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The deubiquitinase USP32 regulates non-proteolytic ubiquitination in the endosomal-lysosomal system
(2021)
The regulation of essential cellular processes requires tightly controlled and directed transport of proteins and membranes. The highly dynamic endosomal and lysosomal system forms the key network for exchange and trafficking of molecules with its early endosomes, recycling endosomes, late endosomes, lysosomes, and additionally autophagosomes.
In this system, the small GTPase Rab7 has an essential role at the late endosomal stage regulating vesicle transport, tethering, and fusion, and retromer mediated receptor recycling back to the trans-Golgi network (TGN). Thus, Rab7 is also important for autophagosomes and lysosomes.
Lysosomes do not only represent the end point of the degradation pathway with several feeder pathways. But these organelles are also a dynamic signaling hub for a variety of metabolic processes. The ever-important regulator of cellular biosynthetic pathways mTORC1 dynamically associates with lysosomes where it is activated. mTORC1 activation is a complex multi-step process where a series of signaling events converge in dependence of amino acid levels thereby enabling interactions between the lysosomal v-ATPase, Ragulator complex (consisting of LAMTOR1-5), and Rag GTPases.
Ubiquitin signals are involved in almost all cellular processes. With this, their regulatory mechanism is also described for the endosomal-lysosomal system as well as mTORC1 signaling. Deubiquitinases (DUBs) release conjugated ubiquitin from proteins and thereby maintain the dynamic state of the cellular ubiquitinome.
The ubiquitin-specific protease 32 (USP32) is a poorly characterized DUB with only emerging cellular function. However, its predicted domain structure includes two unique domains within the entire DUB family. It has been linked to the development of breast cancer and small cell lung cancer. Furthermore, overexpressed GFP-USP32 was localized at the TGN, and a global mass spectrometry-based DUB interactome study suggested an interaction with the retromer complex. Based on these data, USP32 was a very interesting candidate to study its cellular function in this PhD project.
To investigate the function without disease background, a polyclonal USP32 knockout (USP32KO) RPE1 cell line was generated using the CRISPR/Cas9 technology. First experiments revealed different protein expression levels in various cell lines, and a subcellular localization of USP32 at membranes of the Golgi and lysosomal compartments. In a subsequent SILAC-based ubiquitinome analysis potential substrates of USP32 were identified. Interestingly, various proteins of the endosomal-lysosomal system were detected with enriched non-proteolytic ubiquitination upon USP32 depletion.
The further characterization of Rab7 as USP32 substrate confirmed the USP32-sensitive ubiquitination of Rab7 at lysine (K) residues 191 and 194. The ubiquitination in USP32KO cells did not change the subcellular localization of Rab7, but enhanced the interaction with the effector protein RILP. This implied that Rab7 was either more active or RILP had higher affinity to ubiquitinated Rab7. The subsequent results verified this theory. The retromer mediated recycling of CI-M6PR back to the TGN was faster or more efficient in USP32-depleted cells.
Accompanying this, levels of hydrolases were enriched in lysosomes isolated from USP32KO cells. Notably, USP32 had no direct effect on expression level or assembly of the retromer complex itself.
The observed lysosomal phenotypes connected another identified substrate to the function of USP32 in the endosomal-lysosomal system: LAMTOR1. LAMTOR1 is a component of the Ragulator complex and thus involved in the activation of mTORC1 at the lysosomal surface. Similar as for Rab7, the first experiments to characterize LAMTOR1 as USP32 substrate confirmed the USP32-sensitive ubiquitination at K20 independent of amino acid availability. However, ubiquitination of LAMTOR1 decreased its lysosomal localization in untreated and amino acid starved USP32KO cells. The following label-free interactome study detected a reduced interaction of LAMTOR1 and subunits of the lysosomal v-ATPase upon loss of USP32. This resulted in a shifted subcellular localization of mTOR (subunit of mTORC1) away from lysosomes. Furthermore, direct substrates of mTORC1 were less or slower re-phosphorylated after long amino acid starvation and re-activation of mTORC1 in USP32KO cells indicating a reduced mTORC1 activity.
Both USP32-dependent regulations of Rab7 and LAMTOR1/Ragulator converged in enhanced autophagic processes analyzed by increased LC3 levels upon amino acid starvation and USP32 depletion.
