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Disturbances in lipid metabolism are responsible for many chronic disorders, such as type 2 diabetes and atherosclerosis. Regulation of lipid metabolism occurs by activated transcription factors peroxisome proliferator-activated receptor δ (PPARδ) and liver X receptor α (LXRα) mediating transcription of different target genes involved in regulation of fatty acid uptake and oxidation or cellular cholesterol homeostasis. This is especially relevant for the macrophages, since pathways regulated by PPARδ and LXRα affect foam cell formation, a process driving the progression of atherosclerotic lesion. AMP-activated protein kinase (AMPK) plays a central role in energy homeostasis in every type of eukaryotic cell, but its role in human macrophages, particularly with regard to lipid metabolism, is not precisely defined yet. Thus, I investigated the impact of AMPK activity on PPARδ and LXRα and the expression of their target genes involved in fatty acid oxidation (FAO) and cholesterol metabolism.
As PPARδ has been described as a potential target for prevention and treatment of several disorders and AMPK as interesting drug target for diabetes and metabolic syndrome, the aim of the first part of my studies was to investigate their interaction in primary human macrophages. Completing the first challenge successfully, I was able to establish a lentiviral transduction system for constitutively active AMPK (consisting of a truncated catalytic AMPKα1 subunit bearing an activating T198D mutation) in primary human macrophages.
Using genome-wide microarray analysis of gene expression, I demonstrate FAO as the strongest affected pathway during combined AMPKα1 overexpression and PPARδ activation.
The most influenced genes were validated by quantitative PCR as well as by Western analysis. I found that AMPK increases the expression of FAO-associated genes targeted by PPARδ. Corroborating the results obtained using AMPKα1 overexpression, PPARδ target gene expression was increased not only by PPARδ agonist GW501516, but also by pharmacological allosteric AMPK activator A-769662. Additional enhancement of target gene mRNA expression was achieved upon co-activation of PPARδ and AMPK. Silencing PPARδ expression increased basal expression of target genes, confirming the repressive nature of ligand-free PPARδ, abolishing the increased target gene expression upon AMPK or PPARδ activation. Measurements of triglyceride contents of human macrophages incubated with VLDL following PPARδ activation demonstrated a reduction of intracellular triglyceride accumulation in cells, which may reflect the enhancement of fat catabolism.
In the second part of my studies, I concentrated on the regulation of cholesterol transporter ATP-binding cassette transporter A1 (ABCA1) expression by AMPK. ABCA1 facilitates
cholesterol efflux from macrophages thus, preventing atherosclerosis progression. For the first time, AMPK implication in the regulation of the ABCA1 pathway could be presented. Both AMPK overexpression and activation lead to significantly increased ABCA1 expression, whereas AMPKα1 knock-down strongly reduced this effect. Besides, I was able to prove an enhanced activity of ABCA1 during AMPK activation in human THP-1 macrophages by measuring cholesterol efflux into apolipoprotein AI-containing medium.
Previous findings showed regulation of ABCA1 by LXRα. I confirmed these results by silencing experiments indicating an essential role of LXRα in ABCA1 regulation pathway.
Here, ABCA1 mRNA as well as protein expression were positively mediated by LXRα. LXRα activation elevated ABCA1 levels, whereas its silencing down-regulated this effect.
Interestingly, ABCA1 was found to be regulated only by LXRα and not through LXRα. At the same time, knock-down of PPARδ, -γ or -δ, which may be also involved in the regulation of LXR/ABCA1 axis, did not influence the activation of ABCA1 expression by an AMPK activator. To confirm that LXRE on Abca1 promoter is essential for ABCA1 regulation, I performed luciferase reporter assay using constructs based on Abca1 promoter with or without LXRE mutation. Mutation of LXRE abolished reporter activity, whereas AMPK activation increased luciferase activity of wild-type LXRE construct. Furthermore, I demonstrate AMPK-dependent LXRα binding to the LXRE site of Abca1 promoter using the method of chromatin immunoprecipitation. AMPK activation significantly increased, whereas silencing of AMPK significantly attenuated LXRα binding, indicating AMPK as one of the most important regulators of ABCA1 expression.
