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Der Pilz Podospora anserina ist seit mehr als fünf Jahrzehnten ein wichtiger Modellorganismus für die Alternsforschung. Insbesondere die Mitochondrien, essentielle eukaryotische Zellorganellen – wegen ihrer Funktion im Energiestoffwechsel häufig auch als „zelluläre Kraftwerke“ bezeichnet, sind Schlüsselfaktoren für den Alterungsprozess dieses Organismus.
Im Rahmen einer vorangegangenen Diplomarbeit wurde daher der Einfluss der mitochondrialen CLPXP-Protease, einem bisher noch wenig erforschten Bestandteil der Proteinqualitätskontrolle in Mitochondrien, auf die Alterung von P. anserina untersucht. Mitochondriale CLPXP-Proteasen sind, wie auch ihre bakteriellen Pendants, aus zwei verschiedenen Untereinheiten aufgebaut: der Protease-Komponente CLPP und der Chaperon-Komponente CLPX. Die Deletion des Gens PaClpP, kodierend für CLPP in P. anserina, führte zu einer überraschenden Verlängerung der gesunden Lebensspanne der Mutante. Darüber hinaus war es möglich, den pilzlichen PaClpP-Deletionsstamm durch Einbringen von CLPP des Menschen zu komplementieren. Dies beweist, dass die Proteasen CLPP des Menschen und von P. anserina funktionell homolog sind. Dadurch eröffnete sich die Perspektive, diesen einfachen Modellorganismus für die Gewinnung potenziell auf den Menschen übertragbarer Erkenntnisse einzusetzen. Bedeutenderweise ist die menschliche CLPXP-Protease wahrscheinlich involviert in die Entstehung verschiedener Krankheiten, darunter das Perrault-Syndrom sowie einige Krebsarten. Die zugrundeliegenden Mechanismen sind jedoch noch weitestgehend unverstanden.
Ziel des in dieser Dissertation beschriebenen Forschungsprojektes war daher die Gewinnung genauerer Einsichten in die molekulare Funktion und die daraus folgende biologische Rolle der mitochondrialen CLPXP-Protease von P. anserina. Der wohl wichtigste Punkt für das detaillierte Verständnis einer Protease ist die Kenntnis ihres Substratspektrums, d. h. der von ihr abgebauten Proteine. Tatsächlich wurde aber bis heute noch in keinem eukaryotischen Organismus eine umfassende Analyse der Substrate einer mitochondrialen CLPXP-Protease vorgenommen. Um diese Wissenslücke zu füllen, wurde in der vorliegenden Arbeit eine ursprünglich in Bakterien entwickelte Verfahrensweise, der sogenannte CLPP „Substrat-trapping Assay“, in P. anserina implementiert. Dafür mussten zunächst die notwendigen handwerklichen Voraussetzungen für den Assay geschaffen werden, insbesondere die effiziente Affinitätsaufreinigung von Proteinen aus isolierten Mitochondrien – einer bisher in P. anserina noch nicht angewandten Technik. Unter Verwendung verschiedener neu hergestellter Varianten der menschlichen Protease-Komponente CLPP, darunter einer proteolytisch inaktiven Variante zum „Einfangen“ von Substraten, konnte der CLPP „Substrat-trapping Assay“ in P. anserina erfolgreich durchgeführt werden. Insgesamt wurden, in Kooperation mit der Arbeitsgruppe von Julian D. Langer (Max-Planck-Institut für Biophysik; Durchführung von massenspektrometrischen Analysen) nahezu 70 spezifische Proteine erstmalig als potenzielle Substrate oder Interaktionspartner einer mitochondrialen CLPXP-Protease identifiziert. Bei einem Großteil dieser Proteine handelt es sich um Enzyme und Komponenten verschiedener Stoffwechselwege – vor allem um solche, die eine zentrale Rolle im mitochondrialen Energiestoffwechsel spielen. Die Ergebnisse der vorliegenden Arbeit legen somit folgende Arbeitsthese als Schlussfazit und gleichzeitig Ausganspunkt für zukünftige Untersuchungen nahe:
Die hauptsächliche molekulare Funktion der mitochondrialen CLPXP-Protease in P. anserina ist die Degradation von Stoffwechselenzymen und ihre biologische Rolle demnach die Kontrolle und Aufrechterhaltung des mitochondrialen und zellulären Energiestoffwechsels.
Insgesamt ist die auf Grundlage des CLPP „Substrat-trapping Assay“ in P. anserina anzunehmende Rolle der mitochondrialen CLPXP-Protease als regulatorische Komponente des mitochondrialen Energiestoffwechsels erstaunlich gut mit Beobachtungen in anderen eukaryotischen Organismen, gerade bezüglich der Relevanz der CLPXP-Protease des Menschen für diverse Krankheiten, zu vereinbaren. Somit erscheint es überaus sinnvoll und vielversprechend, dass in dieser Doktorarbeit erstellte und bisher beispiellose Kompendium potenzieller in vivo Substrate und Interaktionspartner dieser Protease auch als Referenz für zukünftige Untersuchungen außerhalb von P. anserina anzuwenden.