In summary, the presented thesis described the diverse role of USP32 in the endosomal and lysosomal system, and contributes to the understanding of novel ubiquitin signals in this context.
The desensitized channelrhodopsin-2 photointermediate contains 13 -cis, 15 -syn retinal Schiff base
(2021)
Channelrhodopsin-2 (ChR2) is a light-gated cation channel and was used to lay the foundations of optogenetics. Its dark state X-ray structure has been determined in 2017 for the wild-type, which is the prototype for all other ChR variants. However, the mechanistic understanding of the channel function is still incomplete in terms of structural changes after photon absorption by the retinal chromophore and in the framework of functional models. Hence, detailed information needs to be collected on the dark state as well as on the different photointermediates. For ChR2 detailed knowledge on the chromophore configuration in the different states is still missing and a consensus has not been achieved. Using DNP-enhanced solid-state MAS NMR spectroscopy on proteoliposome samples, we unambiguously determined the chromophore configuration in the desensitized state, and we show that this state occurs towards the end of the photocycle.
Cytochrome P450 enzymes are a large superfamily of membrane-bound heme-containing monooxygenases. They are essential for the oxidative metabolism of endogenous substrates such as steroids and fatty acids, and biotransformation of xenobiotic substrates such as pollutants and drugs. Although the highest expression of CYPs is found in the liver, their cardiovascular expression is not negligible with CYP450 subfamilies being responsible for the production of vasoactive lipids. Of importance, the enzymatic activity of all microsomal CYP450 isoenzymes is dependent on the cytochrome P450 reductase (POR), an electron donor.
In the first part of this work, the role of cytochrome P450 monooxygenases on the biotransformation of organic nitrates was investigated. Recombinant SupersomesTM were selected and incubated with NTG and PETN, where nitrite release was measured as a nitric oxide (NO) footprint. The capacity of the recombinant POR/CYP450 system to release nitrite from NO prodrugs was shown to be CYP-specific and dose-dependent. To study the involvement of CYP450 enzymes in the vascular biotransformation of organic nitrates in vivo, a smooth muscle-cell specific, inducible knockout model of POR (smcPOR-/-) was generated. Organ chamber experiments revealed that the vascular POR/CYP450 system had no impact on the dilator response of NTG and PETN. In line with previous publications, inhibition of ALDH2, known as the main enzyme responsible for the activation of NTG and PETN, and/or abolishment of the endogenous NO production did not reveal a contribution of the POR/CYP450 system to the dilator response of NTG and PETN. To better understand these results, we looked at the expression of the hepatic and vascular expression of the POR/CYP450 system where the hepatic was increased by 10- to 40-fold as shown by Western blot analysis. We concluded that due to insufficient vascular expression of CYP450 enzymes their contribution to the bioactivation of NTG and PETN is only minor.
The second part of this work focused on the cardiac relevance of endothelial isoenzymes. For that purpose, an endothelial cell-specific, tamoxifen-inducible knockout model of POR was generated and characterized in the present study. RNA-sequencing of the heart of healthy mice revealed that the CYP450 expression is cell-specific with cardiac endothelial cells (ECs) exhibiting an enrichment in the expression of the Cyp4 family (ω-oxidation of fatty acids) and of the Cyp2 family (production of EETs). Under non-stredded conditions (i.e. 30 days after inducing the knockout by tamoxifen feeding), endothelial deletion of POR was associated with cardiac remodelling as observed by an increase in the ratio of heart weight to body weight and an increase in the cardiomyocyte area. RNA-sequencing of cardiac ECs suggested that loss of POR might alter ribosomal biogenesis and protein synthesis, which could potentially affect the cardiac contractility in ecPOR-/- mice. Metabolomics from cardiac tissue of CTL and ecPOR-/- mice were not indicative for an important metabolic function of the endothelial POR/CYP450 system in the heart. The combination of transverse aortic constriction (TAC) with endothelial deletion of POR accelerates the development of heart failure in mice as detected by a reduction in cardiac output and stroke volume. These effects were mediated most likely by a reduction in vascular EETs production, which increases vascular stiffness, resulting in cardiac remodeling.
