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Connecting lysosomes and mitochondria – a novel role for lipid metabolism in cancer cell death
(2019)
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.
The 7th International Symposium on Neuroprotection and Neurorepair was held from May 2nd to May 5th, 2012 in Potsdam, Germany. The symposium, which directly continues the successful Magdeburg meeting series, attracted over 330 colleagues from 29 countries to discuss recent findings and advances in the field. The focus of the 2012 symposium was widened from stroke and traumatic brain injury to neurodegenerative diseases, notably dementia, and more generally the ageing brain. Thereby, emphasis was given on neurovascular aspects of neurodegeneration and stroke including the blood–brain barrier, recent findings regarding the pathomechanism of Alzheimer’s disease, and brain imaging approaches. In addition, neurobiochemical aspects of neuroprotection, the role of astrogliosis, the clinical progress of cell-based approaches as well as translational hurdles and opportunities were discussed in-depth. This review summarizes some of the most stimulating discussions and reports from the meeting.
Volatile anesthetic-induced preconditioning ( APC) has shown to have cardiac and cerebral protective properties in both pre-clinical models and clinical trials. Interestingly, accumulating evidences demonstrate that, except from some specific characters, the underlying molecular mechanisms of APC-induced protective effects in myocytes and neurons are very similar; they share several major intracellular signaling pathways, including mediating mitochondrial function, release of inflammatory cytokines and cell apoptosis. Among all the experimental results, cortical spreading depolarization is a relative newly discovered cellular mechanism of APC, which, however, just exists in central nervous system. Applying volatile anesthetic preconditioning to clinical practice seems to be a promising cardio- and neuroprotective strategy. In this review, we also summarized and discussed the results of recent clinical research of APC. Despite all the positive experimental evidences, large-scale, long-term, more precisely controlled clinical trials focusing on the perioperative use of volatile anesthetics for organ protection are still needed.
In Keratinozyten wird sowohl durch UVB als auch durch PUVA-Bestrahlung Apoptose induziert. Wir untersuchten die in Keratinozyten durch UVB, PUVA, UVA und Todesliganden wie TRAIL ausgelösten Apoptosewege näher. UVB und PUVA, nicht aber UVA-Bestrahlung lösen in vitro Keratinozytenapoptose aus. 2-4 h nach UVB beobachteten wir die Aktivierung von Caspasen. Nach PUVA setzt die Aktivierung von Caspasen wesentlich später ein, nämlich erst 12 h nach Bestrahlung. Passend dazu, ist ein Verlust des mitochondrialen Transmembranpotentials 6-8 h nach UVB und 12-14 h nach PUVA detektierbar. Die Überexpression des Proteins Bcl-2 verhindert den Verlust des mitochondrialen Transmembranpotentials und die Caspase-Aktivierung nach UVB, und vermittelt auch einen klonogen Schutz, unabhängig von der Bildung reaktiver Sauerstoffradikale. Im Gegensatz dazu verzögert es den Verlust des Transmembranpotentials und die Caspase-Aktivierung nach PUVA nur und verhindert sie nicht. PUVA-bestrahlte Zellen können sich nicht weiter teilen, sind also durch Bcl-2 nicht klonogen geschützt.
T cells play an essential role in the immune system. Engaging the T cell receptor (TCR) initiates a cascade of signaling events that activates the T cells. Neutral sphingomyelinase (NSM) is a member of a superfamily of enzymes responsible for the hydrolysis of sphingomyelin into phosphocholine and ceramide. Sphingolipids are essential mediators in signaling cascades involved in apoptosis, proliferation, stress responses, necrosis, inflammation, autophagy, senescence, and differentiation.
Upon specific ablation of NSM2, T cells proved to be hyper-responsive to CD3/CD28 co-stimulation, indicating that the enzyme acts to dampen early overshooting activation of these cells. It remained unclear whether a deregulated metabolic activity supports the hyper-reactivity of NSM2 deficient T cells. This work demonstrates that the ablation of NSM2 activity affects the metabolism of the quiescent CD4+ T cells. These accumulate ATP in mitochondria and increase basal glycolytic activity by increasing the basal glucose uptake and GLUT1 receptor expression, which, altogether, raises intracellular ATP levels and boosts cellular respiration. The increased basal metabolic activity is associated with rapid phosphorylation of S6, a mTORC1 target, as well as enhanced elevation total ATP levels within the first hour after CD3/CD28 costimulation. Increased metabolic activity in resting NSM2 deficient T cells does, however, not support sustained stimulated responses. While elevated under steady-state conditions and elevated early after co-stimulation in NSM2 deficient CD4+ T cells, the mTORC1 pathway regulating mitochondria size, oxidative phosphorylation, and ATP production is impaired after 24 hours of stimulation. Taken together, the absence of NSM2 promotes a hyperactive metabolic state in unstimulated CD4+ T cells yet fails to support sustained T cell responses upon antigenic stimulation without affecting T cell survival.
