TY - INPR A1 - Hennig, Thomas A1 - Prusty, Archana B. A1 - Kaufer, Benedikt A1 - Whisnant, Adam W. A1 - Lodha, Manivel A1 - Enders, Antje A1 - Thomas, Julius A1 - Kasimir, Francesca A1 - Grothey, Arnhild A1 - Herb, Stefanie A1 - Jürges, Christopher A1 - Meister, Gunter A1 - Erhard, Florian A1 - Dölken, Lars A1 - Prusty, Bhupesh K. T1 - Selective inhibition of microRNA processing by a herpesvirus-encoded microRNA triggers virus reactivation from latency N2 - Herpesviruses have mastered host cell modulation and immune evasion to augment productive infection, life-long latency and reactivation thereof 1,2. A long appreciated, yet elusively defined relationship exists between the lytic-latent switch and viral non-coding RNAs 3,4. Here, we identify miRNA-mediated inhibition of miRNA processing as a novel cellular mechanism that human herpesvirus 6A (HHV-6A) exploits to disrupt mitochondrial architecture, evade intrinsic host defense and drive the latent-lytic switch. We demonstrate that virus-encoded miR-aU14 selectively inhibits the processing of multiple miR-30 family members by direct interaction with the respective pri-miRNA hairpin loops. Subsequent loss of miR-30 and activation of miR-30/p53/Drp1 axis triggers a profound disruption of mitochondrial architecture, which impairs induction of type I interferons and is necessary for both productive infection and virus reactivation. Ectopic expression of miR-aU14 was sufficient to trigger virus reactivation from latency thereby identifying it as a readily drugable master regulator of the herpesvirus latent-lytic switch. Our results show that miRNA-mediated inhibition of miRNA processing represents a generalized cellular mechanism that can be exploited to selectively target individual members of miRNA families. We anticipate that targeting miR-aU14 provides exciting therapeutic options for preventing herpesvirus reactivations in HHV-6-associated disorders like myalgic encephalitis/chronic fatigue syndrome (ME/CFS) and Long-COVID. KW - Herpesvirus KW - HHV-6 KW - miRNA processing KW - miR-30 KW - mitochondria KW - fusion and fission KW - type I interferon KW - latency KW - virus reactivation Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-267858 UR - https://doi.org/10.21203/rs.3.rs-820696/v1 ET - submitted version ER - TY - JOUR A1 - Kunz, Tobias C. A1 - Götz, Ralph A1 - Gao, Shiqiang A1 - Sauer, Markus A1 - Kozjak-Pavlovic, Vera T1 - Using Expansion Microscopy to Visualize and Characterize the Morphology of Mitochondrial Cristae JF - Frontiers in Cell and Developmental Biology N2 - Mitochondria are double membrane bound organelles indispensable for biological processes such as apoptosis, cell signaling, and the production of many important metabolites, which includes ATP that is generated during the process known as oxidative phosphorylation (OXPHOS). The inner membrane contains folds called cristae, which increase the membrane surface and thus the amount of membrane-bound proteins necessary for the OXPHOS. These folds have been of great interest not only because of their importance for energy conversion, but also because changes in morphology have been linked to a broad range of diseases from cancer, diabetes, neurodegenerative diseases, to aging and infection. With a distance between opposing cristae membranes often below 100 nm, conventional fluorescence imaging cannot provide a resolution sufficient for resolving these structures. For this reason, various highly specialized super-resolution methods including dSTORM, PALM, STED, and SIM have been applied for cristae visualization. Expansion Microscopy (ExM) offers the possibility to perform super-resolution microscopy on conventional confocal microscopes by embedding the sample into a swellable hydrogel that is isotropically expanded by a factor of 4–4.5, improving the resolution to 60–70 nm on conventional confocal microscopes, which can be further increased to ∼ 30 nm laterally using SIM. Here, we demonstrate that the expression of the mitochondrial creatine kinase MtCK linked to marker protein GFP (MtCK-GFP), which localizes to the space between the outer and the inner mitochondrial membrane, can be used as a cristae marker. Applying ExM on mitochondria labeled with this construct enables visualization of morphological changes of cristae and localization studies of mitochondrial proteins relative to cristae without the need for specialized setups. For the first time we present the combination of specific mitochondrial intermembrane space labeling and ExM as