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Proteostasis stressors that destabilize the cellular proteome, like heat shock, trigger transcription and translational reactions leading to the accumulation of heat shock proteins, also called molecular chaperones. During stress, induction of stress response genes is prioritized so that molecular chaperones and other stress response proteins are synthesized to cope with proteome misfolding and aggregation. In order to promote the selective translation of stress-specific genes, translation of others genes that are nonessential for cell survival has to stop. Nonessential protein-coding mRNAs accumulate in the cytosol with the associated proteins to form granular structures called stress granules (SG). These membrane-less organelles are thought to be involved in cell survival, mRNA stabilization and mRNA triage. They were proposed to form via the liquid-liquid phase separation which can be triggered by the high local concentration of RNA-binding proteins. mRNAs were long thought to simply play a scaffolding role by bringing RNA-binding proteins together and allowing their concentration and local aggregation. Recently, the active role of mRNAs in the SG assembly became apparent, too. For example, the spontaneous assembly of total yeast RNA into granules was observed, and these RNA granules showed a large overlap with SG transcriptome. Furthermore, cytosolic mRNAs can be released from polyribosomes under stress and be exposed to the cytosolic contents as free mRNAs. It has been suggested that this massive increase of free mRNA in the cytosol might overload the capacities of RNA-stabilizing proteins. The remaining free mRNA molecules would then become exposed to misfolded and aggregation-prone proteins and trigger granulation.
We investigated the role of free mRNAs in different stress conditions during the early and chronic phases of stress response and explored their involvement in SGs assembly and amlyoidogenesis. We identified and studied the interactome of a free mRNA probe incubated with heat shocked cell lysate by means of quantitative mass spectrometry. Proteomics analysis allowed us to identify 79 interactors of free mRNA. Among these interactors, we focused on the translation initiation factor eIF2α and on the RNA methyltransferase TRMT6/61A. Both interactions were verified biochemically, which confirmed that the association is enhanced in heat shocked lysate. In vitro reconstitution showed that free mRNA and TRMT6 interact directly. Ex vivo pulldowns revealed that eIF2α and TRMT6/61A interact under stress conditions and that this interaction is RNA-dependent.
TRMT6/61A is a tRNA methytransferase responsible for the methylation of the adenosine 58 at the position 1 producing m1A. However, also mRNAs have been recently found to be methylated by TRMT6/61A. Our bioinformatics analyses revealed that significantly more mRNAs enriched in SG contain the motif for methylation than SG-depleted mRNAs. We hypothesized that m1A methylation of mRNAs could constitute a tag for the mRNAs targeting to SGs. TRMT61A knock-down (KD) cell lines were generated using the CRISPR-Cas9 technique. In TRMT61A KD cells, m1A was significantly reduced on mRNAs, which correlated with an increased sensitivity of the cells to proteostasis stress. KD cells also showed defects in SG assembly. In heat shocked cells, an m1A motif-containing mRNA recovered better after returning to normal temperature than a control mRNA with mutated motif. In addition, we could isolate SGs and analyze their m1A and m6A content by mass spectrometry. While m6A content in SG mRNAs was very similar to cytosolic mRNAs, m1A was almost 8 times enriched in SGs. Thus, we could confirm experimentally the results of the bioinformatics analysis and directly support the hypothesis that m1A is a tag to direct mRNAs for sequestration. Finally, we compared amyloidogenesis in wild-type and TRMT61A KD cell lines. Cells with reduced levels of TRMT61A demonstrated an increased accumulation of transfected Aβ and an impaired aggregate clearance. Various assays led us to conclude that the lack of m1A deposition on mRNAs enhanced RNA co-aggregation with amyloids.
Based on our results, we propose a model explaining the fate of free mRNA during proteostasis stress. Upon polysome disassembly, free mRNA is released and becomes free to interact with other proteins, including the methyltransferase TRMT6/61A. TRMT6/61A methylates the freed mRNAs containing the cognate motif. The m1A tag then targets mRNAs to SGs promoting sequestration. Upon stress release, SGs disassemble, thus releasing rescued mRNAs which could now reenter translation and support cell recovery. On the other hand, non-sequestered mRNAs increasingly co-aggregate with aggregating proteins. Thus, deficiency of the N1-adenine methylation of mRNAs due to the lack of TRMT6/61A increases the amount of unpacked mRNAs. The deposition of m1A on mRNAs could then be a way to protect them during exposure to stress, to limit their co-aggregation with misfolded proteins and to allow a faster recovery upon stress release.
