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Die mitochondriale Innenmembran (IM) besteht aus zwei Subkompartimenten. Der
Cristae Membran (CM) und der inneren Grenzmembran (IBM), welche durch die runden und
schlitzartige Strukturen der Christa Junctions (CJs) verbunden werden Der MICOS-Komplex
ist an den CJs lokalisiert und besteht aus mindestens 6 Komponenten, Mic60, Mic27, Mic26,
Mic19, Mic12 und Mic10. Es ist bekannt, dass der MICOS-Komplex essentiell für die Stabilität der CJs ist. Die in dieser Arbeit gezeigten Ergebnisse, geben Aufschluss darüber, wie sich
einzelne MICOS-Komponenten auf die Stabilität von Cristae und CJs im Modellsystem Hefe (S
cerevisiae) auswirken. Zu Beginn dieser Arbeit war zum einen bekannt, dass die MICOSKomponente
Mic60 essentiell für die Bildung von CJs ist. Zum Anderen wurden im Vorfeld
dieser Arbeit Interaktionen von Mic60 mit Proteinen in der mitochondrialen Außenmembran,
vor allem Proteinkomplexe mit ȕ-barrel-Proteinen identifiziert. Diese Interaktionen werden
über den evolutionär, konservierten C-Terminus von Mic60 vermittelt.
ȕ-barrel Proteine besitzen eine charakteristische Peptidsequenz, die ȕ-Sequenz. Diese
dient nach dem Import der ȕ-barrel Proteine in die Mitochondrien als Signalpeptid für den
SAM-/TOB-Komplex, welcher daraufhin die Proteine in die Außenmembran insertiert. In
dieser Arbeit wurde ebenfalls eine ȕ-Sequenz im C-Terminus von Mic60 identifiziert, diese
zeigte einen Einfluss auf die Cristae-Stabilität. Zellen die eine Mic60-Variante mit einer
Deletion oder Punktmutation der ȕ- Domäne exprimieren, zeigten eine reduzierte Anzahl an
CJs. Auch das Verkürzen des C-Terminus von Mic60 hatte diesen Effekt auf die mitochondriale
Ultrastruktur. So konnte gezeigt werden, dass die ȕ-Domäne und die Integrität des C-Terminus
essentiell für die Stabilität von CJs sind.
Der Fokus dieser Arbeit lag in der Charakterisierung der MICOS-Komponenten Mic26
und Mic27. Es konnte bewiesen werden, dass beide Proteine genetisch mit der MICOSKernkomponente
Mic60 interagieren. Die Untersuchung der mitochondrialen Ultrastruktur von
Δmicβ6- und Δmicβ7-Zellen zeigte, dass eine Deletion vom Mic26 keinen Einfluss auf die
Organisation der mitochondrialen Innenmembran hat. Im Gegensatz dazu, ist im Vergleich zum
Wildtyp die Anzahl an CJs in Δmicβ7-Zellen um zwei Drittel reduziert. Auch die
Innenmembranoberfläche ist in diesen Zellen stark vergrößert. Die Untersuchung der
Morphologie der mitochondrialen Innenmembran in Zellen ohne Mic27 durch KryoElektronentomographie
isolierter Mitochondrien, veranschaulichte die Struktur der CJs in
diesen Zellen genauer. Es zeigten sich hier breitere CJs, und der Übergang von der
Cristaemembran in den Bereich der inneren Grenzmembran ist sehr flach und undefiniert. In
Wildtyp-Mitochondrien waren die CJs schmal und schlitzartig und haben einen scharfkantigen
Übergang von der Cristaemembran zur inneren Grenzmembran. Des Weiteren wies die
Cristaemembran in Δmicβ7-Zellen unregelmäßige zackige Strukturelemente auf, was auf eine
Anhäufung an Dimeren der F1FO-ATP Synthase hinweist.
Diese Beobachtungen in den Kryo-Tomogrammen, wurde durch Analysen des sich deutlich weniger höhere Oligomere und vermehrt Dimere. So kann aus diesen Befunden
geschlossen werden, dass Mic27 die Oligomere der F1FO-ATP Synthase stabilisiert.
