomato HsfB1, a heat stress induced member of class B Hsf family, is a novel type of transcriptional coactivator in plants. Together with class A Hsfs, e.g. tomato HsfA1, it plays an important role in efficient transcrition initiation during heat stress by forming a type of enhanceosome on fragments of Hsp promoter. Characterization of promoter architecture of hsp promoters led to the identification of novel, complex heat stress element (HSE) clusters, which are required for optimal synergistic interactions of HsfA1 and HsfB1. In addition, HsfB1 showed synergistic activation of the expression of a subset of viral and house keeping promoters. CaMV35S promoter, the most widely expressed constitutive promoter turned out to be the the most interesting candidate to study this effect in detail. Because, for most house-keeping promoters tested during this study, the activators responsible for constitutive expression are not known, but in case of CaMV35S promoter they are quite well known (the bZip proteins, TGA1/2). These proteins belong to the acidic activators, similar to class A Hsfs. Actually, on heat stress inducible promoters HsfA1 or other class A Hsfs are the synergistic partners of HsfB1, whereas on house-keeping or viral promoters, HsfB1 shows synergistic transcriptional activation in cooperation with the promoter specific acidic activators, e.g. with TGA proteins on 35S promoter. In agreement with this the binding sites for HsfB1 were identified in both house-keeping and 35S promoter. It has been suggested during this study that HsfB1 acts in the maintenance of transcription of a sub-set of house-keeping and viral genes during heat stress. The coactivator function of HsfB1 depends on a single lysine residue in the GRGK motif in its CTD. Since, this motif is highly conserved among histones as the acetylation motif, especially in histones H2A and H4,. It was suggested that the GRGK motif acts as a recruitment motif, and together with the other acidic activator is responsible for corecruitment of a histone acetyl transferase (HAT). So, the effect of mammalian CBP (a well known HAT) and its plant orthologs (HAC1) was tested on the stimulation of synergistic reporter gene activation obtained with HsfA1 and HsfB1. Both in plant and mammalian cells, CBP/HAC1 further stimulated the HsfA1/B1 synergistic effect. Corecruitment of HAC1 was proven by in vitro pull down assays, where the NTD of HAC1 interacted specifically both with HsfA1 and HsfB1. Formation of a ternary complex between HsfA1, HsfB1 and CBP/HAC1 was shown via coimmunoprecipitation and electrophoretic mobility shift assays (EMSA). In conclusion, the work presented in my thesis presents a new model for transcriptional regulation during an ongoing heat stress.
21 Hsfs belonging to classes A, B and C were identified in Arabidopsis following the sequencing of its genome. 1.) Cloning of full length and CTD chimeric constructs followed by transient reporter assays in tobacco protoplast using GUS fusion constructs of the promoters of Hsp17.4-CI, synthetic (HSE9) and APX2 showed Hsfs A1a, A1b, A1d, A1e, A2, A3 and A9 to be active. CTDs of Hsfs A7a, A7b and HsfC1 had activity but they showed poor DNA binding in reporter assays. Hsfs A1a, A1b, A1d, A1e, A2 and A3 were able to induce the expression of endogenous Hsps in tomato protoplasts. Interesting differences in promoter selectivity were observed for several Hsfs. 2.) RT-PCR and microarray analysis showed the Hsfs to be differentially expressed depending on tissue, abiotic and biotic stress, hormone and developmental s ge. Interesting patterns of coexpressed Hsfs were observed under different stresses and developmental stages. 3.) HsfA1b was found to be active on the plasmid borne PHsf:GUS reporters of Hsfs A1d, A2, A4a, A7b and B4 when tested in tobacco mesophyll protoplasts. Hsfs A1d, A2, A4a, A7b and B4 when tested in tobacco mesophyll protplasts. HsfA2 was inactive on PHsfA:GUS. HsfB1 showed repression of endogenous activity on several PHsf:GUS reporter constructs. 4.) The transcriptional regulation under heat stress and promoter organization of HsfA2 and FtSH4 (a metalloprotease gene oriented in a head to head fashion with HsfA2 in the Arabidopsis genome, sharing a common promoter region) was studied. The transcripts of FtSH4 and HsfA2 coaccumulated under heat stress. HsfA1b was active on PHsfA2:GUS and PFtSH4:GUS. Hsf binding sites on the intergenic region were determined using promoter deletion constructs in tobacco and Arabidopsis protoplasts. A bidirectional regulation of HsfA2 and FtSH4 by HsfA1b was observed in tobacco protoplast. 5.) Microarray analysis of a HsfA2 T-DNA insertion line vs. wild type Col-0 under heat stress conditions led to identification of a subset of target genes to be severely affected in the absence of HsfA2. Apart from several Hsps (heat stressproteins) and APX2 (Ascorbate peroxidase 2, oxidative stress scavenger), several other unknown genes are affected. APX2 was the most severely affected among them. HsfA2 was able to induce the transcription from its target gene promoters in fusion to GUS in transient reporter assays in tobacco protoplast. The HSE cluster to which HsfA2 binds on the APX2 promoter was also mapped by the same technique. The direct binding of HsfA2 to the promoter of selected target genes in the Arabidopsis genome was also demonstrated by chromatin immunoprecipitation studies.