Verglichen mit normal progredierenden HIV-1 Infizierten weisen Langzeit Nicht-Progredierende (LTNP), trotz chronischer Infektion und ohne antivirale Therapie, keinerlei Anzeichen einer klinischen Progression sowie stabil hohe CD4+-Zellzahlen und eine geringe Viruslast auf. Für diesen ungewöhnlichen Infektionsverlauf wurden mehrere virologische, genetische und immunologische Ursachen in der Literatur beschrieben. Anhand einer gut charakterisierten LTNP-Kohorte und einer Kontrollgruppe mit vergleichbaren klinischen Markern, wurde hier der Einfluss der einzelnen Faktoren, vor allem der humoralen Immun-antwort, auf den Infektionsverlauf analysiert. Die Analyse viraler und patienteneigener Gene zeigt, dass keiner der LTNP die ccr5Delta32 Mutation aufweist und auch der Vergleich der viralen Proteine Env, Nef, Rev, Tat und Vpr ergab keine zwingende Ursache für ein Ausbleiben der Progression. So zeigt sich zwar eine Anreicherung von Insertionen in den Variablen Schleifen (v.a. V1/V2) in den Env der LTNP-Viren, die Funktionalität der viralen Hüllproteine wurde jedoch mit Hilfe HIV-1 Env-rekombinanter Reporterviren aufgezeigt. Die HIV-1 Env-rekombinanten Reporterviren der LTNP unterschieden sich weder in ihrer Infektiosität, noch in der Effizienz der frühen Replikationsschritte von den korrespondierenden Viren der HIV-1 Kontrollpatienten, was einen entscheidenden Einfluss der Hüllproteine auf den Infektionsverlauf nahezu aus-schließt. Seitens der zellulären Immunantwort wurden in einigen LTNP HLA-B Typen identifiziert, die in der Literatur mit einem verlangsamten Infektionsverlauf und einer aus-geprägten zellulären Immunantwort in Verbindung gebracht wurden. Die Untersuchung der zellulären Immunantwort der LTNP (außerhalb dieser Arbeit) ergab jedoch keine Besonder-heiten, was den Einfluss der identifizierten HLA-B Typen auf den nicht-progredierenden Infektionsverlauf relativiert. Die humorale Immunantwort der Patienten wurde in umfassen-den Neutralisationsstudien mit Hilfe der HIV-1 Env-rekombinanten Reporterviren analysiert. Hierbei zeigte sich, dass die LTNP, verglichen mit den HIV-1 Kontrollpatienten, eine signifikant bessere humorale Immunantwort besitzen. Zusammen mit den zuvor gewonnenen Erkenntnissen legt dies einen entscheidenden Einfluss neutralisierender Antikörper am Nicht-Progredieren der LTNP nahe. Durch den Einsatz HIV-1 Env-spezifischer Peptidphagen wurde die humorale Immunantwort der zwei Patientengruppen weiter untersucht, wobei einige Unterschiede zwischen der Antikörperantwort der LTNP und HIV-1 Kontrollpatienten aufgezeigt wurden. Mit Hilfe dieser Peptidphagen wurde in Versuchstieren eine HIV-1 Env-reaktive Immunant-wort induziert. Die Fusion von Myelomzellen mit den B-Zellen der immunisierten Tiere und die anschließende Selektion führten zur Isolierung HIV-1 Env-spezifischer Hybridomazellen. Um sich den Vorteil der langjährigen Antikörperreifung in den Patienten selbst zu Nutze zu machen und gezielt breit-neutralisierende Antikörper zu isolieren, wurden, ausgehend von B-Zell mRNA der LTNP, patienteneigene scFv Phagen Display Bibliotheken erstellt. Die in vitro Selektion dieser scFv Phagen Display Bibliotheken mit unterschiedlichen HIV-1 Env Varianten führte zur Isolierung einiger HIV-1 Env spezifischer scFv-Phagen. Die Untersuchung der Bindungseigenschaften des reaktivsten scFv-Phagens zeigte eine breite Reaktivität gegen unterschiedliche HIV-1 Env Varianten, die durch HIV-1 positives Serum kompetiert werden konnte. Das Epitop dieses scFv-Phagens wurde in der Variablen Schleife 3 von HIV-1 Env lokalisiert. Diese Arbeit zeigt den entscheidenden Einfluss der humoralen Immunantwort für die nicht-progredierende Infektion der hier untersuchten LTNP und gibt erste Hinweise auf mögliche Ursachen für die außergewöhnlich breite Serumreaktivität. Die Identifikation charakteristischer Eigenschaften in der humoralen Immunantwort, sowie die Identifizierung der hierfür verantwortlichen Antikörper kann bei der Entwicklung aktiver oder passiver Vakzine von entscheidendem Vorteil sein oder als Ausgangspunkt für neue therapeutische Ansätze dienen.