Um zu untersuchen, wie der MICOS-Komplex mit der F1FO-ATP Synthase in
Verbindung steht, wurde mittels 2D-BNE-Analysen und einem Complexome Profiling die
Komplexierung der nativen Komplexe in Wildtyp- und Δmicβ7-Mitochondrien analysiert. Zum
einen konnte durch diese Untersuchungen gezeigt werden, dass Mic27 neben der F1FO-ATP
Synthase auch stabilisierend auf den MICOS-Komplex wirkt. Die Komplexe im
hochmolekularen Bereich der MICOS-Komponenten zerfielen in Δmicβ7-Zellen, was darauf
hinweist, dass die anderen MICOS-Komponenten hier nicht mehr assemblieren können. Mic10
war die einzige MICOS-Komponente die in Δmicβ7-Zellen noch stabile Komplexe im hohen
Massenbereich ausbildete. Mic10 findet sich zudem nicht nur in Klustern mit anderen MICOSKomponenten
sondern auch mit der F1FO-ATP Synthase.
Die Interaktion von Mic10 und der F1FO-ATP Synthase wurde auch biochemisch,
mittels chemischer Quervernetzern und Ko-Immunpräzipitationsexperimenten bestätigt. Dies
legt nahe, dass Mic10 die CJs mit hoher Wahrscheinlichkeit, durch die Verbindung mit der
F1FO-ATP Synthase, mit der Cristaemembran verbindet und so stabilisiert.
Aufgrund der Erkenntnisse dieser Arbeit konnte ein neuartiges Modell postuliert
werden. Die MICOS-Komponente Mic60 stabilisiert die CJs durch eine Interaktion seines CTerminus
mit Proteinen in der Außenmembran. Mic27 vermittelt über Mic10 die Interaktion
zur F1FO-ATP Synthase. Somit ist diese neu identifizierte Interaktion des MICOS-Komplex zur
F1FO-ATP Synthase essentiell für die Stabilität von CJs ist, indem es den MICOS-Komplex mit
den Oligomeren der F1FO-ATP Synthase verbindet.
Oligomerisierungszustands der F1FO-ATP Synthase in Δmicβ7-Zellen, bestätigt. Hier fanden
sich deutlich weniger höhere Oligomere und vermehrt Dimere. So kann aus diesen Befunden
geschlossen werden, dass Mic27 die Oligomere der F1FO-ATP Synthase stabilisiert.
Um zu untersuchen, wie der MICOS-Komplex mit der F1FO-ATP Synthase in
Verbindung steht, wurde mittels 2D-BNE-Analysen und einem Complexome Profiling die
Komplexierung der nativen Komplexe in Wildtyp- und Δmicβ7-Mitochondrien analysiert. Zum
einen konnte durch diese Untersuchungen gezeigt werden, dass Mic27 neben der F1FO-ATP
Synthase auch stabilisierend auf den MICOS-Komplex wirkt. Die Komplexe im
hochmolekularen Bereich der MICOS-Komponenten zerfielen in Δmicβ7-Zellen, was darauf
hinweist, dass die anderen MICOS-Komponenten hier nicht mehr assemblieren können. Mic10
war die einzige MICOS-Komponente die in Δmicβ7-Zellen noch stabile Komplexe im hohen
Massenbereich ausbildete. Mic10 findet sich zudem nicht nur in Klustern mit anderen MICOSKomponenten
sondern auch mit der F1FO-ATP Synthase.
Die Interaktion von Mic10 und der F1FO-ATP Synthase wurde auch biochemisch,
mittels chemischer Quervernetzern und Ko-Immunpräzipitationsexperimenten bestätigt. Dies
legt nahe, dass Mic10 die CJs mit hoher Wahrscheinlichkeit, durch die Verbindung mit der
F1FO-ATP Synthase, mit der Cristaemembran verbindet und so stabilisiert.
Aufgrund der Erkenntnisse dieser Arbeit konnte ein neuartiges Modell postuliert
werden. Die MICOS-Komponente Mic60 stabilisiert die CJs durch eine Interaktion seines CTerminus
mit Proteinen in der Außenmembran. Mic27 vermittelt über Mic10 die Interaktion
zur F1FO-ATP Synthase. Somit ist diese neu identifizierte Interaktion des MICOS-Komplex zur
F1FO-ATP Synthase essentiell für die Stabilität von CJs ist, indem es den MICOS-Komplex mit
den Oligomeren der F1FO-ATP Synthase verbindet.