In summary, I provided an evidence for AMPK involvement into lipid and cholesterol metabolism in human macrophages showing the regulation of PPARδ and LXRα target genes. The understanding of AMPK and PPARδ interaction allows the development of new approaches for treatment of metabolic syndrome and related diseases. Increased FAO during the activation of both proteins may exhibit better therapeutic benefit. On the other hand, I have shown the impact of AMPK activation on ABCA1 via LXRα up-regulation leading to increased cholesterol efflux in human macrophages for the first time. These findings thus may impact future improving of anti-atherosclerosis therapies.
Life-saving pig-to-human xenotransplantation is a promising technology with the potential to balance the shortage of human organs in allotransplantation. Before this approach is applied on solid vascularized organs, several barriers must be overcome. Patient safety is menaced by infectious porcine endogenous retroviruses (PERV) which are able to infect human cell lines in vitro. Successful infection with PERV is associated with diverse life-threatening consequences including gene disruption, tumorigenicity, immune suppression as well as PERV proliferation throughout the whole human body. This could cause a catastrophic xenozonoosis leading to the emergence of new forms of pathogens and pandemic diseases similar to AIDS. However, in vivo, there is hitherto no incidence of any infection with PERV in preclinical xenotransplantations performed in the past.
PERV infection of human peripheral blood mononuclear cells (huPBMC) is a critical issue discussed controversially in several studies. It is essential to address the sensitivity of huPBMC to infection by PERV since it is generally one of the first retroviral targets upon viral invasion and infection of the human body. To assess definitely if huPBMC are infected productively by PERV, target cells were challenged with the highest infectious PERV class, recombinant PERV-A/C, in different assays. Modern and standard methods to detect PERV at different stages of viral cycles were used to monitor PERV development upon contact with host cells. Indeed, PERV-A/C in supernatants of producer cell lines failed to infect mitogen-activated huPBMC. Neither retroviral reverse transcriptase (RT) nor viral RNA packaged in virus particles were observed in supernatants of cells exposed to viral supernatants. In addition, provirus was not detected in huPBMC until 56 days p. i. with PERV-A/C. Independently of the virus load applied, culture conditions of huPBMC or administration of polybrene as enhancer, PERV was unable to infect huPBMC. Results suggest that PERV in supernatants lack sufficient infectious potential to be productively generated in huPBMC.
In order to approximate xenotransplantation scenarios, different PERV producing cells including PHA-activated porcine PBMC (poPBMC) were adopted as virus source in co-cultivation studies with huPBMC. In this case, expression of viral RNA was successfully measured. However, RT activity did not increase until 28 days p. e. with PERV producer cells which indicates that viral particles devoid of infectious capacity were released from non-productively infected cells.
On the other hand, co-cultivation of both virus producer and virus recipients increases the contact pressure between PERV and target cells. Consequently, PERV was able to be detected at least as provirus in huPBMC. Although virions produced were not functional, presence of provirus in infected cells will sooner or later provoke expression of provirus. This could lead to chromosomal rearrangements as well as virus reinfection and insertional mutagenesis.
Ecotropic PERV-C displays a restricted host range to porcine cells. Given its ability to serve as template to form recombinant xenotropic PERV-A/C, PERV-C represents a potent hazard in the course of xenotransplantation. Thus, isolation and functional characterization of PERV-C in the genome of pigs in use and intended for xenotransplantation is necessary to analyze the genetics of these virions as well as to select animals lacking proviral PERV-C or to generate transgenic PERV-C negative donors.
PERV-C was isolated from the genome of a female SLAd/d haplotype pig via screening of a bacteriophage library which was constructed from the genomic DNA of poPBMC extracted from this PERV non-transmitting sow. Upon genetic complementation of provirus using a PCR fragment infectious ability of full-length PERV-C clones was investigated in cell culture. PERV-C clones were successfully reproduced in susceptible porcine cells as RT activity as well as viral RNA were detected in supernatants of infected cells 56 days p. i. Furthermore, presence of proviruses in challenged cells was confirmed by nested PCR.