Autophagy, together with the ubiquitin-proteasome system, is the main quality control pathway responsible for maintaining cell homeostasis. There are several types of autophagy distinguished by cargo selectivity and means of induction. This thesis focuses on macroautophagy, hereafter autophagy, where a double-layered membrane is formed originating from the endoplasmatic reticulum (ER) engulfing cargo selectively or unselectively. Subsequently, a vesicle forms around the cargo, an autophagosome, and eventually fuses with the lysosome leading to degradation of the vesicle content and release of the cargo “building blocks”. Basal autophagy continuously occurs, unselectively engulfing a portion of the cytoplasm. However, autophagy can also be induced by stress such as starvation, protein aggregation, damaged organelles, intracellular pathogens etc. In this case, the cargo is selectively targeted, and the fate of the autophagosome is the same as in basal autophagy. In recent years, interest in identifying mechanisms of autophagy regulation has risen due to its importance in neurodegenerative diseases and cancer. Given the complexity of the process, its execution is tightly regulated from initiation, autophagosome formation, expansion, closure, and finally fusion with the lysosome. Each of the steps involves different protein complexes, whose timely activity is orchestrated by post-translational modifications. One of them is ubiquitination. Ubiquitin is a small, 76-amino acid protein conjugated in a 3-step reaction to other proteins, in a reversible manner, meaning undone by deubiquitinases. Originally described as a degradation signal targeting proteins to the proteasome, today it is known it has various additional non-proteolytic functions, such as regulating a protein’s activity, localization, or interaction partners. The role of ubiquitin in autophagy has already been shown. However, given the reversibility and fine-tuning of the ubiquitin signal, many expected regulators remain unidentified. This work aimed to identify novel deubiquitinating enzymes that regulate autophagy. We identified ubiquitin-specific protease 11 (USP11) as a novel, negative regulator of autophagy. Loss of USP11 leads to an increase in autophagic flux, whereas overexpression of USP11 attenuates it. Moreover, this observation was reproducible in model organism Caenorhabditis elegans, emphasizing the importance of USP11 in autophagy regulation. To identify the mechanism of USP11-dependent autophagy regulation, we performed a USP11 interactome screen after 4 hour Torin1 treatment and identified a plethora of autophagy-related proteins. Following the most prominent hits, we have investigated versatile ways in which USP11 regulates autophagy. USP11 interacts with the PI3KC3 complex, the role of which is phosphorylating lipids of the ER, thereby initiating the formation of the autophagosomal membrane. Phosphorylated lipids serve as a recruitment signal for downstream effector proteins necessary for the membrane expansion. The core components of the complex are VPS34, the lipid kinase, ATG14, the protein responsible for targeting the complex to the ER, VPS15, a pseudokinase with a scaffolding role, Beclin1, a regulatory subunit, and NRBF2, the dimer-inducing subunit. We have found USP11 interacts with the complex and, based on its activity, USP11 influences post-translational status of all the aforementioned subunits, except for ATG14. Moreover, we have found that loss of USP11 leads to an increase in NRBF2 levels, whereas it does not change the levels of the other proteins. Given that the dimerization of the complex leads to an increase in complex activity, we investigated if the complex is more tightly formed in the absence of USP11, and if it is more active. We have found both to be the case. Although the exact mechanism of USP11-dependent PI3KC3 complex regulation remains to be identified, we found that loss of USP11 stimulates the complex formation and activity, likely contributing to the general effect of USP11 on autophagy flux. Additionally, we found that USP11 modulates levels of mTOR, the most upstream kinase in autophagy initiation steps and general multifaceted metabolism regulator. Loss of USP11 led to downregulation of mTOR levels, suggesting USP11 may rescue mTOR from proteasome-mediated degradation. Furthermore, we found mTOR to be differentially modified depending on the activity of USP11. However, it remains to be shown if USP11-dependent mTOR regulation contributes to the observed autophagy phenotype. Taken together, USP11 is a novel, versatile, negative regulator of autophagy, and an important addition to our knowledge on the regulation of autophagy by the ubiquitin system.
Resistance in glucocorticoid-induced apoptosis is associated with poor prognosis for long term survival in childhood acute lymphoblastic leukemia (ALL). As Smac mimetics have been shown to reactivate apoptosis by antagonizing Inhibitor of Apoptosis (IAP) proteins, we investigate the potential of the Smac mimetic BV6 to overcome glucocorticoid-resistance in ALL. This study shows that BV6 synergistically cooperates with glucocorticoids to trigger apoptosis and to suppress clonogenic growth of pediatric ALL cells. Of note, the BV6/glucocorticoid combination treatment also induces cell death in cells having defects in the apoptotic signaling cascade by inducing a switch from apoptotic to necroptotic cell death. The clinical relevance of our novel combination treatment is underscored by parallel experiments in primary pediatric ALL samples, in which glucocorticoids and BV6 act together to induce cell death in a synergistic manner. Importantly, the addition of BV6 enhances the anti-leukemic effects of glucocorticoids in an in vivo mouse model of pediatric ALL without causing substantial side effects, highlighting the potency of a BV6/glucocorticoid combination treatment. In contrast, BV6 does not increase cytotoxicity of glucocorticoids against several non-malignant cell types of the lympho-hematopoietic system. Furthermore, we have identified the novel underlying mechanism of BV6/glucocorticoid-induced apoptosis by showing that BV6 and glucocorticoids synergistically act together to promote assembly of the ripoptosome, a RIP1/FADD/caspase-8-containing cell death complex. Ripoptosome assembly is critically required for BV6/Dexamethasone-induced cell death, since genetic silencing of its members, i.e. RIP1, reduces ROS production, caspase activation and most importantly cell death induction. BV6/glucocorticoid combination treatment promotes ripoptosome assembly by inhibition of both of its negative regulators, IAP proteins and cFLIP. Thus, we identify that BV6 and glucocorticoids cooperate together to reduce cIAP1, cIAP2 and XIAP protein levels and cFLIP expression. Ripoptosome formation occurs independently of autocrine/paracrine loops of death receptor ligands, since blocking antibodies for TNFα, TRAIL or CD95L or genetic silencing of their corresponding receptors fail to rescue BV6/glucocorticoid-induced cell death. In summary, this study shows that the Smac mimetic BV6 sensitizes for glucocorticoid-induced apoptosis by promoting ripoptosome assembly with important implications for the treatment of childhood ALL.
Lysosomes are major degradative organelles that contain enzymes capable of breaking down proteins, nucleic acids, carbohydrates, and lipids. In the last decade, new discoveries have traced also important roles for lysosomes as signalling hubs, affecting metabolism, autophagy and pathogenic infections. Therefore, maintenance of a healthy lysosome population is of utmost importance to the cell to respond to both stress conditions and also homeostatic signalling. For example, for minor perturbations to the lysosomal membrane, the cell activates repair processes which seal membrane nicks. For more extensive damage, autophagy is activated to remove damaged organelles from the cell. on the other hand, during pathogen invasion host cells have also evolved mechanisms to hijack the endolysosomal pathway to facilitate their own growth and replication in host cells.