The filamentous ascomycete Podospora anserina is a well-established model system to study organismic aging. Its senescence syndrome has been investigated for more than fifty years and turned out to have a strong mitochondrial etiology. Several different mitochondrial pathways were demonstrated to affect aging and lifespan. Here, we present an update of the literature focusing on the cooperative interplay between different processes.
Organismic aging is known to be controlled by genetic and environmental traits. Pathways involved in the control of cellular metabolism play a crucial role. Previously, we identified a role of PaCLPP, a mitochondrial matrix protease, in the control of the mitochondrial energy metabolism, aging, and lifespan of the fungal aging model Podospora anserina. Most surprisingly, we made the counterintuitive observation that the ablation of this component of the mitochondrial quality control network leads to lifespan extension. In the current study, we investigated the role of energy metabolism of P. anserina. An age-dependent metabolome analysis of the wild type and a PaClpP deletion strain verified differences and changes of various metabolites in cultures of the PaClpP mutant and the wild type. Based on these data, we generated and analyzed a PaSnf1 deletion mutant and a ΔPaSnf1/ΔPaClpP double mutant. In both mutants PaSNF1, the catalytic α-subunit of AMP-activated protein kinase (AMPK) is ablated. PaSNF1 was found to be required for the development of fruiting bodies and ascospores and the progeny of sexual reproduction of this ascomycete and impact mitochondrial dynamics and autophagy. Most interestingly, while the single PaSnf1 deletion mutant is characterized by a slight lifespan increase, simultaneous deletion of PaSnf1 and PaClpP leads to a pronounced lifespan extension. This synergistic effect is strongly reinforced in the presence of the mating-type “minus”-linked allele of the rmp1 gene. Compared to the wild type, culture temperature of 35°C instead of the standard laboratory temperature of 27°C leads to a short-lived phenotype of the ΔPaSnf1/ΔPaClpP double mutant. Overall, our study provides novel evidence for complex interactions of different molecular pathways involved in mitochondrial quality control, gene expression, and energy metabolism in the control of organismic aging.
Sorting nexins are a conserved protein family involved in vesicle transport, membrane trafficking and protein sorting. The sorting nexin ATG24/SNX4 has been demonstrated to be involved in different autophagy pathways and in endosomal trafficking. However, its impact on cellular quality control and on aging and development is still elusive. Here we report studies analyzing the function of PaATG24 in the aging model Podospora anserina. Ablation of PaATG24 leads to a reduced growth rate, infertility, and to a pronounced lifespan reduction. These characteristics are accompanied by alterations of the morphology and size distribution of vacuoles and severe impairments in non-selective and selective autophagy of peroxisomes (pexophagy) and mitochondria (mitophagy). While general autophagy and pexophagy are almost completely blocked, a PaATG24-independent form of mitophagy is induced during aging. In the ΔPaAtg24 mutant a strong accumulation of peroxisomes occurs while mitochondrial abundance is only slightly increased. These mitochondria are partially affected in function. Most strikingly, although some PaATG24-independent mitophagy exists, it appears that this is not sufficient to remove dysfunctional mitochondria efficiently enough to prevent premature aging. Overall our data emphasize the key role of mitochondria in aging and of mitophagy in quality control to keep a population of “healthy” mitochondria during aging.
The degradation of nonfunctional mitochondrial proteins is of fundamental relevance for maintenance of cellular homeostasis. The heteromeric CLPXP protein complex in the mitochondrial matrix is part of this process. In the fungal aging model Podospora anserina, ablation of CLPXP leads to an increase in healthy lifespan. Here, we report that this counterintuitive increase depends on a functional autophagy machinery. In PaClpXP mutants, autophagy is involved in energy conservation and the compensation of impairments in respiration. Strikingly, despite the impact on mitochondrial function, it is not mitophagy but general autophagy that is constitutively induced and required for longevity. In contrast, in another long-lived mutant ablated for the mitochondrial PaIAP protease, autophagy is neither induced nor required for lifespan extension. Our data provide novel mechanistic insights into the capacity of different forms of autophagy to compensate impairments of specific components of the complex mitochondrial quality control network and about the biological role of mitochondrial CLPXP in the control of cellular energy metabolism.
