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Eukaryotic cells have several mRNA quality control checkpoints to avoid the production of aberrant proteins. Intron-containing mRNAs are actively degraded by the nuclear exosome, prevented from nuclear exit and, if these systems fail, degraded by the cytoplasmic NMD machinery. Trypanosomes have only two introns. However, they process mRNA5 from long polycistronic precursors by trans-splicing and polycistronic mRNA molecules frequently arise from any missed splice site. Here, we show that RNAi depletion of the trypanosome exosome, but not of the cytoplasmic 5'-3' exoribonuclease XRNA or the NMD helicase UPF1, causes accumulation of oligocistronic mRNA5. We have also revisited the localization of the trypanosome exosome by expressing eYFP-fusion proteins of the exosome subunits RRP44 and RRP6. Both proteins are significantly enriched in the nucleus. Together with published data, our data suggest a major nuclear function of the trypanosome exosome in rRNA, snoRNA and mRNA quality control.
The nuclear envelope serves as important mRNA surveillance system. In yeast and humans, several control mechanisms act in parallel to prevent nuclear export of unprocessed mRNAs. However, trypanosomes lack homologues to most of the proteins involved. In addition, gene expression in trypanosomes relies almost completely on post-transcriptional regulation as they transcribe mRNAs as long polycistrons, which are subsequently processed into individual mRNA molecules by trans-splicing. As trans-splicing is not error-free, unspliced mRNAs may be recognized and prevented from reaching the cytoplasm by a yet unknown mechanism.
When trans-splicing is inhibited in trypanosomes, the formation of a novel RNA granule type at the cytoplasmic periphery of the nucleus, so called nuclear periphery granules (NPGs) was previously observed. To identify potential regulators of nuclear export control, changes in protein localization which occur when trans-splicing is inhibited, were globally analyzed during this work. For this, trypanosome nuclei were purified under conditions maintaining NPG attachment to the nucleus, in the absence and presence of trans-splicing. Mass spectrometry analyses identified 128 proteins which are specifically enriched in nuclear preparations of cells inhibited for trans-splicing. Amongst them are proteins, which change their localization to the nucleus or to the nuclear pores as well as many proteins that move into NPGs. Some of these proteins are promising candidates for nuclear export control proteins, as the changes in localization (to the nucleus or nuclear pores) were specific to the accumulation of unspliced mRNAs. The NPG proteome almost exclusively contains proteins involved in mRNA metabolism, mostly unique to trypanosomes, notably major translation initiation factors were absent. These data indicate that NPGs are RNP complexes which have started or completed nuclear export, but not yet entered translation. As a byproduct of these proteomic studies, a high-quality dataset of the yet unknown T. brucei nuclear proteome is provided, closing an important gap in knowledge to study trypanosome biology, in particular nuclear related processes.
NPGs were characterized in more detail by microscopy. The granules are cytoplasmic and present in at least two different trypanosome life cycle stages. There are at least two distinct granule subsets, with differences in protein composition. A closer analysis of NPGs by electron microscopy revealed that the granules are electron dense structures, which are connected to nuclear pores by string-like structures.
In order to approach the function of NPGs, on the one hand, the hypothesis that NPGs might be related to perinuclear germ granules of adult gonads of C. elegans was tested: we found no relation between the two granule types. On the other hand, initial single molecule mRNA FISH experiments performed in trypanosomes showed no accumulation of unspliced transcripts in NPGs, arguing against an involvement of the granules in mRNA quality control.
The family of trypanosomatid parasites, including the human pathogens Trypanosoma brucei and Leishmania, has evolved sophisticated strategies to survive in harmful host environments. While Leishmania generate a safe niche inside the host’s macrophages, Trypanosoma brucei lives extracellularly in the mammalian bloodstream, where it is constantly exposed to the attack of the immune system. Trypanosoma brucei ensures its survival by periodically changing its protective surface coat in a process known as antigenic variation. The surface coat is composed of one species of ‘variant surface glycoprotein’ (VSG). Even though the genome possesses a large repertoire of different VSG isoforms, only one is ever expressed at a time from one out of the 15 specialized subtelomeric ‘expression sites’ (ES). Switching the coat can be accomplished either by a recombination-based exchange of the actively-expressed VSG with a silent VSG, or by a transcriptional switch to a previously silent ES.