a tool for studying internal structure of mitochondria. KW - Expansion microscopy KW - mitochondria KW - cristae KW - structured illumination microscope KW - ultrastructure Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-208296 SN - 2296-634X VL - 8 ER - TY - JOUR A1 - Bartel, Karin A1 - Pein, Helmut A1 - Popper, Bastian A1 - Schmitt, Sabine A1 - Janaki-Raman, Sudha A1 - Schulze, Almut A1 - Lengauer, Florian A1 - Koeberle, Andreas A1 - Werz, Oliver A1 - Zischka, Hans A1 - Müller, Rolf A1 - Vollmar, Angelika M. A1 - Schwarzenberg, Karin von T1 - Connecting lysosomes and mitochondria – a novel role for lipid metabolism in cancer cell death JF - Cell Communication and Signaling N2 - Background The understanding of lysosomes has been expanded in recent research way beyond their view as cellular trash can. Lysosomes are pivotal in regulating metabolism, endocytosis and autophagy and are implicated in cancer. Recently it was discovered that the lysosomal V-ATPase, which is known to induce apoptosis, interferes with lipid metabolism in cancer, yet the interplay between these organelles is poorly understood. Methods LC-MS/MS analysis was performed to investigate lipid distribution in cells. Cell survival and signaling pathways were analyzed by means of cell biological methods (qPCR, Western Blot, flow cytometry, CellTiter-Blue). Mitochondrial structure was analyzed by confocal imaging and electron microscopy, their function was determined by flow cytometry and seahorse measurements. Results Our data reveal that interfering with lysosomal function changes composition and subcellular localization of triacylglycerids accompanied by an upregulation of PGC1α and PPARα expression, master regulators of energy and lipid metabolism. Furthermore, cardiolipin content is reduced driving mitochondria into fission, accompanied by a loss of membrane potential and reduction in oxidative capacity, which leads to a deregulation in cellular ROS and induction of mitochondria-driven apoptosis. Additionally, cells undergo a metabolic shift to glutamine dependency, correlated with the fission phenotype and sensitivity to lysosomal inhibition, most prominent in Ras mutated cells. Conclusion This study sheds mechanistic light on a largely uninvestigated triangle between lysosomes, lipid metabolism and mitochondrial function. Insight into this organelle crosstalk increases our understanding of mitochondria-driven cell death. Our findings furthermore provide a first hint on a connection of Ras pathway mutations and sensitivity towards lysosomal inhibitors. KW - lysosome KW - V-ATPase KW - mitochondria KW - fission KW - apoptosis KW - lipid metabolism KW - cardiolipin Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-221524 VL - 17 ER - TY - JOUR A1 - Goos, Carina A1 - Dejung, Mario A1 - Janzen, Christian J. A1 - Butter, Falk A1 - Kramer, Susanne T1 - The nuclear proteome of Trypanosoma brucei JF - PLoS ONE N2 - Trypanosoma brucei is a protozoan flagellate that is transmitted by tsetse flies into the mammalian bloodstream. The parasite has a huge impact on human health both directly by causing African sleeping sickness and indirectly, by infecting domestic cattle. The biology of trypanosomes involves some highly unusual, nuclear-localised processes. These include polycistronic transcription without classical promoters initiated from regions defined by histone variants, trans-splicing of all transcripts to the exon of a spliced leader RNA, transcription of some very abundant proteins by RNA polymerase I and antigenic variation, a switch in expression of the cell surface protein variants that allows the parasite to resist the immune system of its mammalian host. Here, we provide the nuclear proteome of procyclic Trypanosoma brucei, the stage that resides within the tsetse fly midgut. We have performed quantitative label-free mass spectrometry to score 764 significantly nuclear enriched proteins in comparison to whole cell lysates. A comparison with proteomes of several experimentally characterised nuclear and non-nuclear structures and pathways confirmed the high quality of the dataset: the proteome contains about 80% of all nuclear proteins and less than 2% false positives. Using motif enrichment, we found the amino acid sequence KRxR present in a large number of nuclear proteins. KRxR is a sub-motif of a classical eukaryotic monopartite nuclear localisation signal and could be responsible for nuclear localization of proteins in Kinetoplastida species. As a proof of principle, we have confirmed