PERV-C clones were also isolated from a bacteriophage library generated on genomic DNA of an Auckland island pig of the DPF colony, whose individuals display a PERV-null phenotype and are already in use for xenotransplantation, and of a Göttingen minipig, whose relatives serve as animal models to study human diseases. In contrast to PERV clones isolated from the female SLAd/d haplotype sow PERV-C clones of the Auckland island pig as well as of the Göttingen minipig were not functional and therefore unable to infect target cells. This confirms the PERV-null phenotype which renders these animals putative candidates as donors in xenotransplantation. On the other hand, presence of functional PERV-C in SLAd/d haplotype pigs exerts a negative impact on patient safety in xenotransplantation. The suitability of these animals as potent organ donors should be intensively investigated.
In conclusion, PERV of all classes pose a virological risk in xenotransplantation which should not be ignored. Since exclusion of all PERV from donor herds is impossible, generation of transgenic humanized animals lacking genomic infectious PERV represents the best strategy to guarantee patient safety in future life-saving pig-to-human xenotransplantation.
Rotary adenosine triphosphate (ATP)ases are ubiquitous, membrane-bound enzyme complexes involved in biological energy conversion. The first subtype, the so-called F1Fo ATP synthase, predominantly functions as an ATP synthesizing machinery in most bacteria, mitochondria and chloroplasts. The vacuolar subtype of enzyme, the V1Vo ATPase, operates as an ATP driven ion pump in eukaryotic membranes. The subtype found in archaea and some bacteria is called A1Ao ATP (synth)ase and is capable of working in both directions either to synthesize ATP or to generate an ion motive force by consuming the same.
All the three above-mentioned subtypes of rotary ATPases work as nanomolecular machines sharing a conserved mechanism to perform the energy conservation process. The simplest form of these enzymes is the bacterial F1Fo ATP synthase. Here, ions are channelled via the membrane stator subunit a to the rotor ring of the enzyme. After almost a complete rotation of the ring the ions are released again on the other side of the membrane. This rotation is further transmitted via the central stalk to the soluble part of the enzyme, the F1-complex, where conformational changes within the nucleotide binding sites result in the synthesis of ATP from ADP and Pi.
The rotor or c-ring of the enzyme is the key protein complex in mediating transmembrane ion translocation. Several structural and biochemical methods have been applied in the past years to study the rotor rings from many different organisms. The results revealed that the stoichiometry of a c-ring of a given species is constant while it can vary between different species within a range of 8 to 15 c subunits. The c-ring stoichiometry determines directly the number of ions transported through Fo per rotation whereby three molecules of ATP are concurrently synthesized in the water-soluble F1 headgroup. Hence the number of c subunits has an important influence on the bioenergetics of the corresponding enzyme and thus the entire organism.
The c-ring of a rotary ATPase is able to specifically bind either protons (H+) or sodium ions (Na+) as the coupling ion for the enzyme. Several structures are already available revealing the coordination network of both types of rotor rings. In each case ion binding includes a highly-conserved carboxylic acid residue (glutamate or aspartate), in addition to a more varying combination of amino acid residues, whereby Na+ coordination is structurally more demanding than H+ binding.
In the first part of my PhD thesis, I aimed to characterize the F1Fo ATP synthase rotor ring of the opportunistic pathogenic bacterium Fusobacterium nucleatum on a functional and structural level. F. nucleatum is an anaerobic bacterium which uses peptides and amino acids as a primary energy source. It is one of the most frequently occuring bacteria in human body infections and involved in human periodontal diseases.
The protein complex was heterologously expressed within a hybrid ATP synthase in Escherichia coli and purified without an affinity tag for further analysis. Two high resolution X-ray structures of the c-ring were solved at low (5.3) and high (8.7) pH to 2.2 and 2.64 Å, respectively. In both structures, the conserved glutamate is in an ion-locked conformation, revealing that the conformational state of the ion binding carboxylate is not depending on the pH of the crystallization condition, which is in good agreement with previous structural and biochemical studies of other c-rings.