Die mitochondriale Innenmembran (IM) besteht aus zwei Subkompartimenten. Der Cristae Membran (CM) und der inneren Grenzmembran (IBM), welche durch die runden und schlitzartige Strukturen der Christa Junctions (CJs) verbunden werden Der MICOS-Komplex ist an den CJs lokalisiert und besteht aus mindestens 6 Komponenten, Mic60, Mic27, Mic26, Mic19, Mic12 und Mic10. Es ist bekannt, dass der MICOS-Komplex essentiell für die Stabilität der CJs ist. Die in dieser Arbeit gezeigten Ergebnisse, geben Aufschluss darüber, wie sich einzelne MICOS-Komponenten auf die Stabilität von Cristae und CJs im Modellsystem Hefe (S cerevisiae) auswirken. Zu Beginn dieser Arbeit war zum einen bekannt, dass die MICOS-Komponente Mic60 essentiell für die Bildung von CJs ist. Zum Anderen wurden im Vorfeld dieser Arbeit Interaktionen von Mic60 mit Proteinen in der mitochondrialen Außenmembran, vor allem Proteinkomplexe mit β-barrel-Proteinen identifiziert. Diese Interaktionen werden über den evolutionär, konservierten C-Terminus von Mic60 vermittelt.
β-barrel Proteine besitzen eine charakteristische Peptidsequenz, die β-Sequenz. Diese dient nach dem Import der β-barrel Proteine in die Mitochondrien als Signalpeptid für den SAM-/TOB-Komplex, welcher daraufhin die Proteine in die Außenmembran insertiert. In dieser Arbeit wurde ebenfalls eine β-Sequenz im C-Terminus von Mic60 identifiziert, diese zeigte einen Einfluss auf die Cristae-Stabilität. Zellen die eine Mic60-Variante mit einer Deletion oder Punktmutation der β- Domäne exprimieren, zeigten eine reduzierte Anzahl an CJs. Auch das Verkürzen des C-Terminus von Mic60 hatte diesen Effekt auf die mitochondriale Ultrastruktur. So konnte gezeigt werden, dass die β-Domäne und die Integrität des C-Terminus essentiell für die Stabilität von CJs sind.
Der Fokus dieser Arbeit lag in der Charakterisierung der MICOS-Komponenten Mic26 und Mic27. Es konnte bewiesen werden, dass beide Proteine genetisch mit der MICOS-Kernkomponente Mic60 interagieren. Die Untersuchung der mitochondrialen Ultrastruktur von Δmic26- und Δmic27-Zellen zeigte, dass eine Deletion vom Mic26 keinen Einfluss auf die Organisation der mitochondrialen Innenmembran hat. Im Gegensatz dazu, ist im Vergleich zum Wildtyp die Anzahl an CJs in Δmic27-Zellen um zwei Drittel reduziert. Auch die Innenmembranoberfläche ist in diesen Zellen stark vergrößert. Die Untersuchung der Morphologie der mitochondrialen Innenmembran in Zellen ohne Mic27 durch Kryo-Elektronentomographie isolierter Mitochondrien, veranschaulichte die Struktur der CJs in diesen Zellen genauer. Es zeigten sich hier breitere CJs, und der Übergang von der Cristaemembran in den Bereich der inneren Grenzmembran ist sehr flach und undefiniert. In Wildtyp-Mitochondrien waren die CJs schmal und schlitzartig und haben einen scharfkantigen Übergang von der Cristaemembran zur inneren Grenzmembran. Des Weiteren wies die Cristaemembran in Δmic27-Zellen unregelmäßige zackige Strukturelemente auf, was auf eine Anhäufung an Dimeren der F1FO-ATP Synthase hinweist.
Diese Beobachtungen in den Kryo-Tomogrammen, wurde durch Analysen des Oligomerisierungszustands der F1FO-ATP Synthase in Δmic27-Zellen, bestätigt. Hier fanden sich deutlich weniger höhere Oligomere und vermehrt Dimere. So kann aus diesen Befunden geschlossen werden, dass Mic27 die Oligomere der F1FO-ATP Synthase stabilisiert.