Compared to all other organisms with 1 to 3 heat stress transcription factors (Hsfs) or Hsf-related factors, plants have extraordinarily large Hsf families with more than 20 Hsfs. Plant Hsfs are classified into three classes according to their oligomerization domains which is built of hydrophobic heptad repeats (HR) in two parts, HR-A and HR-B. Both parts may be immediately adjacent (class B), or they are separated by insertion of 21 (class A) and 7 amino acid residues (class C). In plant Hsf family, detailed investigations are so far limited to Hsfs A1a, A2, A3, A4d, A9, and B1. They strongly indicate functional diversification to be the main reason for the coexistence of multiple Hsfs. As an example the functional triad of HsfA1a, HsfA2, and HsfB1 is essential for all three phases of the hs response, (i) the triggering of the response by HsfA1a as master regulator, (ii) the maintenance and high efficiency of hs gene transcription by cooperation of HsfA1a with Hsfs A2 and B1, and finally, (iii) the restoration of house-keeping gene transcription during the recovery phase mediated by HsfB1 in cooperation with house-keeping transcription factors. The results presented in this thesis for Hsfs A4 and A5 open completely different aspects of functional diversification and cooperation of Hsfs. HsfA4 and HsfA5 homooligomerize and bind to corresponding HSE motifs. But in contrast to the highly active HsfA4, HsfA5 is completely inactive as transcriptional activator. Yeast two hybrid and GST pull-down techniques showed that both Hsfs have strong tendency for heterooligomerization. Using fluorescence microscopy the HsfA4/A5 heterooligomers were found to localize in the nucleus. These complexes are transcriptionally inactive due to the impairment of DNA binding. The repressor function of HsfA5 requires only its OD and no additional factors, e.g. a putative co-repressor recruited by the C-terminal domain, are involved. Evidently, the repressor effect mainly results from the interference with the oligomeric state of HsfA4b, which is essential for efficient DNA binding and activator functions. EST database search revealed that plants have a single HsfA5 and usually two A4-type Hsfs. Using bioinformatics tools, Hsfs A4 and A5 were found to be phylogenetically closely related and clearly distinct from the other members of the Hsf family. On the basis of RT-PCR and Microarray data the representatives of the A4/A5 group are well expressed in different plant tissues albeit at very different levels which change with the developmental stages and stress conditions In rice and Arabidopsis, HsfA4 functions as an anti-apoptotic factor for stress induced oxidative damages. Based on my results, I hypothesize that HsfA5 functions as a novel type of selective repressor, regulating the function of A4-type Hsfs in plants. Considering the high sequence conservation with in plant Hsf family, it is tempting to speculate that this role of Hsf4/A5 pair is a fundamental feature of the Hsf system in plants.
The heat stress response is characterized by the presence of heat stress transcription factors (Hsfs) which mediate transcription of heat stress genes. In tomato (Lycopersicon peruvianum) cell cultures the simultaneous expression of four Hsfs, which are either constitutively (HsfA1 and HsfA3) or heat-stress inducible (HsfA2 and HsfB1) expressed, results in a complex network with dynamically changing cellular levels, intracellular localization and functional interactions. In order to examine the relevance of their multiplicity as well as to get more insights into the complexity of the plant heat stress response, the individual tomato Hsfs were investigated with respect to their protein interactions in vitro and in vivo. To this aim, I used pull-down assays as well as yeast assays to study the following aspects: 1. Oligomeric state of Hsfs: the results show that all class A Hsfs (HsfA1, HsfA2 and HsfA3) are trimeric proteins and interact with each other via the oligomerization (HR-A/B) domain. The similarity of their HRA/B regions allows formation of homo- and heterooligomeric complexes between all class A Hsfs. This special property was investigated by mutational studies with HsfA2 indicating that the linker and the HR-B regions are the minimal part required for Hsf/Hsf interactions. The conserved hydrophobic amino acid residues of the HR-B region are most important whereas the amino acid residues of the linker may provide higher flexibility to the HR-B region. Another investigated factor was HsfB1. HsfB1 is a member of class B Hsfs, which are characterized by an oligomerization domain without the 21 amino acid residues linker inserted between the HR-A and HR-B regions. It has a low activator potential and exists exclusively as dimer. HsfB1 can not physically interact with class A Hsfs. However, HsfB1 and HsfA1, binding to adjacent HSE sites, are assumed to cause strong synergistic effects in gene activation. 2. Potential HsfB1 interacting proteins: we searched for HsfB1 interacting proteins by using recombinant His-tagged proteins with HsfB1 as baits in pull-down assays. Histones H2A, H2B and H4 were identified by means of Peptide Mass Finger Printing and N-terminal sequencing analyses. The three histones represent the major proteins in tomato whole cell extracts retrieved by HsfB1. 3. HsfA2/small heat stress proteins (sHsps) interaction: pull-down and yeast two-hybrid assays were used to study the specific interaction of HsfA2 with tomato class II sHsp. This interaction occurs via the oligomerization domain of HsfA2. Other members of the plant Hsp20 family, including class I sHsp, do not interact with HsfA2. Heterooligomers of HsfA2 with class II sHsp may represent precursor forms of the plant higher molecular weight cytoplasmic complexes of heat stress granules, which form during heat stress. The findings presented in this thesis are a contribution to support the concept of a Hsfs network via protein-protein interactions. These data, together with information obtained from other studies, are used to propose a tentative model of the complex Hsfs network controlling the plant heat stress response.