The conserved histone methyltransferase DOT1B methylates histone H3 on lysine 76 and is involved in ES regulation in T. brucei. DOT1B ensures accurate transcriptional silencing of the inactive ES VSGs and influences the kinetics of a transcriptional switch. The molecular machinery that enables DOT1B to execute these regulatory functions at the ES is still elusive, however. To learn more about DOT1B-mediated regulatory processes, I wanted to identify DOT1B-associated proteins.
Using two complementary approaches, specifically affinity purification and proximity-dependent biotin identification (BioID), I identified several novel DOT1B-interacting candidates. To validate these data, I carried out reciprocal co-immunoprecipitations with the most promising candidates. An interaction of DOT1B with the Ribonuclease H2 protein complex, which has never been described before in any other organism, was confirmed. Trypanosomal Ribonuclease H2 maintains genome integrity by resolving RNA-DNA hybrids, structures that if not properly processed might initiate antigenic variation. I then investigated DOT1B’s contribution to this novel route to antigenic variation. Remarkably, DOT1B depletion caused an increased RNA-DNA hybrid abundance, accumulation of DNA damage, and increased VSG switching. Deregulation of VSGs from throughout the silent repertoire was observed, indicating that recombination-based switching events occurred. Encouragingly, the pattern of deregulated VSGs was similar to that seen in Ribonuclease H2-depleted cells. Together these data support the hypothesis that both proteins act together in modulating RNA-DNA hybrids to contribute to the tightly-regulated process of antigenic variation.
The transmission of trypanosomatid parasites to mammalian hosts is facilitated by insect vectors. Parasites need to adapt to the extremely different environments encountered during transmission. To ensure their survival, they differentiate into various specialized forms adapted to each tissue microenvironment. Besides antigenic variation, DOT1B additionally affects the developmental differentiation from the mammalian-infective to the insect stage of Trypanosoma brucei. However, substantially less is known about the influence of chromatin-associated proteins such as DOT1B on survival and adaptation strategies of related Leishmania parasites. To elucidate whether DOT1B’s functions are conserved in Leishmania, phenotypes after gene deletion were analyzed. As in Trypanosoma brucei, generation of a gene deletion mutant demonstrated that DOT1B is not essential for the cell viability in vitro. DOT1B deletion was accompanied with a loss of histone H3 lysine 73 trimethylation (the lysine homologous to trypanosomal H3K76), indicating that Leishmania DOT1B is also solely responsible for catalyzing this post-translational modification. As in T. brucei, dimethylation could only be observed during mitosis/cytokinesis, while trimethylation was detectable throughout the cell cycle in wild-type cells. In contrast to the trypanosome DOT1B, LmxDOT1B was not essential for differentiation in vitro. However, preliminary data indicate that the enzyme is required for effective macrophage infection.
In conclusion, this study demonstrated that the identification of protein networks and the characterization of protein functions of orthologous proteins from related parasites are effective tools to improve our understanding of the parasite survival strategies. Such insights are a necessary step on the road to developing better treatments for the devastating diseases they cause.
Post-translational histone modifications (PTMs) such as methylation of lysine residues influence chromatin structure and function. PTMs are involved in different cellular processes such as DNA replication, transcription and cell differentiation. Deregulations of PTM patterns are responsible for a variety of human diseases including acute leukemia. DOT1 enzymes are highly conserved histone methyltransferases that are responsible for methylation of lysine 79 on histone H3 (H3K79). Most eukaryotes contain one single DOT1 enzyme, whereas African trypanosomes have two homologues, DOT1A and DOT1B, which methylate H3K76 (H3K76 is homologous to H3K79 in other organisms). DOT1A is essential and mediates mono- and di-methylations, whereas DOT1B additionally catalyzes tri-methylation of H3K76. However, a mechanistic understanding how these different enzymatic activities are achieved is lacking. This thesis exploits the fact that trypanosomes possess two DOT1 enzymes with different catalytic properties to understand the molecular basis for the differential product-specificity of DOT1 enzymes. A trypanosomal nucleosome reconstitution system was established to analyze methyltransferase activity under defined in vitro conditions. Homology modeling allowed the identification of critical residues within and outside the catalytic center that modulate product-specificity. Exchange of these residues transferred the product-specificity from one enzyme to the other and revealed regulatory domains adjacent to the catalytic center. This work provides the first evidence that few specific residues in DOT1 enzymes are crucial to catalyze methyl-state-specific reactions. These results have also consequences for the functional understanding of homologous enzymes in other eukaryotes.
