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Protein quality control (PQC) machinery is in charge of ensuring protein homeostasis in the cell, i.e. proteostasis. Chaperones assist polypeptides throughout their maturation until functionality is achieved. This process might be disrupted in the presence of mutations or external damaging agents that affect the folding and stability of proteins. In this case, proteins can be efficiently recognized and targeted for degradation in a controlled manner. Ubiquitylation refers to the covalent attachment of one or more ubiquitin moieties to faulty proteins, thus triggering their degradation by the 26S proteasome.
More than 30% of proteins need cofactor molecules. Lack of cofactors renders proteins non-functional. We wanted to understand how the PQC deals with wild-type proteins in the absence of their cofactors. Several studies have indicated the importance of the riboflavin-derived cofactor FAD in the stability of individual flavoproteins, and hence we assumed that loss of flavin should mediate a targeted degradation of this group of proteins. Indeed, our mass spectrometry experiments showed that flavoproteome levels decreased under riboflavin starvation. The oxidoreductase NQO1 was used as a model enzyme to further investigate the mechanism of flavoproteome targeting by the PQC. We showed that cofactor loading determines ubiquitylation of NQO1 by the co-chaperone CHIP, both in vivo and in vitro. Furthermore, subtle changes in the C-terminus of NQO1 in the absence of FAD seemed to be crucial for this recognition event. ApoNQO1 interactome differed from holoNQO1. Chaperones and degradation factors were enriched on NQO1 upon cofactor withdrawal, probably to support maturation and prevent aggregation of the enzyme.
Loss of protein folding and stability, even to a small extent, can enhance the aggregating behavior of proteins. Proper loading with FAD reduced the co-aggregation of NQO1 with Aβ1-42 peptide. We assumed that the flavoproteome might represent aggregating-prone species under riboflavin deprivation. Supportingly, reversible apoNQO1 aggregates were observed in vivo in the absence of cofactor. General amyloidogenesis in vivo also increased under these conditions, apparently as a result of flavoproteome destabilization. In this context, we think that our data might have important implications considering the onset and development of conformational diseases.
This work has shed some light on the therapeutic implications of riboflavin deficiency as well. The sensitivity of melanoma cells towards the alkylating agent methyl methanesulfonate (MMS) increased under riboflavin starvation. Subsequent analyses indicated that a complex metabolic reorganization, mostly affecting proliferation and energy metabolism, occurs in response to starvation. What we suggest to call “flavoaddiction” can be understood as the dependence of melanoma cells on the flavoproteome structural and functional intactness to survive chemotherapy. Understanding this cellular reprogramming in detail might reveal new possibilities for future therapies.
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.
All lifeforms have to sense changes in their environment and adapt to possibly detrimental conditions. On a cellular level, the highly elaborate proteostasis network (PN) consisting of housekeeping and stress-induced proteins, confers this tolerance against stress and maintains cellular protein homoestasis. This is essential for survival, as an accumulation of stress-induced protein aggregation will eventually affect the functionality of crucial cellular components and ultimately lead to cell death. The guardians of this balance are the molecular chaperones and their activity-regulating co-haperones. They are engaged in all aspects of protein biogenesis, maintenance and degradation, especially during stress.
The heat shock proteins (HSPs) are the major chaperones in mammals and encompass constitutive and stress-induced isoforms. Among them, the HSP70 and the HSP90 family are the most abundant HSPs and their activity is involved in a great variety of homoestasis and stress-induced tasks.
As part of the protein triage the E3 ligase CHIP (C-terminal HSC70-interacting protein) is an essential activity regulating co-chaperone of HSP70 and HSP90 which provides a link between chaperone mediated protein-folding and various degradation pathways. Due to its decisive function, CHIP is involved in a wide array of cellular processes, especially in clearing misfolded HSP70 client proteins that are prone to aggregate. As a consequence, CHIP was reported to confer protection against many aggregation-induced pathologies of the neuronal system. Additionally, CHIP has been identified as a critical factor in various types of cancer and is implied to affect the development and the longevity of mammals.