The first part of the thesis work focuses on a lysosomal regeneration program which is activated under conditions where the entire lysosomal pool of the cell is damaged. Upon extensive membrane damage induced by the lysosomotropic drug LLOMe, the cell activates a regeneration pathway which helps in the formation of new functional lysosomes by recycling damaged membranes. I have identified the molecules important for this novel pathway of lysosomal regeneration and showed how the protein TBC1D15 orchestrates this process to regenerate functional organelles from completely damaged membrane masses in the first 2 hours following lysosomal membrane damage. This process resembles the process of auto- lysosomal reformation (ALR)- involving the formation of lysosomal tubules which are extended along microtubules and cleaved in a dynamin2 dependent manner to form proto-lysosomes which develop into fully functional mature lysosomes. These lysosomal tubules are closely associated with ATG8 positive autophagosomal membranes and require ATG8 proteins to bind to the lysophagy receptor LIMP2 on damaged membranes. This process is physiologically important under conditions of crystal nephropathy where calcium oxalate crystals induce damage to lysosomal membranes in nephrons in kidney disease.
The second part of the thesis shows how the endolysosomal system of the cell is hijacked by the bacteriaLegionella pneumophila. During Legionella infection the formation of conventional ATG8 positive autophagosomes are blocked due to the protease activity of the bacterial effector protein RavZ which cleaves lipidated ATG8 proteins from autophagosomal membranes. The SidE effectors of Legionella modify STX17 and SNAP29 by the process of non-canonical ubiquitination called phosphoribose-linked serine ubiquitination (PR-Ub). These proteins are essential for the formation of the autophagosomal SNARE complex which is used for fusion of the autophagosome with the lysosome. Upon Legionella infection, PR-UB of STX17 aids in formation of autophagosome-like replication vacuoles. ThesevacuolesdonotfusewiththelysosomebecauseSNAP29isalsoPR-Ubmodified. PR-UbofSTX17 and SNAP29 sterically blocks the formation of the autophagosomal-SNARE complex thereby preventing fusion of the autophagosome with the lysosome. As a result, Legionella can replicate in autophagosome- like vacuoles which do not undergo lysosomal degradation. In absence of PR-Ub modified STX17, bacterial replication is compromised when measured by bacterial replication assays in lung epithelial (A549) cells.
Taken together, this thesis highlights two important aspects of the autophagy-lysosomal system- how it responds to extensive membrane damage and its importance in Legionella pneumophila infection. Extensive damage to lysosomal membranes triggers a rapid regeneration process to partially restore lysosomal function before the effects of TFEB dependent lysosomal biogenesis becomes apparent. On the other hand, Legionella pneumophila infection segregates the lysosomes from the rest of the endo-lysosomal system by blocking autophagosome-lysosome fusion. Though lysosomes remain active, they are incapable of degrading pathogens since pathogen containing vacuoles do not fuse with the lysosome.
According to the World Health Organization (WHO) bacterial resistance to antibiotic drug therapy is emerging as a major public health problem around the world. Infectious diseases seriously threaten the health and economy of all countries. Hence, the preservation of the effectiveness of antibiotics is a world wide priority. The key to preserving the power of antibiotics lies in maintaining their diversity. Many microorganisms are capable of producing these bioactive products, the so called antibiotics. Specifically in microorganisms, polyketide synthases (PKS) and non-ribosomal peptide synthases (NRPS) produce these natural bioactive compounds. Besides being used as antibiotics these non-ribosomal peptides and polyketides display an even broader spectrum of biological activities, e.g. as antivirals, immunosuppressants or in antitumor therapy. The wide functional spectrum of the peptides and ketides is due to their structural diversity. Mostly they are cyclic or branched cyclic compounds, containing non-proteinogenic amino acids, small heterocyclic rings and other unusual modifications such as epimerization, methylation, N‐formylation or heterocyclization. It is has been shown that these modifications are important for biological activity, but little is known about their biosynthetic origin.
PKS and NRPS are multidomain protein assembly lines which function by sequentially elongating a growing polyketide or peptide chain by incorporating acyl units or amino acids, respectively. The growing product is attached via a thioester linkage to the 4’-phosphopantetheine (4’-Ppant) arm of a holo acyl carrier protein (ACP) in PKSs or holo peptidyl carrier protein (PCP) in NRPSs and is passed from one module to another along the chain of reaction centers. The modular arrangement makes PKS and NRPS systems an interesting target for protein engineering. More than 200 novel polyketide compounds have already been created by module swapping, gene deletion or other specific manipulations. Unfortunately, however, engineered PKS often fail to produce significant amounts of the desired products. Structural studies may faciliate yield improvement from engineered systems by providing a more complete understanding of the interface between the different domains. While some information about domain-domain interactions, involving the most common enzymatic modules, ketosynthase and acyltransferase, is starting to emerge, little is known about the interaction of ACP domains with other modifying enzymes such as methyltransferases, epimerases or halogenases.
To further improve the understanding of domain-domain interactions this work focuses on the curacin A assembly line. Curacin A, which exhibits anti-mitotic activity, is from the marine cyanobacterium Lyngbya majuscula. This outstanding natural product contains a cyclopropane ring, a thiazoline ring, an internal cis double bond and a terminal alkene. The biosynthesis of curacin A is performed by a 2.2 Mega Dalton (MDa) hybrid PKS-NRPS cluster. A 10-enzyme assembly catalyzes the formation of the cyclopropane moiety as the first building block of the final product. Interestingly, for these enzymes the substrate is presented by an unusual cluster of three consecutive ACPs (ACPI,II,III). Little is known about the function of multiple ACPs which are supposed to increase the overall flux for enhanced production of secondary metabolites.