Um zu untersuchen, wie der MICOS-Komplex mit der F1FO-ATP Synthase in Verbindung steht, wurde mittels 2D-BNE-Analysen und einem Complexome Profiling die Komplexierung der nativen Komplexe in Wildtyp- und Δmic27-Mitochondrien analysiert. Zum einen konnte durch diese Untersuchungen gezeigt werden, dass Mic27 neben der F1FO-ATP Synthase auch stabilisierend auf den MICOS-Komplex wirkt. Die Komplexe im hochmolekularen Bereich der MICOS-Komponenten zerfielen in Δmic27-Zellen, was darauf hinweist, dass die anderen MICOS-Komponenten hier nicht mehr assemblieren können. Mic10 war die einzige MICOS-Komponente die in Δmic27-Zellen noch stabile Komplexe im hohen Massenbereich ausbildete. Mic10 findet sich zudem nicht nur in Klustern mit anderen MICOS-Komponenten sondern auch mit der F1FO-ATP Synthase.
Die Interaktion von Mic10 und der F1FO-ATP Synthase wurde auch biochemisch, mittels chemischer Quervernetzern und Ko-Immunpräzipitationsexperimenten bestätigt. Dies legt nahe, dass Mic10 die CJs mit hoher Wahrscheinlichkeit, durch die Verbindung mit der F1FO-ATP Synthase, mit der Cristaemembran verbindet und so stabilisiert.
Aufgrund der Erkenntnisse dieser Arbeit konnte ein neuartiges Modell postuliert werden. Die MICOS-Komponente Mic60 stabilisiert die CJs durch eine Interaktion seines C-Terminus mit Proteinen in der Außenmembran. Mic27 vermittelt über Mic10 die Interaktion zur F1FO-ATP Synthase. Somit ist diese neu identifizierte Interaktion des MICOS-Komplex zur F1FO-ATP Synthase essentiell für die Stabilität von CJs ist, indem es den MICOS-Komplex mit den Oligomeren der F1FO-ATP Synthase verbindet.
Plastids are complex organelles that fulfil numerous essential cellular functions, such as
photosynthesis, amino acid and fatty acid synthesis. he majority of proteins required for
these functions are encoded in the nuclear genome and synthesised on cytosolic ribosomes as
precursors, which are posttranslationally transported to and imported into the organelle by
concerted actions of translocons in the outer and inner chloroplast membrane. For most
preproteins, targeting to the organelle is ensured by a specific import signal, a so called
transit peptide, which is specifically recognised by receptors at the chloroplastês surface. A transit peptide is generally defined as essential and sufficient for precursor targeting to and
translocation into chloroplasts, (however, an analysis of the ability of transit peptides to drive translocation of tightly folded passenger domain revealed that the transit peptide is not
always sufficient for the translocation event. A critical signal length requirement of amino
acids has been determined in vivo and in vitro. In the case of shorter transit peptide, the
succeeding portion of the mature domain provides an extension of an unfolded polypeptide
stretch required for successful translocation. The analysis of the unfolding mode of a folded
model passenger during translocation links the observed transit peptide length requirement
to the action of an energising unit present in the intermembrane space of chloroplasts.
The likely candidate for this energising unit space is putative imsHsp70, previously hypothesised to function in translocation of precursor proteins across the outer membrane. However, as the identity of this protein has up to now remained unknown, its existence has
been a matter of debate. The present study focuses on the isolation and characterisation of
imsHsp70 at the molecular level. Mass spectrometry analyses and in vivo localisation studies
demonstrate that while no specific imsHsp70 exists, multiple cytosolic Hsp70 isoforms are
targeted to the intermembrane space, but not to the stroma of chloroplasts. Thus, a so far unrecognised mode of dual targeting to chloroplasts and cytosol is most likely to ensure the
allocation of (sp s into the intermembrane space.