Despite the significant progress in the understanding of CHIP’s structure and function, many aspects surrounding its chaperone dependency and its substrate recognition remain unclear. Moreover, due to the variety of substrates in diverse cellular pathways, there are yet many connections to elucidate between CHIP and components of the cellular proteostasis network.
The work of this thesis was focused on the role of CHIP in acute stress response and the corresponding status of chaperone association. Moreover, it was investigated if CHIP, as the connecting ligase of folding and degradation systems, might also provide a link between the PN and the reorganisation of the cellular architecture upon stress exposure.
This has become of increasing interest as recent reports highlight the importance of spatial sequestration in protein quality control.
To this end, subcellular distribution of CHIP was analysed by live-cell microscopy during heat stress. It became obvious that during the heat-induced challenge of the chaperone system, CHIP migrated to new cellular sites. Further experiments suggested that the observed migration to the plasma membrane is a chaperone-independent process and in vitro reconstitution of membrane association confirmed the competitive nature of membranes and chaperones for CHIP binding. A detailed in vivo and in vitro analysis of the newly observed membrane association of CHIP revealed a distinct lipid specificity and a novel direct association with lipids. Binding experiments with recombinantly purified deletion mutants of CHIP identified the TPR domain and a positive patch in the coiled-coil domain as main determinants for the lipid association. Through biochemical and biophysical approaches, the structural integrity and functionality of CHIP upon membrane binding was confirmed and further characterised.
Moreover, mass spectrometry analysis provided a high confidence identification of chaperone-free interactors of CHIP at the plasma membrane and other membranous compartments.
In accordance with the lipid specificity, the Golgi apparatus was one of these sites. Only chaperone-free CHIP had a significant effect on the morphology of the organelle, again confirming the competitive role of chaperones and lipids. With respect to the physiological consequences of the changed localisation of CHIP, preliminary results indicated increased cell death when the ligase localises to cellular membranes. The results lead to the conclusion that CHIP acts as an initiator of early stress adaptation and as a sensor for the severity and strength of the stress reaction.
In Reaktion auf zellulären Stress wie etwa Schädigungen der DNA oder die vermehrte Aktivität von Onkogenen aktivieren vorgeschaltete Signalkaskaden den Transkriptionsfaktor (TF) p53. Dieser kann über die Aktivierung der Expression von Zielgenen wiederum die Zellteilung stoppen, die Reparatur von DNA Schäden initiieren oder in schweren Fällen die Eliminierung der Zelle durch Apoptose einleiten. Ist p53 durch Mutationen deaktiviert, können sich entartete somatische Zellen vermehren und in der Folge Krebs entstehen.
In Wirbeltieren finden sich neben p53 mit p63 und p73 zwei weitere TFs, welche während der Evolution aus dem gleichen gemeinsamen Vorläufer durch Genduplikationen hervorgegangen sind. Die drei TFs sind modular aufgebaut und alle Isoformen verfügen jeweils minimal über eine DNA Bindungsdomäne (DBD) und eine Tetramerisierungsdomäne (TD). Werden die p53 ähnlichen TFs aktiviert, lagern sie sich über die TD vermittelt zu Tetrameren zusammen, wodurch ihre DBDs kooperativ an DNA Sequenzmotive binden können. Die DBD ist auch über große phylogenetische Abstände hinweg hoch konserviert, wodurch bereits gezeigt werden konnte, dass auch primitive vielzellige Tiere bereits Homologe dieser TF Familie besitzen. Im Vergleich zur DBD variiert die Proteinsequenz der TD deutlich stärker, was andeutet, dass deren Struktur im Laufe der Evolution erhebliche Veränderungen durchlaufen hat. Diese Veränderungen aufzuklären ist das übergeordnete Forschungsvorhaben zu dem diese Dissertationsschrift beiträgt.
Ciona intestinalis (C.int.) ist eine Spezies aus dem Unterstamm der Manteltiere. Diese sind die engsten lebenden Verwandten der Wirbeltiere und C.int. ist ein populärer Modelorganismus für die Erforschung der Embryonalentwicklung. Sein Genom kodiert für zwei p53 ähnliche TFs, welche mit p53/p73-a und p53/p73-b bezeichnet werden. Die Struktur ihrer TDs wurde im Rahmen der vorliegenden Arbeit mittels Kernspinresonanz (NMR) Spektroskopie untersucht.