The first task in this work was to elucidate the structural effect of the triplet ACP repetition by nuclear magnetic resonance (NMR). The initial data show that the excised ACPI, ACPII or ACPIII proteins resulted in [15N, 1H]-TROSY spectra with strong chemical shift perturbations (CSPs), suggesting an effect on the structure. The triplet ACP domains display a high sequence identity (93- 100%) making structural investigation using usual NMR techniques due to high peak overlap impossible. To enable the investigation of the triplet ACP in its native composition we developed a powerful method, the three fragment ligation. Segmental labeling allows incorporating isotopes into one single domain in its multidomain context. As a result we could prepare the triplet ACP with only one domain isotopically labeled and therefore assign the full length protein. In this way our method paved the way to study the structural effects of the triplet ACP repetition. We could show unexpectedly, that, despite the fact that the triplet repeat of CurA ACPI,II,III has a synergistic effect in the biosynthesis of CurA, the domains are structurally independent.
In the second part of this work, we studied the structure of the isolated ACPI domain. Our results show that the CurA ACPI undergoes no major conformational changes upon activation via phosphopantetheinylation and therefore contradicts the conformational switching model which has been proposed for PCPs. Further we report the NMR solution structures of holo-ACPI and 3-hydroxyl-3-methylglutaryl (HMG)-ACPI. Data obtained from filtered nuclear overhauser effect (NOE) experiments indicate that the substrate HMG is not sequestered but presented on the ACP surface.
In the third part of this work we focussed on the protein-protein interactions of the isolated ACPI with its cognate interaction partners. We were especially interested in the interaction with the halogenase (Cur Hal), the first enzyme within the curacin A sub-cluster, acting on the initial hydroxyl-methyl-glutaryl (HMG) attached to ACPI. Primarily we studied the interaction using NMR titration and fluorescence anisotropy measurements. Surprisingly no complex between ACPI and Cur Hal could be detected. The combination of an activity assay using matrix-assisted laser desorption/ionization (MALDI) mass spectroscopy and mutational analysis revealed several amino acids of ACPI that strongly decrease the activity of CurA Hal. Mapping these mutations according to their effect on the Cur Hal activity onto the structure of HMG-ACPI displays that these amino acids surround the substrate and form a consecutive surface. These results suggest that this surface is important for Cur Hal recognition and selectivity. Our research presented herein is an excellent example for protein-protein interactions in PKS systems underlying a specific recognition process.
The research presented in this thesis characterizes U2AF homology motifs (UHM) and their interactions with UHM ligand motifs (ULM) in the context of splicing regulation. UHM domains are a subgroup of RNA recognition motifs (RRM) originally discovered in the proteins U2AF65 and U2AF35. Whereas canonical RRMs are usually involved in binding of RNA, UHM domains bind tryptophan containing linear protein motifs (ULM) instead. In the first article, we analyze the complex network of interactions between splicing factors and RNA that initiate the assembly of the spliceosome at the 3´ splice site of an intron. The protein U2AF65 binds a pyrimidine-rich element in introns and recruits U2snRNP by binding its protein component SF3b155. My contribution was to define the binding site of the protein U2AF65 to the intrinsically unstructured N-terminus of the scaffolding protein SF3b155. I could show that the UHM domain of U2AF65 recognizes a ULM in SF3b155, and that this binding site is not overlapping with the binding sites of other splicing factors, like p14, to SF3b155. As the U2AF65-UHM:SF3b155-ULM interaction is mutually exclusive with an interaction between U2AF65-UHM and a ULM in the splicing factor SF1, which was reported to initially recognize the branch point sequence, my results provide the molecular details on how SF3b155 replaces SF1 during spliceosomal reorganizations. In the second article, we show that overexpression of the UHM domain of the splicing factor SPF45 induces exon 6 skipping in the pre-mRNA of Fas (CD95/APO-1). I provide evidence for in vitro binding of SPF45-UHM to ULM sequences in the splicing factors U2AF65, SF1, and SF3b155. I crystallized free and SF3b155-bound SPF45 UHM and solved both structures by X-ray crystallography. The analysis of the complex interface and sequence differences in the ULMs allowed me to design mutations of SPF45-UHM, which selectively inhibit binding to distinct ULMs. After assessing the ULM binding properties in vitro, we could show that the activity of SPF45-UHM in influencing the splicing pattern of Fas relies on interactions with SF3b155 and/or SF1, but that an interaction with U2AF65 is dispensable. A mechanism for the activity of SPF45-UHM could thus be engaging in ULM interactions and thus interfering with the network of interactions that initiate the assembly of the spliceosome at the 3´splice site, as described above. In the third article, we describe an unusual flexible homodimerization mode of the UHM in the splicing factor Puf60, which enables simultaneous interactions with ULM sequences on other splicing factors. I could show that the NMR relaxation properties of Puf60-UHM are inconsistent with a model of a rigid dimer, but rather indicate a dimerization via a flexible linker. I identified a flexible loop in the peptide backbone of Puf60-UHM, and showed that mutiation of acidic residues in this loop impairs the dimerization. To analyze the dimerization interface in further detail, I solved the structure of Puf60-UHM by X-ray crystallography. The acidic residues in the flexible loop of one UHM dimer subunit mediate the dimerization by contacting basic residues on the β-sheet surface of the other dimer subunit. Differences in the four dimer interfaces observed for the eight molecules in the asymmetric unit of the crystal support the model of an undescribed, flexible mode of dimerization, and thus complement the NMR relaxation data. Furthermore, I could show that the Puf60-UHM dimer and U2AF65-UHM contact different ULM sequences on the SF3b155 N-terminus in vitro, thus providing a possible explanation for the mutual cooperative activation of Puf60 and U2AF65 in splicing assays described in the literature. The fourth article is a review about recent research on the recognition of DNA double strand breaks (DSB) by covalent histone modifications. The p53 binding protein 1 (53BP1) is a DSB sensor and a checkpoint protein for mitosis. Recent crystallographic evidence indicates that 53BP1 recognizes DSB sites by binding histone H4 dimetylated at lysine 20 (H4-K20). We provide a comprehensive overview of the atomic resolution structures that revealed how proteins can specifically recognize histone tail modifications, especially methylated lysines, to read the information stored in what is called the histone code.