A Na+ ion is present within the c-ring binding site and directly coordinated by four amino acid residues and a structural water molecule. Remarkably, the Na+ is bound by two glutamate residues instead of one as is the case in the I. tartaricus Na+ binding c-ring, of which the first high resolution X-ray structure of a c-ring has been solved in 2005. Thus, a new type of Na+ coordination in an ATP synthase rotor ring with a two-carboxylate ion binding motif is described here, which also occurs in other bacteria, including several pathogens. Na+ specificity of the investigated c-ring was further confirmed by a competitive biochemical labeling reaction performed with a fluorescent ATP synthase inhibitor molecule (N-cyclohexyl-N`-[4(dimethylamino)-α-naphtyl] carbodiimide, NCD-4).
We furthermore complemented our functional and structural data of the F. nucleatum c-ring by computational studies to explore the ion translocation mechanism of this enzyme in more details. We therefore analyzed the protonation state of the second, additional glutamate in the ion binding site. Molecular dynamics (MD) simulations and free-energy calculations indicated that this glutamate is constitutively protonated, in the ion-locked as well as in a simulated, more hydrated open-conformation of the ion binding glutamate as when it is travelling through the a/c-ring interface upon c-ring rotation.
Starkes Übergewicht und eine damit einhergehende Hypertrophie von Geweben aber auch des Herz-Kreislauf-Systems führen zu einer Reihe von Folgeerkrankungen wie z. B. Diabetes mellitus Typ 2 oder auch Arteriosklerose. Während im Fettgewebe freie Fettsäuren, die von Makrophagen aufgenommen werden, eine entscheidende Rolle spielen, scheint in der Pathogenese von Arteriosklerose die Aufnahme von Fettsäuren aus Lipoproteinpartikeln durch Makrophagen von großer Wichtigkeit zu sein. Ein weiterer Faktor, der durch freie Fettsäuren ausgelöst wird ist ER-Stress. Makrophagen, die zu Triglycerid (TG) reichen Schaumzellen geworden sind, akkumulieren in arteriosklerotischen Läsionen. Der Lipidmetabolismus von Makrophagen wird transkriptionell u.a. durch den Transkriptionsfaktor PPARγ (Peroxisomproliferator aktivierter Rezeptor γ) reguliert. Sein Zielgen FABP4 (Fettsäuren bindendes Protein 4) beschleunigt die Entwicklung von Arteriosklerose in Mausmodellen. Da die Expression von PPARγ und FABP4 in IL 4- (Interleukin-4) polarisierten Makrophagen induziert wird, sollte die Rolle von FABP4 in humanen, mit IL 4 polarisierten Makrophagen untersucht werden. Hierfür wurden primäre humane Monozyten in Anwesenheit von LPS/IFNγ (Lipopolysaccharid/Interferon γ) bzw. IL 4 zu Makrophagen differenziert. Es zeigte sich, dass in LPS/IFNγ stimulierten Makrophagen PPARγ und dessen Zielgene nicht exprimiert wurden. Dagegen waren sie bei unstimulierten Makrophagen bei IL 4 stimulierten Makrophagen deutlich erhöht. Dies spiegelte sich auch in einer erhöhten Aufnahme von Triglyceriden aus VLDL-Partikeln (Lipoproteinpartikel sehr niedriger Dichte) wider. IL 4 induzierte also einen Fettsäuren akkumulierenden Phänotyp. Durch einen PPAR-Luciferase-Reporter-Test wurde untersucht, ob FABP4 für die Aktivierung von PPARγ nötig war. Dies konnte bestätigt werden, da PPARγ durch seinen Liganden Linolsäure nur in Anwesenheit von FABP4 aktiviert werden konnte. Diese Aktivierung konnte zusätzlich durch den FABP4-Inhibitor HTS01037 verhindert werden. Nun sollte der Einfluss von FABP4 auf die PPARγ-abhängige Genexpression untersucht werden. Hierfür wurde FABP4 während der Differenzierung mit den beiden Inhibitoren HTS01037 oder