The production of ribosomes is a complicated multistep, that is susceptible to changes occurring within the cell and its environment. The process itself requires many proteins, known as ribosome biogenesis factors (RBFs) and many non-coding RNAs like the small nucleolar RNAs (snoRNAs). While RBFs are required for the accurate processing of the pre-rRNA into mature rRNAs, the snoRNAs act to coordinate and guide enzymes for post-transcriptional modifications, chiefly 2´-O-ribose methylation and pseudouridylation. While ribosome biogenesis is mostly described in human and yeast model eucaryotes, similar detailed studies in the model plant Arabidopsis thaliana are far less explored and understood. Furthermore, for many experimentally confirmed modification sites the according snoRNAs and for many pre-rRNA processing steps the responsible RBFs are missing. Therefore, it is expected that a high number of snoRNAs and RBFs are not identified till yet. For this reason, RNA-deep sequencing was performed in order to identify novel snoRNAs and MS analysis data of nucleoli and nuclei of A. thaliana from a former PhD student were used in order to find new proteins involved in pre-rRNA processing.
In here, it is shown that with RNA deep-sequencing still new snoRNAs and snRNAs can be identified and that detection of predicted snoRNAs can be fulfilled with a) antisense oligonucleotides tagged with fluorescence dyes and b) with radioactive labeled antisense probes. Furthermore, a secondary structure map of the 60S and 40S subunit highlighting the predicted and moreover verified modification sites in 5.8S, 25S and 18S rRNA was created. Especially, the correlation between the modification sites and the guiding snoRNA is highlighted further shedding light on overview about current pre-rRNA modification sites and corresponding guiding snoRNAs. The next chapter reveals the complex and multi-layered existence of the 5.8S rRNA and its numerous precursors. The mutant prp24 (also known as seap1) encoding AtPRP24, is recognized as factor being important for splicing as it is promoting the recruitment of the U4 and U6 snRNAs to the spliceosome. In here, it was found that AtPRP24 is involved in processing of 5.8S rRNA precursors, recognizable by precursors that are over accumulating in the mutant. Moreover, it could be shown for the first time that the plant-specific precursor 5´-5.8S is exported to the cytoplasm, where final cleavage steps of 5.8S rRNA takes place. In the prp24.2 mutant, this precursor is exported at an increased rate to the cytoplasm, where it can be detected in the actively translating ribosomes (polysomes). A lower sensitivity of the mutant seeds to cycloheximide (CHX) suggests that due to the extension at the 5´-end of 5.8S, the structure of the 60S subunit has altered CHX binding. In conclusion, this work highlights the importance and complexity of 5.8S rRNA and its precursors for ribosome biogenesis and displays new insights into pre-rRNA processing in A. thaliana.
Due to their sessile nature, plants are constantly exposed to an everchanging environment. When these changes exceed certain limits, they can significantly impact plant growth and development, which, in case of crop plants, has consequences on food security. Exposure to high temperatures causes heat stress (HS), one of the most devastating stresses that plants can face. The survival and recovery from HS are dependent on the activation of the HS response (HSR), a collection of molecular mechanisms conferring HS tolerance by maintaining the cellular homeostasis. Stress responses follow a strictly orchestrated network of signal perception and -transduction, ultimately resulting in an adaptive cellular output. Thereby, the massive reshaping of the transcriptome plays a major part, in which heat stress transcription factors (HSFs) play the key role by inducing the expression of HS-responsive genes, including heat shock proteins and other transcription factors. Additionally, alternative splicing (AS), the selective usage of splice sites, contributes to the rapid adjustment of the transcriptome landscape by producing different mRNA variants from a single gene. Consequently, this results in the reduction of translatable transcripts by nonsense-mediated mRNA-decay or nuclear retention, but also enhances the proteome diversity by allowing the synthesis of protein isoforms with distinct functions. AS thereby modulates the activity of important regulatory factors like HSFA2 in Solanum lycopersicum (tomato). HSFA2 is the key factor of acquired thermotolerance (ATT), which enables the ability to survive a potentially lethal HS through pre-exposure to a preceding mild HS. Temperature-dependent AS leads to the synthesis of two HSFA2 protein variants, whereby inhibition of splicing ensures the synthesis of the stable isoform HSFA2-I that is required for ATT.