Small molecule inhibitors sensitize neuroblastoma cells for chemotherapeutic drug-induced apoptosis
(2015)
Neuroblastoma (NB) is one of the most common solid extracranial pediatric tumors, deriving from undifferentiated cells of the peripheral nervous system. It accounts for approximately 10% of all childhood cancers. High stage tumors usually show poor prognosis despite aggressive treatment such as radiotherapy or chemotherapy. Therefore, it is of utmost importance to find novel treatment strategies in order to improve existing chemotherapy protocols. Combination treatment offers advantages, as chemotherapeutic drugs can be applied in low and subtoxic doses, reducing possible side-effects. Here, we report in a two-part study that small molecule inhibitors (SMI), namely BI 2536, a PLK1 inhibitor and BV6, a SMAC mimetic (SM), sensitize neuroblastoma cells for chemotherapeutic drug-induced cell death. By using i) BI 2536 in combination with vinca alkaloids and ii) BV6 in combination with either doxorubicin or vinca alkaloids, we show that cell death is synergistically enhanced compared to monotherapy. Furthermore, combination treatment significantly reduces survival of NB cells in long-term assays, compared to single treatment. We identify that vinca alkaloid/SMI combinations induce mitotic arrest, as shown by phosphorylation of histone H3, which results in the induction of intrinsic apoptosis and inhibition of CDK1 by RO-3306 could abolish these findings. Mechanistically, upon vinca alkaloid/SMI-induced mitotic arrest, anti-apoptotic BCL-2 proteins such as MCL-1, BCL-2 or BCL-XL are degraded or inactivated by phosphorylation, which induces the activation of the proapoptotic BCL-2 family proteins BAX and BAK. The importance of the mitochondrial apoptosis pathway in vinca alkaloid/SMI-induced cell death was further highlighted by the fact that ectopic expression of BCL-2 inhibits vinca alkaloid/SMI-induced DNA fragmentation and BAK- and caspase-activation. In contrast to the vinca alkaloid/SMI cotreatment, DOX/SMI (DOX/BV6)-induced apoptosis only partially involves the mitochondrial pathway. Instead, we clarify that RIP1 is required for DOX/BV6-induced apoptosis, as pharmacological and genetic inhibition of RIP1 rescues from apoptosis induction. Although it has been shown in previous studies that SM-treatment (e.g. BV6) can induce the NF-κB pathway and auto-/paracrine TNFα production through cIAP1/2 depletion, DOX/BV6-induced apoptosis is completely independent of NF-κB activation in our setting, despite fast cIAP1 depletion. This conclusion is based on the fact that inhibition of the NF-κB pathway by exogenously expressed dominant-negative IκBα as well as application of a TNFα blocking antibody does not reduce DOX/BV6-induced cell death. In summary, we unravel two new promising treatment strategies for neuroblastoma patients by using a combination treatment of two different small molecule inhibitors, combined with well-characterized chemotherapeutic agents. Furthermore we give detailed insights into cell death pathways induced by these combination treatments, in which mitochondria and RIP1 have a differential role in chemotherapeutic drug-induced apoptosis.