BMS309403 in IL 4 stimulierten Makrophagen inhibiert. Durch die Inhibition von FABP4 sank die Expression von FABP4 und LPL (Lipoproteinlipase), während die von PPARγ unverändert blieb. Die LPL spielt eine entscheidende Rolle in der Aufnahme von Lipiden aus VLDL-Partikeln und trägt somit zur TG-reichen Schaumzellbildung bei. Die verminderte Expression von LPL spiegelte sich in einer verminderten Lipidaufnahme aus VLDL-Partikeln wider. Gleichzeitig wurde durch die FABP4-Inhibition die Entzündungsantwort der Makrophagen auf VLDL-Partikel abgeschwächt. IL 4 induziert also LPL, indem es PPARγ aktiviert. FABP4 unterstützt hierbei die Aktivierung von PPARγ. Durch die Inhibition kann die LPL-Expression vermindert werden, was die TG-reiche Schaumzellbildung und die Entzündungsreaktion in einem VLDL-reichen Umfeld vermindert und eine neue Therapiemöglichkeit von Arteriosklerose eröffnet. Im Fettgewebe kommt bei starkem Übergewicht, bedingt durch die erhöhte Konzentration an freien Fettsäuren und Hypoxie, zu einer leichten Entzündungsreaktion. Diese Entzündungsreaktion wurde durch eine Stimulation mit Palmitat unter Hypoxie (1 % O2) nachgebildet. Überstände von Makrophagen nach dieser Stimulation (MCM) wurden auf primäre humane Adipozyten übertragen. Diese Überstände konnten zwar keine Insulinresistenz in Adipozyten auslösen, induzierten jedoch eine Entzündungsreaktion. Diese zeigte sich in einer erhöhten Expression der proentzündlichen Zytokine CCL2 (CC-Chemokin-Ligand-2) und IL 6. Gleichzeitig wurde die Expression des antientzündlichen Zytokins Adiponectin vermindert. Der Transfer von MCM ist also ein Modell für die Entstehung der Insulinresistenz in einem frühen Stadium. Beim Versuch, die entzündungsfördernde Fähigkeit des MCMs zu verhindern, wurde AMPK mit verschiedenen Aktivatoren stimuliert. Es zeigte sich, dass der AMPK-Aktivator AICAR (5-Aminoimidazol-4-carboxamidribonukleotid) die Entzündungsantwort und den ER-Stress von mit Hypoxie und Palmitat stimulierten Makrophagen deutlich reduzierte. Der starke Effekt auf den ER-Stress konnte auch mit anderen ER-Stress-Auslösern wie Thapsigargin oder Tunicamycin nachvollzogen werden. Da AICAR ein AMPK-Aktivator ist, wurden typische Effekte der AMPK-Aktvierung wie reduzierte Proteinexpression, verstärkte Sirtuin-1-Aktivierung und Steigerung der Fettsäurenoxidation mittels Inhibitoren verhindert. Dies hatte keinen Einfluss auf die Wirkung von AICAR. Ebenso wurde untersucht, ob AICAR in die Zelle aufgenommen werden musste und ob es zu seiner phosphorylierten Form ZMP umgewandelt werden musste. Durch den Inhibitor ABT 702 kann die Adenosinkinase inhibiert werden, welche die Phosphorylierung katalysiert. Es zeigte sich, dass die Phosphorylierung von AICAR zu ZMP nicht erforderlich war, damit AICAR die ER-Stress-Antwort hemmen konnte. AICAR und nicht ZMP wirkte gegen den ER-Stress. Da durch das fehlende ZMP die AMPK nicht aktiviert wurde, war das ein weiteres Zeichen, dass AICAR AMPK-unabhängig wirkte. Dies konnte durch einen AMPK-Knockdown bestätigt werden. Durch einen Knockdown verschiedener Adenosintransporter konnte gezeigt werden, dass SLC28A3 (Soluttransporterfamlie 28 Typ A3) verantwortlich für die Aufnahme von AICAR in primäre humane Makrophagen war. Es konnte demnach gezeigt werden, dass AICAR den ER-Stress in primären humanen Makrophagen in einem von AMPK unabhängigen Mechanismus vermindert. Dafür wird es mittels SLC28A3 in die Zelle aufgenommen und wirkt als AICAR und nicht als ZMP. Diese Erkenntnisse stellen eine interessante, neue therapeutische Möglichkeit im Feld von Arteriosklerose und Diabetes dar.