Background: ApaH like phosphatases (ALPHs) originate from the bacterial ApaH protein and are present in eukaryotes of all eukaryotic super-groups; still, only two proteins have been functionally characterised. One is ALPH1 from the Kinetoplastid Trypanosoma brucei that we recently found to be the mRNA decapping enzyme of the parasite. mRNA decapping by ALPHs is unprecedented in eukaryotes, which usually use nudix hydrolases, but the bacterial ancestor protein ApaH was recently found to decap non-conventional caps of bacterial mRNAs. These findings prompted us to explore whether mRNA decapping by ALPHs is restricted to Kinetoplastida or more widespread among eukaryotes.
Results: We screened 824 eukaryotic proteomes with a newly developed Python-based algorithm for the presence of ALPHs and used the data to refine phylogenetic distribution, conserved features, additional domains and predicted intracellular localisation of ALPHs. We found that most eukaryotes have either no ALPH (500/824) or very short ALPHs, consisting almost exclusively of the catalytic domain. These ALPHs had mostly predicted non-cytoplasmic localisations, often supported by the presence of transmembrane helices and signal peptides and in two cases (one in this study) by experimental data. The only exceptions were ALPH1 homologues from Kinetoplastida, that all have unique C-terminal and mostly unique N-terminal extension, and at least the T. brucei enzyme localises to the cytoplasm. Surprisingly, despite of these non-cytoplasmic localisations, ALPHs from all eukaryotic super-groups had in vitro mRNA decapping activity.
Conclusions: ALPH was present in the last common ancestor of eukaryotes, but most eukaryotes have either lost the enzyme since, or use it exclusively outside the cytoplasm in organelles in a version consisting of the catalytic domain only. While our data provide no evidence for the presence of further mRNA decapping enzymes among eukaryotic ALPHs, the broad substrate range of ALPHs that includes mRNA caps provides an explanation for the selection against the presence of a cytoplasmic ALPH protein as a mean to protect mRNAs from unregulated degradation. Kinetoplastida succeeded to exploit ALPH as their mRNA decapping enzyme, likely using the Kinetoplastida-unique N- and C-terminal extensions for regulation.
Base J, β-D-glucosyl-hydroxymethyluracil, is a chromatin modification of thymine in the nuclear DNA of flagellated protozoa of the order Kinetoplastida. In Trypanosoma brucei, J is enriched, along with histone H3 variant (H3.V), at sites involved in RNA Polymerase (RNAP) II termination and telomeric sites involved in regulating variant surface glycoprotein gene (VSG) transcription by RNAP I. Reduction of J in T. brucei indicated a role of J in the regulation of RNAP II termination, where the loss of J at specific sites within polycistronic gene clusters led to read-through transcription and increased expression of downstream genes. We now demonstrate that the loss of H3.V leads to similar defects in RNAP II termination within gene clusters and increased expression of downstream genes. Gene derepression is intensified upon the subsequent loss of J in the H3.V knockout. mRNA-seq indicates gene derepression includes VSG genes within the silent RNAP I transcribed telomeric gene clusters, suggesting an important role for H3.V in telomeric gene repression and antigenic variation. Furthermore, the loss of H3.V at regions of overlapping transcription at the end of convergent gene clusters leads to increased nascent RNA and siRNA production. Our results suggest base J and H3.V can act independently as well as synergistically to regulate transcription termination and expression of coding and non-coding RNAs in T. brucei, depending on chromatin context (and transcribing polymerase). As such these studies provide the first direct evidence for histone H3.V negatively influencing transcription elongation to promote termination.
Trypanosoma brucei is a uniflagellated protist and the causative agent of African trypanosomiasis, a neglected tropical disease. The single flagellum of T. brucei is essential to a number of cellular processes such as motility, and has been a longstanding focus of scientific enquiry. A number of cytoskeletal structures are associated with the flagellum in T. brucei, and one such structure—a multiprotein complex containing the repeat motif protein TbMORN1—is the focus of this review. The TbMORN1-containing complex, which was discovered less than ten years ago, is essential for the viability of the mammalian-infective form of T. brucei. The complex has an unusual asymmetric morphology, and is coiled around the flagellum to form a hook shape. Proteomic analysis using the proximity-dependent biotin identification (BioID) technique has elucidated a number of its components. Recent work has uncovered a role for TbMORN1 in facilitating protein entry into the cell, thus providing a link between the cytoskeleton and the endomembrane system. This review summarises the extant data on the complex, highlights the outstanding questions for future enquiry, and provides speculation as to its possible role in a size-exclusion mechanism for regulating protein entry. The review additionally clarifies the nomenclature associated with this topic, and proposes the adoption of the term “hook complex” to replace the former name “bilobe” to describe the complex.