Cytochrome c oxidase catalyzes the reduction of oxygen to water. This process is accompanied by the vectorial transport of protons across the mitochondrial or bacterial membrane (“proton pumping”). The mechanism of proton pumping is still a matter of debate. Many proposed mechanisms require structural changes during the reaction cycle of cytochrome c oxidase. Therefore, the structure of the cytochrome c oxidase was determined in the completely oxidized and in the completely reduced states at a temperature of 100 K. No ligand exchanges or other major structural changes upon reduction of the cytochrome coxidase from Paracoccus denitrificans were observed. The three histidine CuB ligands are well defined in the oxidized and in the reduced states. These results are hardly compatible with the “histidine cycle” mechanisms formulated previously.
Schätzungen zufolge sind weltweit etwa 71 Millionen Menschen chronisch mit dem Hepatitis-C-Virus (HCV) infiziert. Im Jahre 2016 sind rund 400.000 Menschen an einer HCV-bedingten Lebererkrankung gestorben, insbesondere aufgrund der Entwicklung von Leberzirrhose und Lebertumoren. Trotz der großen Unterschiede in den Prävalenzschätzungen und der Qualität der epidemiologischen Daten zeigt die jüngste weltweite Bewertung, dass die virämische Ausbreitung der HCV-Infektion (Prävalenz der HCV-RNA) in den meisten Industrieländern, einschließlich der USA, weniger als 1,0% beträgt (www .cdc.gov / Hepatitis / HCV). In einigen osteuropäischen Ländern wie Lettland (2,2%) oder Russland (3,3%) und bestimmten Ländern in Afrika, Ägypten (6,3%) und Gabun (7,0%) oder im Nahen Osten Syriens (3,0%) ist die Prävalenz bemerkenswert höher. In den USA und den am weitesten entwickelten Ländern gilt die gemeinsame Nutzung von Werkzeugezur Herstellung von Arzneimitteln und zur Injektion von Medikamenten (Nadeln) als die häufigste derzeitige Übertragungsart. Die vorherrschende Übertragungsart in Ländern, in denen die Ausbreitung von HCV-Infektionen im Vergleich zu den Industrieländern höher ist, beruht jedoch auf schlechten Methoden zur Infektionskontrolle und unsicherer Handhabung von Injektionsnadeln.
Wenn die chronische Infektion unbehandelt bleibt, kann sich im fortschreitenden Verlauf eine Zirrhose oder ein hepatozelluläres Karzinom bilden (Alter H. J. und Seef L. B. 2000). Die Doppeltherapie, bei der es sich um eine Kombination aus pegyliertem Interferon-α (PEG IFNα) und Ribavirin (riba) handelt, war in einigen Ländern der Dritten Welt bis vor kurzem der goldene Standard für die Behandlung von Patienten mit chronischer Hepatitis C und hat eine anhaltende virologische Reaktion erzielt. Mit nur 50% der mit HCV-Genotyp 1 infizierten Patienten (der häufigere) im Vergleich zu 80% mit Genotyp 2 oder 3, obwohl sie kostspielig und langwierig sind (z. B. 24-48 Wochen) und zahlreiche harte Nebenwirkungen aufweisen, die schwer zu bekämpfen sind tolerieren (Erklärung der National Institutes of Health Consensus Development Conference: Management von Hepatitis C: 2002 - 10.-12. Juni 2002 2002). Die Identifizierung des JFH1 (japanische fulminante Hepatitis Typ 1) -Isolats wurde in einigen in vitro-Studien zu HCV als wichtiger Durchbruch bei der HCV-Behandlung angesehen. Die Verwendung dieses Isolats führte nachfolgend zu einem besseren Verständnis des HCV-Lebenszyklus und der 3D-Strukturen der viralen Proteine. Basierend auf dieser Erkenntnis konnten die ersten direkt wirkenden antiviralen Mittel (DAAs) entwickelt werden, die spezifisch virale Proteine beeinflussen. Die beiden Proteasehemmer (PI) Telaprevir und Boceprevir hemmen die virale NS3-4A-Protease und wurden 2011 als Kombinationstherapie mit PEG IFNα und Ribavirin zugelassen, was die anhaltende virologische Reaktion auf 67-75% erhöhte (Pawlotsky et al. 2015).