Energy-demanding organs like the heart are strongly dependent on oxidative phosphorylation in mitochondria. Oxidative phosphorylation is governed by the respiratory chain located in the inner mitochondrial membrane. The inner mitochondrial membrane is the only cellular membrane with significant amounts of the phospholipid cardiolipin, and cardiolipin was found to directly interact with a number of essential protein complexes, including respiratory chain complexes I to V. An inherited defect in the biogenesis of cardiolipin causes Barth syndrome, which is associated with cardiomyopathy, skeletal myopathy, neutropenia and growth retardation. Energy conversion is dependent on reducing equivalents, which are replenished by oxidative metabolism in the Krebs cycle. Cardiolipin deficiency in Barth syndrome also affects Krebs cycle activity, metabolite transport and mitochondrial morphology. During excitation-contraction coupling, calcium (Ca\(^{2+}\)) released from the sarcoplasmic reticulum drives sarcomeric contraction. At the same time, Ca\(^{2+}\) influx into mitochondria drives the activation of Krebs cycle dehydrogenases and the regeneration of reducing equivalents. Reducing equivalents are essential not only for energy conversion, but also for maintaining a redox buffer, which is required to detoxify reactive oxygen species (ROS). Defects in CL may also affect Ca\(^{2+}\) uptake into mitochondria and thereby hamper energy supply and demand matching, but also detoxification of ROS. Here, we review the impact of cardiolipin deficiency on mitochondrial function in Barth syndrome and discuss potential therapeutic strategies.
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.
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.
Highlights
• Loss of DNAJC19's DnaJ domain disrupts cardiac mitochondrial structure, leading to abnormal cristae formation in iPSC-CMs.
• Impaired mitochondrial structures lead to an increased mitochondrial respiration, ROS and an elevated membrane potential.
• Mutant iPSC-CMs show sarcomere dysfunction and a trend to more arrhythmias, resembling DCMA-associated cardiomyopathy.
Background
Dilated cardiomyopathy with ataxia (DCMA) is an autosomal recessive disorder arising from truncating mutations in DNAJC19, which encodes an inner mitochondrial membrane protein. Clinical features include an early onset, often life-threatening, cardiomyopathy associated with other metabolic features. Here, we aim to understand the metabolic and pathophysiological mechanisms of mutant DNAJC19 for the development of cardiomyopathy.
Methods
We generated induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) of two affected siblings with DCMA and a gene-edited truncation variant (tv) of DNAJC19 which all lack the conserved DnaJ interaction domain. The mutant iPSC-CMs and their respective control cells were subjected to various analyses, including assessments of morphology, metabolic function, and physiological consequences such as Ca\(^{2+}\) kinetics, contractility, and arrhythmic potential. Validation of respiration analysis was done in a gene-edited HeLa cell line (DNAJC19tv\(_{HeLa}\)).
Results
Structural analyses revealed mitochondrial fragmentation and abnormal cristae formation associated with an overall reduced mitochondrial protein expression in mutant iPSC-CMs. Morphological alterations were associated with higher oxygen consumption rates (OCRs) in all three mutant iPSC-CMs, indicating higher electron transport chain activity to meet cellular ATP demands. Additionally, increased extracellular acidification rates suggested an increase in overall metabolic flux, while radioactive tracer uptake studies revealed decreased fatty acid uptake and utilization of glucose. Mutant iPSC-CMs also showed increased reactive oxygen species (ROS) and an elevated mitochondrial membrane potential. Increased mitochondrial respiration with pyruvate and malate as substrates was observed in mutant DNAJC19tv HeLa cells in addition to an upregulation of respiratory chain complexes, while cellular ATP-levels remain the same. Moreover, mitochondrial alterations were associated with increased beating frequencies, elevated diastolic Ca\(^{2+}\) concentrations, reduced sarcomere shortening and an increased beat-to-beat rate variability in mutant cell lines in response to β-adrenergic stimulation.
Conclusions
Loss of the DnaJ domain disturbs cardiac mitochondrial structure with abnormal cristae formation and leads to mitochondrial dysfunction, suggesting that DNAJC19 plays an essential role in mitochondrial morphogenesis and biogenesis. Moreover, increased mitochondrial respiration, altered substrate utilization, increased ROS production and abnormal Ca\(^{2+}\) kinetics provide insights into the pathogenesis of DCMA-related cardiomyopathy.