Epidermal growth factor (EGF) receptor belongs to the broad family of enzymatic receptors called receptor tyrosine kinases (RTKs). Generally, the binding of a ligand to these receptors leads to activation of their intracellular kinase activity that sets in motion a cascade of signaling events. In order to ensure appropriate responses to physiological stimuli, the cell is endowed with the ability to regulate signal transduction via numerous mechanisms such as dephosphorylation of the RTK and its substrates as well as downregulation of the RTK. Activation of EGFR is a potent mitogenic (proliferative) and motogenic (cell motility) signal that plays crucial roles during embryonic development and maintenance of adult tissue. EGFR signaling is primarily regulated by ligand-induced receptor internalization with subsequent degradation in lysosomes. While the complex of proteins that are recruited to EGFR after its activation is well understood, proteins that interact with the receptor in the absence of ligand binding are still not systematically studied. With the goal of identifying novel binding partners of non-activated EGFR, a membrane based yeast-two hybrid screen (MYTH) was conducted. MYTH is based on the principle of in vivo reconstitution of the N-terminus (Nub) and C-terminus (Cub) halves of ubiquitin once brought into close proximity. A chimeric protein consisting of EGFR fused to Cub and a transcription factor was used as a bait to screen Nub-tagged cDNA library. Analysis of resultant yeast transformants revealed a total of 87 proteins to interact with EGFR. Of these only 11 were previously shown to bind to EGFR. A majority of the other proteins were shown to interact with the receptor by yeast retransformation. Fifteen were confirmed to bind to EGFR by coimmunoprecipitation assays in mammalian cells. One of the novel EGFR interactors identified in the screen was histone deacetylase 6 (HDAC6). This deacetylase is localized in the cytoplasm and known to deacetylate alpha-tubulin, HSP90 and cortactin. The juxtamembrane region of EGFR binds to the Cterminus of HDAC6. Functionally, overexpression of wild type HDAC6 stabilized ligand-induced degradation of the receptor. On the other hand, deacetylase deficient or EGFR binding compromised mutants of HDAC6 were able to stabilize EGFR only partially. Downmodulation of HDAC6 expression by RNAi markedly accelerated degradation of the receptor. Taken together, HDAC6 is a negative regulator of EGFR downregulation that is dependent on its deacetylase activity and ability to bind to the receptor. Imaging studies revealed that HDAC6 does not affect internalization of EGFR from the plasma membrane but rather influences the post-endocytic trafficking of the receptor-ligand complex to lysosomes. Pulse-chase experiments using fluorophoretagged EGF showed that EGFR is transported faster towards the peri-nuclear region and delivered to late endosomes rapidly in HDAC6 depleted cells. HDAC6 is demonstrated to act, at least partly, by regulating the acetylation of alpha-tubulin. Upon EGFR activation, acetylation of alpha-tubulin on lysine 40 is progressively increased as shown by mass spectrometry and immunoblotting. Forced expression of a dominant negative mutant of alpha-tubulin, but not wild type alpha-tubulin, led to reduced speed and processive movement of early endosomes in GFP-Rab5 expressing cells. In a surprising twist, EGFR is able to phosphorylate HDAC6 on Tyr570. Phosphorylation of Tyr570 and Ser568 leads to inactivation of the deacetylase function of HDAC6 as shown by in vivo and in vitro assays. In summary, HDAC6 diminishes EGFR downregulation by slowing the transport of intracellular vesicles. The inhibitory effect is removed once HDAC6 is phosphorylated on key residues. In line with these findings, two recent reports have shown that hyper-acetylation of alpha-tubulin induced by inhibition of HDAC6 increases the transport of brain derived neurotrophic factor and JNK interacting protein-1 in different cell systems. Acetylated microtubules are more efficient in recruiting motor proteins like kinesin-1 and dynein. These findings indicate that HDAC6 plays an important regulatory role in intracellular trafficking pathways. However, several outstanding issues still remain unresolved. How does acetylation of microtubules influence vesicular trafficking? In this regard, the temporal and spatial dynamics of alpha-tubulin acetylation following EGFR activation should be studied. Furthermore, whether HDAC6 affects the trafficking of other endocytic cargos and additional organelles is an interesting question to address.
Komplexe biologische Phänotypen resultieren aus einem koordinierten Zusammenspiel von einer Vielzahl von Genen. Um zu verstehen, wie Krankheiten durch genetische Dysfunktionen
entstehen können, ist es unabdingbar die genetischen Interaktionsnetzwerke in menschlichen Zellen zu entschlüsseln. Eine Identifizierung von Kontext-abhängigen genetischen Interaktionen kann bedeutende Erkenntnisse über die Beziehung von Phänotyp und Genotyp liefern und erklären, wie synergistische Gen-Funktionen die Entstehung von komplexen Krankheiten bedingen.
Gepoolte, kombinatorische CRISPR (kurz für: clustered regularly interspaced short palindromic repeats) Screens stellen eine wirkungsvolle Methode zur simultanen Untersuchung potentieller Interaktionen von einer großen Anzahl von Genen dar. Mit sogenannten multiplex CRISPR
gRNA Bibliotheken werden im Rahmen großangelegter Screens vielzählige kombinatorische Gen-Knockouts in Zellen generiert. Diese multiplex CRISPR gRNA Bibliotheken können aus bis zu hunderttausenden Plasmiden bestehen, die jeweils für eine andere gRNA-Kombination kodieren und auf ein spezifisches Gen-Paar abzielen. Im Gegensatz zu CRISPR Screens für Einzel-Knockouts gehen multiplex CRISPR Screens zur Identifizierung von genetischen Interaktionen mit zusätzlichen Herausforderungen einher: Zum einen wächst der verbundene Arbeitsaufwand für die Konstruktion der multiplex CRISPR gRNA Bibliotheken proportional mit der Anzahl der gewünschten Ziel-Gene, welche die Diversität der Bibliothek bestimmt. In einer idealen gRNA-Bibliothek wären alle gRNA-Sequenzen gleich häufig vorhanden. Jedoch weisen
gRNA-Bibliotheken aufgrund von technischen Beschränkungen gRNA-Sequenzen mit höherer, beziehungsweise niedriger Abundanz auf. Konventionelle Methoden zur Herstellung von
gRNA-Bibliotheken basieren beispielsweise auf iterativen, gepoolten Klonierungsschritten mit PCR-amplifizierten Oligonucleotiden, welche zu einer Ungleichverteilung oder zum Verlust von gRNA-Sequenzen führen können. Daher bieten Methoden zur gRNA-Bibliotheken-Generierung Optimierungspotenzial. Da die Reproduzierbarkeit der Screen-Ergebnisse durch die sogenannte Screening Coverage sichergestellt werden muss, erfordert eine Erhöhung der
Bibliotheks-Diversität gleichzeitig auch eine Vergrößerung des Versuchsmaßstabs und ist mit umfangreichem Zellkultur-Arbeitsaufwand verbunden. Die Screening Coverage gibt die
durchschnittliche Abundanz der einzelnen gRNA-Sequenzen in der Zellpopulation während des Screens an. Aktuelle Richtlinien empfehlen eine Screening Coverage, die zwischen dem 200- bis 1000-fachen Wert der Bibliotheks-Diversität liegt, allerdings fehlen bisher genaue Angaben die auf die verwendete gRNA Bibliothek abgestimmt sind. Deshalb stellt die benötigte Screening Coverage bisher einen limitierenden Faktor dar, der die Anzahl der möglichen Ziel-Gene-Kombinationen in einem Screen beschränkt.