Transcriptome analysis of several plant species exposed to HS has highlighted the strong impact of high temperatures on the regulation of pre-mRNA splicing. Despite its importance, little is known about the molecular basis of the AS regulation in plants. Particularly for an economically important crop like tomato, understanding the regulation of HS-sensitive AS will contribute to the description of such an important regulatory mechanism but also might offer new insights for increasing HS resilience. Serine/arginine-rich proteins (SR proteins) are central regulators of constitutive and AS by modulating the splice site selection by the spliceosome. This study describes two members of the RS2Z subfamily of SR proteins in tomato, namely RS2Z35 and RS2Z36, which act as core regulators of AS under HS and consequently as central factors for thermotolerance. This study investigates the interaction of the two RS2Z proteins with the HSFA2 pre-mRNA and provides evidence for their function as splicing repressors in this particular AS event. Thereby, RS2Z proteins play an important role in the HSR by modulating the AS of the key factor of the ATT. Furthermore, based on global transcriptome analysis of knockout mutants of single or both RS2Z genes, it is demonstrated that RS2Z proteins are involved in the splicing of pre-mRNAs of almost 2000 genes. Moreover, RS2Z proteins act as splicing regulators and take part in a large portion of HS-induced AS events, thus playing a broader role in AS regulation. Furthermore, the HS-induced RS2Z36 is involved in basal thermotolerance (BTT), highlighting its importance for the basic HS resilience capacity of tomato. In addition, RNA sequencing demonstrates that RS2Z proteins–especially RS2Z36–regulate the expression of proteins involved in plant immunity. The study thereby provides experimental evidence for the important and essential role of SR proteins for plant thermotolerance and suggests the existence of RS2Z-mediated crossroads of different stress responses.
Many metabolic pathways of eukaryotes are carried out in form of interconnected pathways, which take place in organelles. The organelle membrane separates the reaction compartments from each other, making it a key feature of organelle existence in the cell. To maintain cellular homeostasis, organelle positioning in and transport through the cell as well as organelle interaction are important for the organisms. In plants, organellar movement of peroxisomes, Golgi stacks and mitochondria was shown to be mediated by the actin-myosin machinery. The molecular mechanisms are not elucidated, but working models comprise classical movement mechanisms of motor proteins pulling their cargo on cytoskeletal filaments. In contrast, many mechanisms of chloroplasts movement, which are regulated by blue and red light, are deciphered but follow a different molecular mechanism. Plastidal relatives of the chloroplast have long been disregarded by scientific research but carry out important metabolic reactions to maintain cellular homeostasis. The cellular transport and movement mechanisms of root plastids have not been described in detail until now. Additionally, all plastid subspecies can form tubular structures, called stromules. Those are thought to be involved in the organelle communication and metabolite exchange. Since they are very mobile structures, they influence the organellar dynamic of plastids. This work aimed for an in-detail description of the cellular movements of root plastids in the plant Arabidopsis thaliana to elucidate underlying mechanisms of their movement. Additionally, the dynamics of root plastid stromules were investigated, led by the questions, if and how stromules are involved in the mediation of plastidal movement and their overall dynamics. Plastidal movement in Arabidopsis thaliana was captured using light sheet-based fluorescence microscopy. 4D image data was automatically analyzed using the program Arivis Vision 4D with subsequent manual correction. Additionally to the 4D approach, a manual 3D analysis of plastid and stromule dynamics was performed. The results of the semiautomated analysis displayed heterologous distribution of the plastidal movement. Using a combination of the vector length of each motion event and the angle in relation to previous motion vectors, the proportions of different movement patterns were determined. Main fractions of the data showed undirected motion of plastids, whereas small proportions displayed directed movement with speed up to 8.5 µm/sec. Directed motion was shown to be carried out on defined routes in the cell. Salt stress did not affect plastidal motion, whereas drought stress lead to its reduction. Sucrose depletion led to a drastic decrease of plastidal movement. Additionally, stromule dynamics were investigated using the acquired image data. Stromules were observed in high frequency mainly at stationary plastids giving them the opportunity of dynamic interaction in their cellular surrounding. Stromules reached lengths of up to 60 µm. Additionally, they displayed a variety of movement patterns that contributed greatly to the overall plastid dynamics. Stromule related motion events were captured reaching up to 3.2 µm/sec. Similar to determined plastid dynamics, stromule motions were reduced during drought stress and sucrose depletion, but also were negatively influenced by salt stress. Those results strongly favor an actin-myosin mediated movement machinery mediating the plastidal and stromule movement. This stands in contrast to previous results describing the movement mechanisms of light induced chloroplast movement.