the nuclear localisation of six proteins with previously unknown localisation by expressing eYFP fusion proteins. While proteome data of several T. brucei organelles have been published, our nuclear proteome closes an important gap in knowledge to study trypanosome biology, in particular nuclear-related processes. KW - Trypanosoma KW - gambiense KW - Trypanosoma brucei KW - proteomes KW - yellow fluorescent protein KW - mitochondria KW - protein structure KW - histones Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-158572 VL - 12 IS - 7 ER - TY - JOUR A1 - Ott, Christine A1 - Dorsch, Eva A1 - Fraunholz, Martin A1 - Straub, Sebastian A1 - Kozjak-Pavlovic, Vera T1 - Detailed Analysis of the Human Mitochondrial Contact Site Complex Indicate a Hierarchy of Subunits JF - PLoS One N2 - Mitochondrial inner membrane folds into cristae, which significantly increase its surface and are important for mitochondrial function. The stability of cristae depends on the mitochondrial contact site (MICOS) complex. In human mitochondria, the inner membrane MICOS complex interacts with the outer membrane sorting and assembly machinery (SAM) complex, to form the mitochondrial intermembrane space bridging complex (MIB). We have created knockdown cell lines of most of the MICOS and MIB components and have used them to study the importance of the individual subunits for the cristae formation and complex stability. We show that the most important subunits of the MIB complex in human mitochondria are Mic60/Mitofilin, Mic19/CHCHD3 and an outer membrane component Sam50. We provide additional proof that ApoO indeed is a subunit of the MICOS and MIB complexes and propose the name Mic23 for this protein. According to our results, Mic25/CHCHD6, Mic27/ApoOL and Mic23/ApoO appear to be periphery subunits of the MICOS complex, because their depletion does not affect cristae morphology or stability of other components. KW - co-immunoprecipitation KW - motor proteins KW - mitochondria KW - membrane potential KW - membrane proteins KW - protein complexes KW - mitochondrial membrane KW - outer membrane proteins Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-125347 VL - 10 IS - 3 ER - TY - THES A1 - Ott, Christine Kornelia T1 - Diverse Aspects of the Sorting and Assembly Machinery in Human Mitochondria T1 - Diverse Aspekte der Sortierungs- und Assemblierungsmaschinerie in humanen Mitochondrien N2 - Mitochondria are organelles of endosymbiotic origin, which play many important roles in eukaryotic cells. Mitochondria are surrounded by two membranes and, considering that most of the mitochondrial proteins are produced in the cytosol, possess import machineries, which transport mitochondria-targeted proteins to their designated location. A special class of outer mitochondrial membrane (OMM) proteins, the β-barrel proteins, require the sorting and assembly machinery (SAM) for their OMM integration. Both mitochondrial β-barrel proteins and the central component of the SAM complex, Sam50, have homologs in gram-negative bacteria. In yeast mitochondria, bacterial β-barrel proteins can be imported and assembled into the OMM. Our group demonstrated that this, however, is not the case for human mitochondria, which import only neisserial β barrel proteins, but not those of Escherichia coli and Salmonella enterica. As a part of this study, I could demonstrate that β-barrel proteins such as Omp85 and PorB of different Neisseria species are targeted to human mitochondria. Interestingly, only proteins belonging to the neisserial Omp85 family were integrated into the OMM, whereas PorB was imported into mitochondria but not assembled. By exchanging parts of homologous neisserial Omp85 and E. coli BamA and, similarly, of neisserial PorB and E. coli OmpC, it could be demonstrated in this work that the mitochondrial import signal of bacterial β barrel proteins cannot be limited to one short linear sequence, but rather secondary structure and protein charge seem to play an important role, as well as specific residues in the last β-strand of Omp85. Omp85 possesses five conserved POTRA domains in its amino-terminal part. This work additionally demonstrated that in human mitochondria, at least two POTRA domains of Omp85 are necessary for membrane integration and functionality of Omp85. In the second part of this work, the influence of Sam50 on the mitochondrial cristae structure was investigated. This work contributed to a study performed by our group in which it was confirmed that Sam50 is present in a high molecular