Die TD von menschlichem p53 (hp53) ist ein Dimer aus Dimeren. Jedes Monomer formt einen beta-Strang und eine alpha-Helix. Im primären Dimer lagern diese sich so zusammen, dass ein beta-Faltblatt entsteht und die alpha-Helices mit entgegen gesetzter Orientierung der Länge nach aneinander packen. Zwei dieser Dimer lagern sich dann so zum Tetramer zusammen, dass zwischen pol-ständigen beta-Faltblättern ein Bündel aus vier Helices entsteht. Dieses Motiv ist auch in den TDs der Ciona Proteine hochkonserviert und wird im Folgenden als Kern?TD bezeichnet. In den TDs von menschlichem p63 und p73 (hp63 und hp73) verfügt jedes Monomer an seinem C-terminus noch über eine zweite Helix. Die zweiten Helices eines jeden Dimers greifen wie Klammern um das jeweils andere primäre Dimer und stabilisieren so das Tetramer. Entscheidend für die stabile Anbindung an die Kern?TD ist dabei ein charakteristisches Tyrosin-Arginin (YR) Motiv in der zweiten Helix, welches sich auch in der Sequenz der TD von C.int. p53/p73-a wiederfindet. Analysen der Sekundärstruktur auf Basis von NMR Experimenten ergaben jedoch, dass die TD von C.int. p53/p73-a bei 25°C keine zweite Helix ausbildet. Mit Hilfe von chimären TD Peptiden, in denen Teile der Ciona Sequenz gegen die entsprechenden Abschnitte von hp73 ausgetauscht wurden, konnte gezeigt werden, dass die Kern TD von C.int. p53/p73-a fähig ist eine zweite Helix zu stabilisieren und hierfür neben dem YR Motiv auch der Sequenzabschnitt zwischen erster und zweiter Helix entscheidend ist. Stabilisierende Substitutionen in diesem Bereich bewirkten ebenso wie ein Absenken der Temperatur die Ausbildung einer zweiten Helix, welche jedoch im Gegensatz zu jener in hp73 nur transient faltet und auch nicht essentiell für die Bildung des Tetramers ist, wohl aber dessen Stabilität erhöht.
Spezifisch in der Entwicklungslinie von Ciona kam es dazu, dass eine, für eine entsprechende Vorläuferversion von C.int. p53/p73-a kodierende, mRNA spontan zurück in DNA übersetzt und ins Genom eingefügt wurde. Die durch diese Retrotransposition erzeugte neue Genkopie C.int. p53/p73-b muss demnach ursprünglich einmal für die gleiche Proteinsequenz kodiert haben, innerhalb der TD finden sich konservierte Reste jedoch nur im Bereich der Kern TD.
Von der TD von C.int. p53/p73-b wurde die molekulare Struktur in freier Lösung mittels NMR ermittelt. Diese zeigte, dass interessanterweise in der TD von C.int. p53/p73-b jedes Monomer am C-terminus eine stabil gefaltete, zweite Helix besitzt. Obwohl diese zweite Helix sich aus einer Sequenz faltet, die keinerlei Sequenzhomologie zu homologen Proteinen aus Wirbeltieren aufweist, lagert sie sich in einer Position auf die Kern TD, welche der in hp73 sehr nahe kommt. Da die primären Dimere der Kern TD aber anders als in hp63 und hp73 durch Salzbrücken miteinander verbunden sind, ist die zweite Helix jedoch nicht essentiell, um das Tetramer zu stabilisieren. Vermutlich kommt der zweiten Helix von C.int. p53/p73-b vielmehr u.a. die Aufgabe zu die Bildung von Heterotetrameren aus C.int. p53/p73-a und –b zu unterbinden.
Zusammengenommen zeigen die Ergebnisse, dass die Architektur der TD mit zweiter Helix bereits der Prototyp für die TDs aller p53 ähnlichen Proteine der Wirbel- und Manteltiere war und die als eine Art Klammer das Tetramer stabilisierende zweite Helix sich nicht erst während der Evolution der Wirbeltiere entwickelt hat.