In an additional approach, the molecular mechanisms underlying stromule formation were analyzed. Previous results describe that stromule formation can be induced at isolated chloroplasts of the plant Nicotiana benthamiana by mixing it with concentrated cell extract. During this work, a variation of the described assay was established using the plant Pisum sativum. It was shown that an unknown protein factor presumably undergoing protein-lipid interaction is responsible for in vitro stromule formation. Using a combination of sucrose gradient centrifugation and anion exchange chromatography, the desired factor could be enriched, while the majority of unwanted proteins could be reduced drastically. A following LC-MS analysis revealed a selection of proteins with membrane interaction- and unknown functions that might be involved in in vitro stromule formation.
Sympathetic influences on articular cartilage regeneration capacity and osteoarthritis manifestation
(2021)
The pathogenesis of osteoarthritis (OA) involves articular cartilage, synovial tissue and subchondral bone and is therefore a disease of the whole joint. OA is characterized by progressive degradation of cartilage, synovial inflammation, osteophyte formation and subchondral bone sclerosis. Cartilage-surrounding tissues are innervated by tyrosine hydroxylase (TH)-positive sympathetic nerve fibers with the most important sympathetic neurotransmitter norepinephrine (NE) detected in the synovial fluid of OA patients. Furthermore, adrenergic receptors are expressed in different knee joint tissues. Most in vitro studies indicate a potential role of the β2-adrenergic receptor, which has been not investigated during OA pathogenesis in vivo. The role of the sympathetic nervous system (SNS) in OA progression has not yet been studied. Therefore, the objective of this study was to analyze how the SNS and NE influence the MSC dependent cartilage regeneration in vitro and the OA pathogenesis and manifestation in vivo.
In the first part of this study, the effect of NE on the chondrogenesis of sASC, which are known to play an important role in cartilage regeneration was analyzed in vitro. In the second part of this study, the role of the SNS was studied in vivo in mice that were sympathectomized chemically followed by surgically induced OA. The specific focus was on the β2-adrenergic receptor effects on OA pathogenesis, which were analyzed in β2-adrenergic receptor-deficient mice.
The in vitro experiments have shown that NE reduced the chondrogenic potential of sASCs by decreasing the expression of type II collagen and sGAG. NE mediated these effects mainly by the α2-AR signalling. Furthermore, NE treatment led to activation of the ERK1/2 signal pathway. These findings suggested that the sympathetic neurotransmitter NE might suppress the chondrogenic capacity of MSC and their dependent cartilage regeneration and may also play a role in OA progression and manifestation.
The in vivo study has shown that sympathectomy reduced synovial TH-positive nerve fibers in the synovium and the NE concentration in the spleen significantly. In WT mice, DMM leads to increased NE concentrations in the spleen compared to sham mice indicating an increased SNS activity after mechanical stress or inflammation due to DMM. Sympathectomy leads to less pronounced cartilage degeneration (OARSI score) after DMM compared to DMM in WT mice. Furthermore, the release of the type II collagen degradation fragment CTX-II was abolished in Syx DMM mice compared to WT DMM mice, suggesting that less SNS activity due to sympathectomy reduced the cartilage degeneration during OA pathogenesis. Similarly, sympathectomy decreased the synovitis score significantly after DMM compared to DMM in
WT mice. Synovitis in WT mice was accompanied by increased MMP-13 expression in the synovium after DMM, compared to Syx mice. Cartilage degeneration seemed to be driven mainly by the increased synovial inflammation accompanied by an increased MMP13 expression in synoviocytes and not in chondrocytes. The pathological changes in synovium and cartilage might also be linked to each other, as indicated by the moderate correlation between the synovial inflammation (synovitis score) and cartilage degeneration (OARSI score). Subchondral bone volume as well the thickness of the subchondral bone plate (SCBP) and calcified cartilage (CC) were increased in Syx mice compared to WT after DMM. The data on DMM induction in β2-AR deficient mice revealed that the β2-AR signaling is involved in cartilage degeneration and the aggravated subchondral bone changes as these mice had less pronounced cartilage degeneration compared to WT mice. While the cartilage degeneration was similar, the subchondral bone changes were more pronounced in β2-AR deficient mice compared to the Syx mice.