weight complex together with mitofilin, CHCHD3, CHCHD6, DnaJC11, metaxin 1 and metaxin 2. This connection between the inner and outer mitochondrial membrane was shown to be crucial for the maintenance of the mitochondrial cristae structure. In addition, a role of Sam50 in respiratory complex assembly, suggested by a SILAC experiment conducted in our group, could be confirmed by in vitro import studies. An influence of Sam50 not only on respiratory complexes but also on the recently described respiratory complex assembly factor TTC19 was demonstrated. It was shown that TTC19 not only plays a role in complex III assembly as published, but also influences the assembly of respiratory complex IV. Thus, in this part of the work a connection between the OMM protein Sam50 and maintenance of cristae structure, respiratory complex assembly and an assembly factor could be established. N2 - Mitochondrien sind Zellorganellen endosymbiotischen Ursprungs, die viele wichtige Funktionen in eukaryotischen Zellen haben. Mitochondrien sind von zwei Membranen umgeben, und da die meisten Mitochondrienproteine im Cytosol hergestellt werden, besitzen sie Importmaschinerien, die die für die Mitochondrien bestimmten Proteine zu ihrem jeweiligen Zielort transportieren. Eine besondere Klasse von Proteinen der äußeren Mitochondrienmembran (ÄMM), die β-Fassproteine, benötigen die Sortierungs- und Assemblierungsmaschinerie (SAM) für ihre Integration in die ÄMM. Sowohl mitochondriale β-Fassproteine als auch die zentrale Komponente des SAM-Komplexes, Sam50, haben Homologe in gramnegativen Bakterien. In Hefemitochondrien können bakterielle β Fassproteine importiert und in der ÄMM assembliert werden. Unsere Gruppe hat gezeigt, dass dies jedoch nicht auf humane Mitochondrien zutrifft, die nur neisserielle β-Fassproteine importieren, nicht aber diejenigen von Escherichia coli und Salmonella enterica. Im Rahmen dieser Studie konnte ich zeigen, dass β Fassproteine verschiedener Neisserienarten, wie Omp85 und PorB, in humane Mitochondrien aufgenommen werden. Interessanterweise wurden nur Proteine der neisseriellen Omp85-Familie in die ÄMM eingebaut, während PorB zwar importiert, jedoch nicht assembliert wurde. Durch das Austauschen von Teilen von homologem neisseriellen Omp85 und E.coli BamA und ebenso von neisseriellem PorB und E. coli OmpC konnte in dieser Arbeit gezeigt werden, dass das mitochondriale Importsignal bakterieller β-Fassproteine nicht auf eine kurze lineare Sequenz eingegrenzt werden kann, sondern dass die Sekundärstruktur und die Ladung des Proteins eine wichtige Rolle zu spielen scheinen, sowie im Fall von Omp85 einige bestimmte Aminosäurereste des letzten β-Stranges. Omp85 besitzt fünf konservierte POTRA-Domänen in seiner aminoterminalen Hälfte. In dieser Arbeit wurde zudem demonstriert, dass in humanen Mitochondrien mindestens zwei POTRA-Domänen von Omp85 für die Membranintegration und Funktionalität von Omp85 vorhanden sein müssen. Im zweiten Teil dieser Arbeit wurde der Einfluss von Sam50 auf die mitochondriale Cristaestruktur untersucht. Diese Arbeit hat zu einer von unserer Gruppe durchgeführten Studie beigetragen, in der bestätigt werden konnte, dass Sam50 in einem hochmolekularen Komplex mit Mitofilin, CHCHD3, CHCHD6, DnaJC11, Metaxin 1 und Metaxin 2 vorliegt. Es wurde gezeigt, dass diese Verbindung zwischen der inneren und äußeren Mitochondrienmembran unverzichtbar für die Aufrechterhaltung der mitochondrialen Cristaestruktur ist. Zudem konnte eine Rolle von Sam50 bei der Assemblierung von Atmungskettenkomplexen, die durch ein in unserem Labor durchgeführtes SILAC-Experiment nahegelegt worden war, durch in-vitro-Importstudien bestätigt werden. Weiterhin wurde ein Einfluss von Sam50 nicht nur auf Atmungskettenkomplexe, sondern auch auf einen vor kurzem beschriebenen Assemblierungsfaktor der Atmungskette, TTC19, demonstriert. Es wurde gezeigt, dass TTC19 nicht nur, wie veröffentlicht, eine Rolle bei der Assemblierung des Atmungskettenkomplexes III spielt, sondern auch die Assemblierung des Atmungskettenkomplexes IV beeinflusst. In diesem Teil der Arbeit konnte folglich eine Verbindung zwischen dem ÄMM-Protein Sam50 und der Organisation der Cristaestruktur, der Atmungskettenassemblierung und einem Assemblierungsfaktor nachgewiesen werden. KW - Mitochondrien KW - Mensch KW - Molekularbiologie KW - mitochondria KW - Import KW - Omp85 KW - beta-barrel-proteins KW - cristae KW - beta-Fassproteine KW - Cristaestruktur Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-85462 ER -