In der vorliegenden Arbeit stellen wir eine neue Methode zur Generierung von multiplex gRNA Bibliotheken mit hohen Diversitäten vor. Die Methode, genannt 3Cs (covalently-closed circular-synthesized) Multiplexing, umgeht iterative, gepoolte Klonierugsschritte mit Restriktionsenzymen und PCR-Amplifikation von gRNA-kodierenden Oligonucleotiden. Wir
zeigen, dass 3Cs Multiplexing auf robuste Weise zur Herstellung von gleichmäßig verteilten multiplex gRNA Bibliotheken verwendet werden kann. Der Verteilungs-Skew, auch Skew-Ratio oder Bibliotheksbreite genannt, ist ein Maß zur Ermittlung der Gleichverteilung der gRNA-Sequenzen in der Bibliothek. Wir zeigen, dass 3Cs multiplex Bibliotheken typischerweise einen Verteilungs-Skew von 2.5 aufweisen, was unter den üblichen Werten von Einzel-gRNA Bibliotheken liegt.
Wir nahmen an, dass die gRNA-Bibliotheksverteilung die Robustheit von gepoolten CRISPR Screens beeinflussen könne und deshalb bei der Auswahl einer geeigneten Screening
Coverage berücksichtigt werden müsse. Um den Einfluss der gRNA-Bibliotheksverteilung auf die Screen-Qualität in Abhängigkeit von der verwendeten Screening Coverage zu untersuchen, generierten wir zwei künstlich fehlverteilte multiplex gRNA-Bibliotheken. Diese wurden, zusätzlich zu einer nahezu gleichverteilten multiplex gRNA-Bibliothek, jeweils mit einer 20- und 200-fachen Screening Coverage in einem kombinatorischen Proliferationsscreen angewandt.
Dadurch konnten wir die gRNA-Bibliotheksverteilung als den bestimmenden Parameter für die benötigte Screening Coverage identifizieren. Zusätzlich konnten wir zeigen, dass 3Cs multiplex gRNA-Bibliotheken auf Grund ihrer gleichmäßigen Verteilung mit minimierter Screening Coverage eingesetzt werden können, was zu einer 10-fachen Reduktion des assoziierten Arbeitsaufwands führt. Während bisherige Richtlinien für gepoolte CRISPR Screens die initiale
gRNA-Bibliotheksverteilung nicht berücksichtigen, empfehlen wir die Screening Coverage an dieser auszurichten.
Autophagie ist ein streng regulierter zellulärer Prozess, der den Lysosomen Abbau von intrazellulärem Material steuert und im Zusammenhang mit zahlreichen menschlichen Erkrankungen steht. Da Autophagie in eine Vielzahl von Signalwegen integriert ist, bietet es außerdem therapeutische Ansatzpunkte zur Behandlung von Krankheiten. Die Identifizierung von synergistischen Funktionen zwischen Autophagie-Genen könnte unser Verständnis über die molekularen Mechanismen, die der Regulation der Autophagie zu Grunde liegen, erweitern und dadurch neuartige Behandlungen ermöglichen.
Um genetische Interaktionen von Autophagie-Genen zu untersuchen haben wir eine 3Cs multiplex gRNA Bibliothek generiert, die auf menschliche Autophagie-Genkombinationen
abzielt. In dieser Arbeit demonstrieren wir die Funktionalität der 3Cs Autophagie multiplex gRNA Bibliothek unter Anwendung minimierter Screening Coverage in zwei verschiedenen Screen-Ausführungen: In einem Proliferationsscreen konnten wir Geninteraktionen
identifizieren, deren Verlust zu einer gesteigerten oder verringerten Zellproliferation führt. Unter diesen resultierte der Knockout von WDR45B-PIK3R4 zur stärksten Suppression der Proliferation, während die Depletion von ATG7-KEAP1 zu extrem verstärkter Proliferation beitrug. Unter Einsatz eines Autophagie-Reporters konnten wir in einem Autophagie Screen genetische Interaktionen aufdecken, die essentiell für Autophagie sind, darunter die
Interaktionen zwischen ATG2A-ATG2B , GABARAPL2-WIPI2 und ULK4-SQSTM1.
Wir glauben, dass 3Cs Multiplexing in Zukunft breite Anwendung in verschiedenen biologisch relevanten Feldern finden kann und die Entschlüsselung von kontext-abhängigen genetischen Interaktionen voranbringen und so das Verständnis für die Entstehung von komplexen pathologischen Phänotypen erweitern wird.