We have discovered a new mechanism of monoallelic gene expression that links antigenic variation, cell cycle, and development in the model parasite Trypanosoma brucei. African trypanosomes possess hundreds of variant surface glycoprotein (VSG) genes, but only one is expressed from a telomeric expression site (ES) at any given time. We found that the expression of a second VSG alone is sufficient to silence the active VSG gene and directionally attenuate the ES by disruptor of telomeric silencing-1B (DOT1B)-mediated histone methylation. Three conserved expression-site-associated genes (ESAGs) appear to serve as signal for ES attenuation. Their depletion causes G1-phase dormancy and reversible initiation of the slender-to-stumpy differentiation pathway. ES-attenuated slender bloodstream trypanosomes gain full developmental competence for transformation to the tsetse fly stage. This surprising connection between antigenic variation and developmental progression provides an unexpected point of attack against the deadly sleeping sickness.
Die Schlafkrankheit hat ihren Schrecken seit den Zeiten Robert Kochs und Paul Ehrlichs nicht verloren. Die zielgerichtete Entwicklung neuer Medikamente ist für die Menschen in den Endemiegebieten damals wie heute von elementarer Bedeutung. Die Naphtylisochinolin-Alkaloide stellen eine neue chemische Substanzklasse dar, die gute Kandidaten für die Entwicklung neuer Medikamente enthält. Mit GBAP 94 im speziellen liegt eine Substanz vor, die gute Startvorrausetzungen hierfür mitbringt. Diese sind eine sehr gute Wirksamkeit gegen Trypanosomen, gepaart mit einer hohen Selektivität durch einen sehr wahrscheinlich relativ spezifisch anti-trypanosomalen Wirkmechanismus. Die verwendeten Naphtylisochinolin-Alkaloide GBAP 94 und GBAP 146 wurden nach unterschiedlichen Gesichtspunkten ausgewählt. GBAP 94 wurde aufgrund seiner guten antitrypanosomalen Wirkung und seiner hohen Selektivität für Trypanosomen ausgewählt. Die IC50 liegt mit 0,383 µmol/l im Vergleich zu den aktuell verwendeten Medikamenten sehr niedrig. Die Selektivitätsindices (IC50 Trypanosoma brucei brucei / IC50 Makrophagen J774.1) mit 85,6 und (IC50 Try-panosoma brucei brucei / IC50 Leishmania major) mit 15,1 liegen in einem sehr günstigen Bereich. GBAP 146 wurde hauptsächlich wegen seiner guten Fluoreszenz-Eigenschaften ausgewählt. Die antitrypanosomale Aktivität ist mit einer IC50 von 0,289 µmol/l zwar sehr gut, eine große Selektivität ist aber nicht gegeben. Die beiden Alkaloide waren aufgrund ihrer Eigenfluoreszenz gut fluoreszenz-mikroskopisch in den Parasiten zu detektieren. Nach 10 min war in den ersten Trypanosomen die Anreicherung der Wirkstoffe erkennbar. Nach 30 min war bei fast allen Parasiten eine Färbung erkennbar. Die Wirkstoffe reicherten sich zunächst in mehreren kleinen Vakuolen an. Bei längeren Inkubationszeiten zeigte sich eine fast homogene Verteilung innerhalb des kompletten Parasiten. Durch-gängig ausgespart blieb eine vakuolische Struktur. Diese entwickelte oder vergrößerte sich im Verlauf der Inkubationszeit im vorderen Drittel des Parasiten, etwa im Bereich des Kinetoplasten. Diese Vakuole konnte auch lichtmikroskopisch in der Giemsa-Färbung nachgewiesen werden. Der Anteil der veränderten Trypanosomen lag bei diesen Untersuchungen nach 1 h bei 25,4%, stieg bis zum Zeitpunkt 2 h auf 46,6% und stabilisierte sich nach 4 h bei 44,8%. Die vakuolische Struktur führte durch ihre Vergrößerung zur zunehmenden Verplumpung der Trypanosomen bis zu einer kugelförmigen Zellform mit geisselartig-wirkender Flagelle. Aufgrund der veränderten Form wurden die Zellorganellen verdrängt. Dies konnte durch die Fluoreszenzmarkierung des Mitochondriums mit Rodamine B Hexylester und der sauren