Die Optimierung der gegenwärtigen Arzneimittelregime, die Einschränkung des Problems der Mutationsresistenz, die Gestaltung einer individualisierten Therapie, der Zugang zu diesen therapeutischen antiviralen Arzneimitteln und ihr hoher Preis bleiben weiterhin eine Herausforderung (Pawlotsky 2016; Pawlotsky et al. 2015; Sarrazin 2016). Die Entwicklung eines Impfstoffs wird jedoch als größte Herausforderung für die weltweite Kontrolle von HCV angesehen (Bukh 2016). Aus diesem Grund ist es wichtig, weiterhin mehr über den HCV-Lebenszyklus und die Faktoren zu erfahren, die sich auf die Replikation und den gesamten Lebenszyklus auswirken können, um effiziente, qualitativ hochwertige und vor allem leicht zugängliche Behandlungen für alle Menschen weltweit zu entwickeln.
Der Lipidstoffwechsel und insbesondere das Cholesteringleichgewicht werden durch die HCV-Infektion beeinflusst. Die Korrelation zwischen Lipidstoffwechsel und HCV wurde klinisch seit langem beobachtet. In den Leberbiopsien von mit HCV infizierten Patienten wurde ein Anstieg der in den Lipidtröpfchen im Cytosol akkumulierten neutralen Lipide festgestellt (Dienes et al. 1982). Das Hepatitis-C-Virus wurde auch von Hypobetalipoproteinämie, Hypocholesterinämie und Lebersteatose begleitet (Schaefer und Chung 2013). Die Leber ist der primäre Ort für die Synthese, Speicherung und Oxidation von Lipiden und anderen Makromolekülen. Daher ist der Fettstoffwechsel in der Leber für die Aufrechterhaltung der systemischen Nährstoffhomöostase von wesentlicher Bedeutung. Eine Dysregulation des Leberlipidstoffwechsels ist ein Kennzeichen mehrerer Krankheiten wie Diabetes, alkoholische und nichtalkoholische Fettlebererkrankungen sowie parasitäre und virale Infektionen, einschließlich einer HCV-Infektion. (Erklärung der National Institutes of Health Consensus Development Conference: Management von Hepatitis C: 2002 - 10.-12. Juni 2002 2002; Fon Tacer und Rozman 2011; Chen et al. 2013; Reddy und Rao 2006; Visser et al. 2013; Wu und Parhofer 2014)
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Riboswitches are gene regulatory elements located in untranslated mRNA regions. They bind inducer molecules with high affinity and specificity. Cyclic-di-nucleotide-sensing riboswitches are major regulators of genes for the environment, membranes and motility (GEMM) of bacteria. Up to now, structural probing assays or crystal structures have provided insight into the interaction between cyclic-di-nucleotides and their corresponding riboswitches. ITC analysis, NMR analysis and computational modeling allowed us to gain a detailed understanding of the gene regulation mechanisms for the Cd1 (Clostridium difficile) and for the pilM (Geobacter metallireducens) riboswitches and their respective di-nucleotides c-di-GMP and c-GAMP. Binding capability showed a 25 nucleotide (nt) long window for pilM and a 61 nt window for Cd1. Within this window, binding affinities ranged from 35 μM to 0.25 μM spanning two orders of magnitude for Cd1 and pilM showing a strong dependence on competing riboswitch folds. Experimental results were incorporated into a Markov simulation to further our understanding of the transcriptional folding pathways of riboswitches. Our model showed the ability to predict riboswitch gene regulation and its dependence on transcription speed, pausing and ligand concentration.
Recently, we reported that in crude enzyme preparations, a monocyte-derived soluble protein (M-DSP) renders 5-lipoxygenase (5-LO) activity Ca2+-dependent. Here we provide evidence that this M-DSP is glutathione peroxidase (GPx)-1. Thus, the inhibitory effect of the M-DSP on 5-LO could be overcome by the GPx-1 inhibitor mercaptosuccinate and by the broad spectrum GPx inhibitor iodoacetate, as well as by addition of 13(S)-hydroperoxy-9Z,11E-octadecadienoic acid (13(S)-HPODE). Also, the chromatographic characteristics and the estimated molecular mass (80-100 kDa) of the M-DSP fit to GPx-1 (87 kDa), and GPx-1, isolated from bovine erythrocytes, mimicked the effects of the M-DSP. Intriguingly, only a trace amount of thiol (10 micro M GSH) was required for reduction of 5-LO activity by GPx-1 or the M-DSP. Moreover, the requirement of Ca2+ allowing 5-LO product synthesis in various leukocytes correlated with the respective GPx-1 activities. Mutation of the Ca2+ binding sites within the C2-like domain of 5-LO resulted in strong reduction of 5-LO activity by M-DSP and GPx-1, also in the presence of Ca2+. In summary, our data suggest that interaction of Ca2+ at the C2-like domain of 5-LO protects the enzyme against the effect of GPx-1. Apparently, in the presence of Ca2+, a low lipid hydroperoxide level is sufficient for 5-LO activation.