Viele Funktionen der Mitochondrien basieren auf Prozessen, an denen sowohl mitochondriale wie auch kernkodierte Genprodukte beteiligt sind. Durch zahlreiche Interaktionen ist der Einfluss dieser Einzelkomponenten auf das zelluläre System oftmals nur schwierig erkennbar. Mit Hilfe von rho0 -Zellen, deren Mitochondrien über kein eigenes Genom mehr verfügen, kann die mitochondriale Genkomponente ausgeschlossen werden. Im Rahmen dieser Arbeit wurden zunächst die metabolischen, proliferativen und morphologischen Eigenschaften einer rho0-Zelllinie 143B.TK-K7 untersucht, welche durch die Expression einer mitochondrial zielgesteuerten Restriktionsendonuklease hergestellt wurde. Während der Kultivierung bilden sich im Zytoplasma der 143B.TK-K7-Zellen mit fortlaufender Kultivierungszeit und zunehmenden Azidifizierung des Mediums Mega-Mitochondrien. Diese entstehen sowohl durch zahlreiche Fusionsereignisse als auch einem Schwellen durch vermehrten Wassereinfluss in die Mitochondrienmatrix. Alle Mitochondrien liegen dann als große kugelförmige Strukturen in der Zelle vor und nehmen somit die geringste Oberfläche zu einem vorhandenen Volumen ein. Die Entstehung der Mega-Mitochondrien ist dabei abhängig von einer hohen Protonenkonzentration zusätzlich zu einer ausreichend großen Menge an Laktat im Medium (Milchsäure). Zudem zeigt sich, dass auch in Zellen, welche noch ein mitochondriales Genom besitzen, durch diese Bedingungen die Bildung von Mega-Mitochondrien induziert werden kann. Bei der Entstehung der Mega-Mitochondrien handelt es sich zunächst nicht um apoptotische Vorgänge, da durch den Austausch des aziden Mediums eine äußerst schnelle Rückbildung in ein, den rho0-Zellen ähnliches Mitochondriennetzwerk erfolgt. Metabolische Untersuchungen zeigen, dass für die Rückbildung der Mega-Mitochondrien zu einem Netzwerk ausschließlich die im Medium vorhandene Protonenkonzentration ausreichend gering sein muss. Durch immunzytochemische Untersuchungen wurde deutlich, dass sowohl das mitochondriale Fusionsprotein MFN2 wie auch das Fissionsprotein DNM1L während der Entstehung und auch Rückbildung der Mega-Mitochondrien in punktförmigen Bereichen an der äußeren Mitochondrienmembran lokalisieren. Um zu überprüfen, ob die Bildung der Mega-Mitochondrien durch einer Überexpression von Proteinen der Fissionsmaschinerie verhindert wird, wurden PAGFP- bzw. EGFP-Fusionsproteine mit hFis1 und DNM1L hergestellt und in die 143B.TK-K7-Zellen transfiziert. Dabei führt eine verstärkte Expression von hFis1 zu aggregierten Mitochondrien, welche zwar anschwellen, nach einem Mediumwechsel jedoch trotzdem bestehen bleiben. Eine Überexpression von DNM1L hat keinen Einfluss auf die Entstehung und Rückbildung der Mega-Mitochondrien. Durch Inhibierung des Tubulin- bzw. Aktin-Zytoskeletts, konnte gezeigt werden, dass eine Zerstörung des Tubulin-Zytoskeletts auf die Entstehung und Rückbildung der Mega-Mitochondrien keine Auswirkungen hat. Die Untersuchungen zu dem Einfluss des Aktin-Zytoskeletts zeigen, dass die Mega-Mitochondrien ringförmig von dem Aktin-Zytoskelett umgeben sind. Mit Hilfe von Fluoreszenzprotein-Markern für die äußere und innere Mitochondrienmembran wurden die Mega-Mitochondrien als Modellsystem für mitochondriale Fusions- und Fissionsstudien verwendet. Somit konnte in der vorliegenden Arbeit mitochondriale Fusion und Fission zum ersten Mal an lebenden Zellen direkt beobachtet werden und führte nachfolgend zu der Einteilung von Fusionsvorgängen der Mitochondrien in einen Modus 1, bei dem eine zeitlich gekoppelte vollständige Fusion von sowohl äußerer wie auch innerer Membran geschieht und einen Modus 2, bei dem die Fusion der äußeren Membranen ohne die Fusion der inneren Membranen erfolgt. In ähnlicher Weise kann die Fission von Mitochondrien unterteilt werden. In einem als Modus 1 bezeichneten Mechanismus beginnt die Rückbildung der Mega-Mitochondrien zunächst mit einer Tubulierung der Mitochondrien hin zu langen Mitochondrienschläuchen, die einen nur geringen Durchmesser besitzen. Erst dann treten vermehrt zeitlich sehr schnell ablaufende Fissionsvorgänge auf. Zusätzlich wurde ein Modus 2-Mechanismus der Fission beobachtet, welcher aus einer unvollständigen Fusion resultiert, bei dem die inneren Membranen noch nicht miteinander verschmolzen sind. Auf elektronenmikroskopischer Ebene finden während der Mega-Mitochondrien-Bildung drastische Veränderung von zwiebelringartigen Cristae hin zu einer Abnahme von inneren Membranstrukturen und der elektronendichte im Matrixraum statt. Somit ist im Rahmen dieser Arbeit zum ersten Mal eine optische Beobachtung sowohl dieser Bewegungen wie auch von Fusions- und Fissionsprozessen und deren zeitlich Auflösung in vivo mit Hilfe der Mega-Mitochondrien gelungen.