Overall, the SNS had differential effects in cartilage, synovium and subchondral bone. A reduced SNS activity by sympathectomy attenuated cartilage degeneration and synovitis but aggravated the OA specific subchondral bone changes. These findings provide new insights into the development of novel therapeutic strategies for OA by targeting the SNS in a tissue- specific manner.
Epithelial cells enable essential physiological functions, including absorption, morphogenesis, secretion, and transport. To execute these functions, epithelial cells often form three-dimensional shapes that include curved sheets of cells surrounding a pressurized fluid-filled lumen. These three-dimensional tissues (called domes) are essential for organ function, but when they are not working properly, developmental defects, inflammation, and cancer can ensue. Recently, it has been shown that the cells that form domes show active superelasticity on micropatterned plates.
We show here that the immortalized renal proximal tubule epithelial cell line, LLC-PK1, stereotypically forms tubules in 10 days. Tubule formation takes place in 4 stages. When cells are plated on a culture dish, they form a monolayer on the 1st day; on the 3rd day, three-dimensional structures are formed, called domes; and after the 4.5th day, these domes start fusing to begin the transition stage and transit to the tubule stage. At the end of the 10th day, differentiated, elongated, and matured tubes form (Figure 3.1). Therefore, tubule formation is a self-organized, stereotypic morphogenetic program under long-term, unperturbed tissue culture conditions.
We propose that tubulogenesis is a two-step process in proximal tubules by doming and wrapping. The process begins with dome formation, and as the cell layers come together in the transition stage at the edge of the dome, this leads to the formation of the lumen of the eventual tubule. We also found that F-actin provides the mechanical strength during the formation of these three-dimensional structures during tubule formation. To better understand this 4-step process on a molecular level, we performed proteomics of tubule formation to identify the different proteins that play a significant role in proximal tubule development. Importantly, we identified proximal tubule markers like synaptopondin, angiotensin 1-10, collectrin, polycystin 1, and polycystin 2. These proteins play an important role in renal tube formation and differentiation.
Cell division is carried out by highly conserved cyclin-CDK complexes, which phosphorylate various cellular components. Cyclin-CDKs act differently depending on the cell cycle phase and work cooperatively to create DNA replication and cytokinesis. Therefore, we identified that cyclin-B1, marker of proliferation Ki-67, the RAD51 recombinase, and proliferating cell nuclear antigen (PNCA) are upregulated in the monolayer stage, and the expression decreases as tubule formation takes place. The proximal tubule reabsorbs 60-65% of the glomerulus filtrate. Therefore, it requires a lot of energy generated by using the fatty acid oxidation (FAO) pathway. In our model, we found FAO expression is higher than that of the other metabolic pathways.
We found expression of an intricate protein network in mitochondria, which we interpret as a sign of mitochondrial homeostasis being vital for the FAO pathway to work. Furthermore, we also identified different types of transporters at each stage of proximal tubule formation, and we could recognize different cytoskeletal components playing a significant role in each stage of proximal tubule formation, for instance, at the monolayer stage, vimentin expression is high, and its expression is reduced as tubules form. Hence, this 2D system, at this step of characterization, seems suitable to use to study differential transport protein expression and how this might relate to physiological functions and syndromes.
Next, we inhibited different transporters using specific inhibitors and analyzed the effect on dome and tubule formation. We identified that Na+/K+ ATPase and vacuolar H+ ATPase play a significant role in the process of epithelial dynamics. Digoxin (a Na+/K+ ATPase inhibitor) treatment inhibits dome and tubule formation. Bafilomycin (a v-ATPase inhibitor) treatment demonstrated a delay in dome and tube formation. Therefore, this study shows that this 2D proximal tubule novel system can be used for screening of pharmacological leads in the context of specific aspects of kidney physiology.
Despite the recent success in growing kidney organoids, they are not well suited to investigate various pathophysiological conditions in vitro for several reasons: They grow in 3D and form a tissue that later needs to be dissected/cleared and stained to investigate pathophysiological changes. Moreover, organoids require complex and expensive protocols for generation and are challenging to use in screening approaches. Therefore, we set out to demonstrate feasibility for our 2D system using normal renal epithelial cells, which are the origin of various pathological conditions, to study pathophysiological conditions.