The purification and functional reconstitution of a five-component oligopeptide ATP-binding cassette transporter with a remarkably wide substrate specificity are described. High-affinity peptide uptake was dependent on liganded substrate-binding protein OppA, which interacts with the translocator OppBCDF with higher affinity than unliganded OppA. Transport screening with combinatorial peptide libraries revealed that (i) the Opp transporter is not selective with respect to amino acid side chains of the transported peptides; (ii) any peptide that can bind to OppA is transported via Opp, including very long peptides up to 35 residues long; and (iii) the binding specificity of OppA largely determines the overall transport selectivity.
The ABC transporter Mdl1p, a structural and functional homologue of the transporter associated with antigen processing (TAP) plays an important role in intracellular peptide transport from the mitochondrial matrix of Saccharomyces cerevisiae. To characterize the ATP hydrolysis cycle of Mdl1p, the nucleotide-binding domain (NBD) was overexpressed in Escherichia coli and purified to homogeneity. The isolated NBD was active in ATP binding and hydrolysis with a turnover of 25 ATP per minute and a Km of 0.6 mm and did not show cooperativity in ATPase activity. However, the ATPase activity was non-linearly dependent on protein concentration (Hill coefficient of 1.7), indicating that the functional state is a dimer. Dimeric catalytic transition states could be trapped either by incubation with orthovanadate or beryllium fluoride, or by mutagenesis of the NBD. The nucleotide composition of trapped intermediate states was determined using [alpha-32P]ATP and [gamma-32P]ATP. Three different dimeric intermediate states were isolated, containing either two ATPs, one ATP and one ADP, or two ADPs. Based on these experiments, it was shown that: (i) ATP binding to two NBDs induces dimerization, (ii) in all isolated dimeric states, two nucleotides are present, (iii) phosphate can dissociate from the dimer, (iv) both nucleotides are hydrolyzed, and (v) hydrolysis occurs in a sequential mode. Based on these data, we propose a processive-clamp model for the catalytic cycle in which association and dissociation of the NBDs depends on the status of bound nucleotides.
Chronic inflammation is considered to be a cause of the autoimmune diseases such as rheumatoid arthritis, Alzheimer’s disease, multiple sclerosis, etc. The search for effective compounds with anti-inflammatory properties to combat these diseases is still ongoing. Natural compound narciclasine, derived from plants of Narcissus species, demonstrated its anti-inflammatory activity in in vivo arthritis models. Further investigation of narciclasine’s anti-inflammatory activity together with its impact on the interaction between leukocytes and endothelial cells was the main focus of this PhD thesis.
Narciclasine reduced the infiltration of monocytes and neutrophils to the abdomen and the concentration of the pro-inflammatory cytokines TNF, IL-6 and IL-1β. Together with this, it reduced acute visceral pain caused by zymosan injection. Narciclasine interfered with leukocyte-endothelial cell interaction in both in vivo and in vitro models. In vivo microscopy revealed that the compound reduced rolling, adhesion and transmigration of leukocytes in the vessels of an injured murine cremaster muscle. This observation was confirmed in the in vitro models for adhesion and transmigration where narciclasine reduced the level of leukocyte’s interaction with HUVECs. Narciclasine demonstrated profound anti-inflammatory properties based on its interference with leukocyte-endothelium interaction by downregulation of endothelial cell adhesion molecules expression (ICAM-1, VCAM-1, E-selectin, CX3CL1) and shutdown of NF-κB pathway. All these effects were a result of the TNF receptor 1 protein translation blocking by narciclasine.
In this work the ability of the compound to reduce visceral pain, downregulate the expression of the endothelial cell adhesion molecules and to interfere with the interaction between leukocytes and endothelial cells was demonstrated for narciclasine for the first time. Obtained results open a promising insight into the understanding of narciclasine’s anti-inflammatory properties and justify further investigation of its potential for treatment of inflammatory diseases.