Kompartimente, besonders des Lysosoms, mit LysoTracker® gezeigt werden. Die Vakuolisierung von Trypanosomen im Zusammenhang mit Apoptose ist bekannt. Die neu entstehende Vakuole konnte weder mit LysoTracker® green, noch mit dem endosomalen Farbstoff FM 4-64 angefärbt werden. Damit können eine lysosomale und eine endosomale Herkunft der Vakuole ausgeschlossen werden. Eine genaue Klärung der Genese der Vakuole steht noch aus. In den Untersuchungen mit Annexin V und Propidium-Jodid im FACS® konnte gezeigt werden, dass die Wirkung der NIQs sehr wahrscheinlich Apoptose induziert. Annexin V ist auch bei Trypanosomen als Marker für Apoptose etabliert. Zudem zeigte sich ein Anstieg der Anzahl apoptotischer Trypanosomen mit Periode von 6 h – 8 h. Diese Dauer entspricht ungefähr der Dauer des trypanosomalen Zellzyklus. Ein Eingriff der NIQs in den Zellzyklus ist somit sehr wahrscheinlich. Eine Hemmung von Teilen des Zellzyklus ist als Auslöser für Apoptose bekannt. Über die genaue Zielstruktur der NIQs kann allerdings nur spekuliert werden. Die apotose-induzierende Wirkung anderer Alkaloide auf Trypanosomen ist inzwischen nachgewiesen. Ein weiteres Indiz ist, dass die Ergebnisse von Ponte-Sucre mit den NIQs bei Leishmanien ebenfalls in Richtung Apoptose weisen.
Die Kontrolle der monoallelen Expression, antigenen Variation und Entwicklung in Trypanosoma brucei
(2013)
Die ausschließliche Expression von nur einem Gen aus einer großen Genfamilie ist ein weit verbreitetes Phänomen, das als monoallele Expression bezeichnet wird. In dem Blutparasiten Trypanosoma brucei stellt die Expression eines einzigen variablen Oberflächenglykoproteins (VSG) aus einem Repertoire von über 1000 verschiedenen Genen die Grundlage für die Immunevasion dar. Durch einen periodischen Wechsel der VSG Expression (Antigene Variation) bleibt der Parasit vom Immunsystem des Wirtes unerkannt. Die VSG Gene werden aus telomerischen Blutstromform Expressionsstellen (BES) transkribiert, von denen nur eine zu einem bestimmten Zeitpunkt aktiv ist. Die Kontrolle der monoallelen VSG Expression ist somit einer der wichtigsten Virulenzfaktoren von T. brucei.
Ziel dieser Arbeit war es, die Vorgänge eines transkriptionellen Wechsels zwischen zwei BESs zu beschreiben. Das Ausschalten des aktiven VSGs durch RNA-Interferenz hatte zuvor gezeigt, dass dies nicht zu einer erhöhten Wechselrate führt. Es wurde daher untersucht, welche Auswirkungen das Anschalten einer zweiten BES auf die monoallele Expression hat. Da es bisher keine Möglichkeit gibt, eine inaktive BES gezielt zu aktivieren, wurde ein artifizielles System gewählt, das die gezielte induzierbare Expression eines Gens ermöglicht. Die BESs unterscheiden sich in der Anzahl und Zusammensetzung der Expressionsstellen-assoziierte-Gene (ESAGs), jedoch besitzt jede BES ein telomernahes VSG. Somit wird, bei einer BES Aktivierung, in jedem Fall ein neues VSG exprimiert. Durch die induzierbare Expression eines zweiten VSGs wurde so das Anschalten einer neuen BES simuliert. Mithilfe dieses Systems konnte gezeigt werden, dass das VSG selbst für die Kontrolle der monoallelen Expression verantwortlich ist. Die ektopische Überexpression eines zweiten VSGs führte zu einer graduellen Inaktivierung der BES. Infolge dessen verlangsamte sich der Zellzyklus und die Zellen verblieben bis zu fünf Tage in einem ruhenden Zustand. Genauere Analysen dieses Zustandes zeigten, dass es sich hierbei um ein bisher unbekanntes, reversibles Zwischenstadium zwischen proliferierenden sogenannten Long Slender und arretierten sogenannten Short Stumpy Formen handelt. Die Ergebnisse dieser Arbeit führten zu einem neuen Modell, das die Kontrolle der monoallelen VSG Expression mit der Entwicklung der Trypanosomen mechanistisch verbindet.