PaMTH1 is an O-methyltransferase catalysing the methylation of vicinal hydroxyl groups of polyphenols. The protein accumulates during ageing of Podospora anserina in both the cytosol and in the mitochondrial matrix. The construction and characterisation of a PaMth1 deletion strain provided additional evidence about the function of the protein in the protection against metal induced oxidative stress. Deletion of PaMth1 was found to lead to a decreased resistance against exogenous oxidative stress and to a shortened lifespan suggesting a role of PaMTH1 as a longevity assurance factor in a new molecular pathway involved in lifespan control. Key words: Podospora anserina, knock-out, reactive oxygen species, flavonoids, ageing, O-methyltransferase
Lifespan Extension of Podospora anserina Mic60-Subcomplex Mutants Depends on Cardiolipin Remodeling
(2022)
Function of mitochondria largely depends on a characteristic ultrastructure with typical invaginations, namely the cristae of the inner mitochondrial membrane. The mitochondrial signature phospholipid cardiolipin (CL), the F1Fo-ATP-synthase, and the ‘mitochondrial contact site and cristae organizing system’ (MICOS) complex are involved in this process. Previous studies with Podospora anserina demonstrated that manipulation of MICOS leads to altered cristae structure and prolongs lifespan. While longevity of Mic10-subcomplex mutants is induced by mitohormesis, the underlying mechanism in the Mic60-subcomplex deletion mutants was unclear. Since several studies indicated a connection between MICOS and phospholipid composition, we now analyzed the impact of MICOS on mitochondrial phospholipid metabolism. Data from lipidomic analysis identified alterations in phospholipid profile and acyl composition of CL in Mic60-subcomplex mutants. These changes appear to have beneficial effects on membrane properties and promote longevity. Impairments of CL remodeling in a PaMIC60 ablated mutant lead to a complete abrogation of longevity. This effect is reversed by supplementation of the growth medium with linoleic acid, a fatty acid which allows the formation of tetra-octadecanoyl CL. In the PaMic60 deletion mutant, this CL species appears to lead to longevity. Overall, our data demonstrate a tight connection between MICOS, the regulation of mitochondrial phospholipid homeostasis, and aging of P. anserina.
Research on Podospora anserina unraveled a network of molecular pathways affecting biological aging. In particular, a number of pathways active in the control of mitochondria were identified on different levels. A long-known key process active during aging of P. anserina is the age- related reorganization of the mitochondrial DNA (mtDNA). Mechanisms involved in the stabilization of the mtDNA lead to lifespan extension. Another critical issue is to balance mitochondrial levels of reactive oxygen species (ROS). This is important because ROS are essential signaling molecules, but at increased levels cause molecular damage. At a higher level of the network, mechanisms are active in the repair of damaged compounds. However, if damage passes critical limits, the corresponding pathways are overwhelmed and impaired molecules as well as those present in excess are degraded by specific enzymes or via different forms of autophagy. Subsequently, degraded units need to be replaced by novel functional ones. The corresponding processes are dependent on the availability of intact genetic information. Although a number of different pathways involved in the control of cellular homeostasis were uncovered in the past, certainly many more exist. In addition, the signaling pathways involved in the control and coordination of the underlying pathways are only initially understood. In some cases, like the induction of autophagy, ROS are active. Additionally, sensing and signaling the energetic status of the organism plays a key role. The precise mechanisms involved are elusive and remain to be elucidated.
The eukaryotic glyoxalase system consists of two enzymatic components, glyoxalase I (lactoylglutathionelyase) and glyoxalase II (hydroxyacylglutathione hydrolase). These enzymes are dedicated to the removal of toxic alpha-oxoaldehydes like methylglyoxal (MG). MG is formed as a by-product of glycolysis and MG toxicity results from its damaging capability leading to modifications of proteins, lipids and nucleic acids. An efficient removal of MG appears to be essential to ensure cellular functionality and viability. Here we study the effects of the genetic modulation of genes encoding the components of the glyoxalase system in the filamentous ascomycete and aging model Podospora anserina. Overexpression of PaGlo1 leads to a lifespan reduction on glucose rich medium, probably due to depletion of reduced glutathione. Deletion of PaGlo1 leads to hypersensitivity against MG added to the growth medium. A beneficial effect on lifespan is observed when both PaGlo1 and PaGlo2 are overexpressed and the corresponding strains are grown on media containing increased glucose concentrations. Notably, the double mutant has a ‘healthy’ phenotype without physiological impairments. Moreover, PaGlo1/PaGlo2_OEx strains are not long-lived on media containing standard glucose concentrations suggesting a tight correlation between the efficiency and capacity to remove MG within the cell, the level of available glucose and lifespan. Overall, our results identify the up-regulation of both components of the glyoxalase system as an effective intervention to increase lifespan in P. anserina. Key words: Podospora anserina, aging, lifespan, glycation, glucose, methylglyoxal, advanced glycation end products